* Stuff I've found ** Why do I need to call flan to open another window? let: flan: the program exited; restart flan dev ** I can't eval a toplevel defvar, need to eval-defun (C-c C-c) For Flan’s intended live-program workflow, C-x C-e on any complete top-level form should do the natural thing: - expression → compile/run temporary thunk; print its value - defn, defvar, defmacro, etc. → compile/install it; report what changed The compiler already has both paths. The current split is an editor/UI artifact: C-x C-e is wired directly to eval-expr, while C-c C-c is wired to declaration reload. It is not a fundamental limitation. A good fix would make C-x C-e context-aware: if the enclosing form is top-level, send it through the declaration evaluator; otherwise use expression evaluation. Then C-c C-c can remain a convenient explicit “reload this definition” alias, but not the only way defvar works. ** I can't eval a top level Vec slurp returns (Vec u8), an owning, move-only buffer. Flan currently forbids every move-only global because it has no global ownership/lifetime model: any function could read and free it, while ownership tracking only exists within one function. For data that is fixed at build time, use an embedded immutable array instead: (defconst the-data (embed "game-data.edn")) That produces a fixed [u8], not a heap-owning Vec, so it can live globally. It also resolves relative to sand.flan. If game-data.edn genuinely must be loaded at runtime, then today it has to be owned by a local—typically load it in main and pass it through the functions that need it. For a game-wide runtime-owned data asset, that is a missing language/runtime feature, not a bad use case on your part. ** The edn module seems to need a struct declaration, it should do both; go into a struct but also return a Map with Vecs and Sets when we don't provide a type ** defenum needs optional autoincrementing discriminants ** We need a javascript backend so we can reach the world ** We need to have C-style unions, maybe those are called defunion, and then sum types are defdata or deftype * Decisions, 2026-09-17 ** 1. Re-runnable main — DISPATCHED The process does not actually die. [flan_exit_hook] is [flan_merged_exit] (lib/dev.ml:2669): it flushes, reclaims fd 1, and parks in [for (;;) pause()]. What is missing is a way to wake it. The park becomes a condvar wait, a daemon op signals it, and the main thread — not a new one, because raylib wants the main thread — re-enters [flan_program_main]. [alive] gains a third state, parked-and-re-runnable, and each of the ten guard sites decides for itself whether it accepts one. Globals are NOT reset between runs. That is the CL/Clojure semantics asked for: the process never died, so a second (main) sees what the first one left. Held for a zeroed global from the day this merged, and did not hold for a computed one until 2026-09-20: re-entering main re-entered the startup function that runs the computed initialisers, so every [defvar] with a call in it was stored back over what the last run had left. Fixed by giving each computed initialiser a guard of its own rather than by changing what a re-run does — see "Per-form initialisation semantics on re-run" below. ** 2. C-x C-e on a top-level form — QUEUED behind 1 Same file as 1 (emacs/flan.el), so it waits rather than merging by hand. No design questions; the note specifies it. ** 3. Runtime-loaded owning globals — DISPATCHED Not a missing global ownership model. One rule: a move-only global is legal, and reading one is always a borrow, never a move. Nothing takes ownership, nothing frees it, its lifetime is the process's. Sound precisely because the lifetime question has a constant answer. Mutable in place as well — a global Vec can be pushed to. Aliasing follows whatever locals already do; no new borrow regime for globals that locals lack. [embed] (lib/check.ml:4265) still covers build-time data and is untouched. ** 4. edn both typed and dynamic — REDIRECTED to arenas, drop parked Two projects, not one. (read-edn T bytes) does not exist — vendor/edn/edn.flan is only a tokenizer, and the compile-time struct walk is NEXT.md item 9. [drop] was dispatched to unblock the dynamic half and is being PARKED unmerged on its branch, not reverted, because the premise was wrong. The refusal at check.ml:599 is about *teardown*, not ownership: the type-erased runtime releases slots bytewise and cannot walk a move-only element. An arena never releases a slot — [free-all] takes the whole region — so the premise does not hold there. That is also what Odin does, which NEXT.md:1620 already recorded: no destructors, no drop, no finalizers; [delete] frees container memory and nothing else. core:encoding/json ships a hand-written recursive [destroy_value] in the *library*, and the idiomatic alternative is to parse against temp_allocator and [free_all]. Neither is a language feature. Building [drop] was a departure from NEXT.md:1589's settled "defer stays the answer", taken on the assistant's prompting and withdrawn. So: lift check.ml:599 for arena-allocated containers, and let read-edn take an allocator — which is already the idiom, since spec-memory.md:283 makes the allocator part of the calling convention with an explicit override. The real cost, stated because it is not free: [can-free] is a RUNTIME capability on the allocator value while check.ml:599 is a COMPILE-TIME refusal, and the compiler cannot generally know statically that a construction site's allocator is an arena. The spec's answer for the analogous drop case is a check at the point of construction, one branch per container — a runtime branch. This likely becomes a runtime trap rather than a static guarantee. Ownership tracking itself is untouched. Moves are still tracked; what is given up is freeing one element individually, which is the point of an arena. ** 5. defenum autoincrement — DISPATCHED C's rule: no value means previous+1, the first is 0, explicit and implicit mix. Duplicates: an explicitly written one is an intended alias and is allowed. One produced by autoincrement walking into a value another member holds is an accident and is refused, naming both members. ** 6. JavaScript backend — HELD wasm32 already works: test/wasm-run.mjs is a WASI host, the test table runs wasm32 builds, web/index.html is in the tree. A second backend beside emit.ml and x86.ml is the largest item here and the dev loop comes first. ** 7. defdata and defunion — QUEUED last Today's [defunion] is already the tagged sum type. It is renamed [defdata], and [defunion] becomes the C-style untagged one. Serves both FFI and type punning, and cimport verifies it against the header where one exists — cimport.ml:295 currently skips any record holding an anonymous union, leaving the defstruct beside it unchecked. Last, because the rename sweeps parse/check/emit/prelude/docs and every .flan file, and would conflict with everything above. * Open, found while working the list ** A transient signal -11 on the globals daemon Seen once, in one of three consecutive test runs, by the agent doing the C-x C-e work; the runs either side of it were clean. Not reproduced since — three forced full runs (dune test --force) are green, 232 checks, 0 failures. Worth remembering rather than chasing, because the daemon it appeared on is one the move-only-global work (c124df3) changed: test_reload's fixture gained a host global Vec and a run-time-new one. A teardown or a reload module that defines rather than declares a global Vec would strand the block the live process is using, which is exactly the shape a rare SIGSEGV takes. If it comes back, start there. * Status, end of 2026-09-17 Six of seven items are merged on dev-loop and green (dune build, dune test --force, @x86, @page). One agent is still running: the arena work for item 4. | item | what | state | |------+------+-------| | 1 | re-runnable main after the window closes | merged | | 2 | C-x C-e installs a top-level form | merged | | 3 | move-only globals, borrowed never moved | merged | | 4 | edn dynamic value | merged (arena route) | | 5 | defenum autoincrement | merged | | 6 | javascript backend | first lane IN FLIGHT, 2026-09-17 evening | | 7 | defdata rename + C-style defunion | merged | Also merged, not from the list: macro-module symbol visibility, which unblocked [flan dev --x86] in one process. sand.flan --x86 builds in 292ms against 985ms on LLVM. ** Parked branches, kept deliberately - worktree-agent-a18e9e62485eaedb5 — [drop] and recursive teardown. Finished and green, not merged. See docs/handoffs/HANDOFF-drop.md, which is the part worth keeping. Withdrawn because the refusal it answered is about teardown, and an arena has none; see item 4 above. ** Open, carried forward - A transient signal -11 on the globals daemon, seen once, not reproduced. Recorded below. - [drop]'s handoff flags that the [clone] / [get] / [map-next] refusals are needed by the arena route too — they are about a copy of a header, which an arena does not make safe — and that a Map has no operation answering *where* a value lives, which is what reading an arena-parsed EDN document back would need. Both were relayed to the arena agent. - [Tast.Addr (Tast.Pfield ...)] on an Option: closed, and closed as unreachable rather than fixed. Nothing in the source language builds it. [.field] goes through [struct_target], which admits a struct and a pointer to one and refuses everything else by name with a location — "(Option Point) is not a struct, so it has no fields" — so [(addr (.x o))] never reaches a place for [addr] to take. The node the drop lane hit was one the compiler built for itself. Two rows in test_flan.ml pin the refusal, on the bare field and on the address of one. What is still asymmetric, and is a note rather than a bug: [x86.ml]'s [field_loc] does lay out an Option's tag and value, and [emit.ml]'s [place] admits only a named struct. Neither is reachable, so neither is tested, and growing the LLVM side to match would be untestable code written to balance a path nothing takes. - Re-run still does not work under --two-process: a finished child is genuinely gone. It now works under --x86 because --x86 runs merged. - sand.flan still holds an uncommitted experiment line that is refused with a message naming the fix: use (defvar the-data (Vec u8)) and fill it in a function. * Landed on dev-loop Items 1, 2, 3 and 5 are merged and green (dune test --force, 232 elisp checks, 0 failures). Items 4 (drop) and 7 (defdata) are still being written. Item 6 — classes and generic functions — is no longer held: it landed, and the M2 queue above records it under item 6 with its commits. ** Re-run is merged, and does not work under --x86 Park and re-run live in the merged entry point's main(), and --x86 refuses the merged daemon by design: a merged host exports every flan.* body for -rdynamic and so interposes the prelude bodies of the LLVM-built macro module the compiler loads into itself. --x86 therefore runs --two-process, where the program is a child, and a child that finishes is genuinely Gone — there is nothing to wake. [Program.rerun] answers with the two-process refusal rather than the merged one, and a test pins it. Re-run on x86 needs the merged daemon to accept --x86 first. Separate work. ** C-x C-e answers against a parked program The complaint: (+ 1 1) at the top of a buffer was refused with "an expression is evaluated at a frame boundary, and a parked program reaches none". True, and about the wrong thing — the expression needs nothing from the program, and the ones that do need globals the parked process is still holding. The fix adds a second place a thunk can run rather than loosening what a place has to be. [flan_merged_park] now waits on two flags: [program_asked] leaves the park and runs main, and [program_poll] — set by [Program.wake], which [eval_expr] calls after the delivery — drains the agent's ring and waits again. The thread stays PROGRAM_PARKED throughout, so [:parked t] rides on the reply that carries the value. Why this is safe without a new concurrency model: while parked there is no concurrency at all. The program's thread is asleep on a condvar, no frame is executing, no global is being written — which is precisely what a frame boundary provides. The break loop is the precedent, a thread servicing the same ring while it is not running frames. Common Lisp answers the same question by giving evaluation a thread of its own (SWANK's [thread-for-evaluation]) and documents the resulting race as the programmer's problem; there is no race here to document. Merged-build only, and for the reason re-run is: [liveness_of] maps a finished child to Gone under --two-process, so there is no parked thread to wake. What became answerable with it: a thunk can now stop in the break loop on the parked thread, so backtrace, break, restart, restart-at, abort, locals/inspect and globals stop refusing on the state alone and refuse on [parked_break] instead — a paused expression against the park would otherwise be unresumable. Refused still, because their cause is not the park: nothing else. ** The headline complaint is verified fixed on sand.flan Window opened, closed, the daemon reported parked, (:op "rerun") returned ok, and xdotool found a live window from the second run. The earlier claim that [flan dev sand.flan] failed with "unknown function begin-drawing" was true only on the stale base the work started from, and was retracted after a re-test. Nothing to chase. * Evening of 2026-09-17 — the review, and four lanes off it docs/REVIEW-production-readiness.md is the production-readiness review, written to be implemented from. Item 4 (arena EDN) merged green before it was written, so the FIX list proper is six of seven done and one in flight. Four agent lanes are running off the review, each in its own worktree: - Tier 1 + the runtime half of Tier 4: overflow guards, map removal (Odin's backward-shift), the registry race, the scratch buffer, Addr-on-Option, the dev-runtime aborts. One lane because they share runtime/*.c. - Tier 3: clock, math, getenv, basic file ops. Appends to flan_rt.c in its own section so the merge with the lane above stays clean. - Tier 4 without the runtime: CLI error arms, flan run flags and -O, CI, the stale DISCUSS.md x86 table, README's missing subcommands and env-var table. - The JS backend's first slice, per docs/DISCUSS.md §5's settled decisions: #_ first, then one function under node, then the corpus with a MATCH/DIFFER/REFUSED survey. New reference clones for it are recorded in docs/REFERENCES.md ("Compiling to JavaScript"). Tier 2 (install and shipping) was explicitly passed over. Package visibility is skipped in every lane — it needs a syntax decision from the author. ** All four lanes merged, end of 2026-09-17 evening Tier 1 (runtime correctness + the runtime strays of Tier 4), Tier 3 (clock, libm, getenv, file verbs), Tier 4 (CLI arms, flags, CI, docs) and the JS dialect's first slice are all on dev-loop. Verified together: dune test --force 232/0, @x86 116 MATCH / 0 DIFFER, @js 0 DIFFER, @sanitize clean. Left for the author, recorded where each lives: - Package visibility needs a syntax decision (review Tier 4 item 5). - The v->gen word: spec-memory.md mandates it, nothing reads it; delete or implement is a spec amendment (BUILT.md records the two options). - sand.flan:167 still holds the refused defconst experiment; the diagnostic now prints in full and names the fix. - Tier 2 (install and shipping) deliberately not started. * The repeal, 2026-09-18 The ownership flow analysis is removed: the per-function dead set, the borrow flag, the loop-iteration diff, and the borrowed-never-moved rule for globals. Use-after-move and double-free are no longer compile errors. What stands: move-only as a type property (assignment hands over the header, clone is the only copy), the struct/union/pool ownership rules, defconst-vs-defvar for move-only globals, defer, all allocator capabilities, and the dev build's generation checks — now the primary net, which is the Odin position the memory design came from. Decided after the bug hunt put four of its ten lanes inside this machinery. An unsound checker is worse than none, because it is believed. The door back is spec-memory.md's provenance pass: removal widened acceptance without changing any accepted program's meaning, so a stricter pass can return additively. spec-memory.md "The repeal" is the amendment; BUILT.md and NEXT.md are annotated at their live claims. Two of the day's fix lanes were cancelled with this (borrowed-flag, region element); the while-condition fix merged in the morning is deleted again by the repeal, and its pin with it. * The second round, 2026-09-18 — Pool, move-only, and the gen word Ordered by the author after the ownership repeal, on the same argument: the Odin position, full stop. - Pool and (Handle T) are gone — types, checker arms, runtime section, fixtures. Two containers are enough; a slab with generational handles is a library over a Vec when a program wants one. - The move-only concept is gone: everything copies as its header, copyable? left the predicate list (four remain), and the struct/defdata/defunion owning-field refusals are lifted. The region rule stands untouched — a container of owning elements is still built against a region and released by one free-all. - The gen word left both container headers (read by nothing since it was written). A Vec is ptr len cap allocator epoch; the epoch trap stays. - Container globals keep both declaration rules, reworded: they start zeroed (a global initialiser is a compile-time constant, and a container's only constant is the empty one), and a defconst container is refused since a constant is not an assignable place. sand.flan's experiment line would now be refused with the reworded sentence. Everything verified together: dune test --force 232/0 with zero suite FAILs, @x86 122 MATCH / 0 DIFFER, @sanitize clean, and the whole-repo check sweep against the parent differs only where it should: the two negative fixtures now accepted (vec-in-struct, the clause-less generics corpus), the two pool fixtures deleted. * End of 2026-09-18 — the hunt closed out Ten bug lanes and three demolitions, all on dev-loop and verified together: 232 checks / 0 failures, @x86 122 MATCH / 0 DIFFER, @sanitize clean. - Fixed: while-condition move (then repealed with the machinery), defenum i32 range, the Emacs client's framing/poll/point-min/quit bugs, the session NULL-cell rollback, the stdout pipe drains, x86 shift masking, the reversed slice traps in every build, NaN prints unsigned, the registry answers honestly under churn, and reg at's stopped-only race. - Removed by decision: ownership flow tracking, Pool and Handle, the move-only concept, the v->gen word. spec-memory.md carries the repeal. - Still recorded, not scheduled: trap paths that bypass the break loop, parked orphans outliving dead daemons, emit.ml's transient test and globals, map-grow's stale quote, x86's slice-from-ptr sentence, the float->int UB divergence, the narrowed-buffer C-x C-e quirk, and the JS backend's items (deprioritised). * Late 2026-09-18 — the last two lanes - Six trap paths park instead of killing the session — merged (e6d85c8). All six park for inspection; transfer-fail and restart-unarmed refuse the resume with the trap's sentence. New flan_trap_hook beside flan_break_hook, whose contract could not carry these. Standalone builds die as before. - Parked orphans exiting with their daemon — merged. PDEATHSIG on the two-process child, armed in the agent, with a spawn-SIGKILL-reap test. Found in passing: the eight orphans split 4/4 — four are MERGED daemons whose editor vanished, a separate defect (accept_loop has no client liveness), recorded here. The eight were killed by hand on 2026-09-18. - That second defect is now fixed too. accept_loop keeps a grace since the last client let go of the socket, and ends the session when it runs out. The connection is per session and not per request — Emacs holds one make-network-process for the whole of flan-dev and every deliberate teardown sends [close] first — so an editor left open and idle is an editor still attached, and the clock cannot run under it. Armed only after a first client has connected, so a headless daemon waiting for one is untouched. Two graces: 5 minutes parked, 30 minutes live, because a parked program is invisible (which is why four piled up) and a live one is a window somebody may be watching. FLAN_DEV_CLIENT_GRACE overrides in seconds; non-positive turns it off. Six unit rows on the decision and one end-to-end daemon whose client drops without a [close]. * The dynamic half of item 4, finished Item 4 above is the complaint at line 23: the edn module should read into a struct *and* answer a dynamic value when no type is given. The dynamic half is now the package's rather than a test program's. - [#{}] is read, not refused. The tokenizer's stated reason ("needs a hash set to even represent") was a claim about a reader, and a tokenizer represents nothing; [#{] pushes [}] on the same balance stack [{] does, one new token kind, and [err-set] is gone rather than kept with a new message. - [vendor/edn/read.flan] holds the [Value] data type and [(edn/read bytes)], which answers an [(Option Value)] against the calling convention's allocator. A set is [Value.Set] holding a deduplicated [(Vec Value)] — [(Map Value bool)] does not typecheck, because [keyable] refuses a key holding a Vec or a Map, and restricting set elements to keyable Values would refuse [#{[0 0] [1 0]}], which is the file this was built for. - A Value COPIES every string into the allocator; a Token stays a view. The two layers diverge deliberately and both headers say so. A view handed out of the function that owns the buffer is a dangling pointer no free-all would even take back. - Needed one compiler change to be possible at all: an imported [defdata] was a refusal in load.ml ("not implemented yet, milestone 4"). It is a rename of the type's name plus the [Type.Case] half of a constructor symbol; a match pattern resolves its case against the scrutinee's type and never needed one. Still not built, still item 9 on docs/PORTING.md's list: [(read-edn T bytes)], the typed half. It wants a compile-time walk over a struct's fields and there is no run-time type information to do it with at run time. * Session close, 2026-09-20 — dynamic-first M1 landed Merged on dev-loop, all green (dune test --force 0 failures, @x86 130 match, @sanitize clean): the dyn type (unannotated defn params/returns are dyn, NaN-boxed runtime, mark-sweep GC, --no-gc refuses residual dyn by location), the provider macros (defedn/defjson off macro-slurp; NEXT.md item 9 closed), computed global initialisers on both backends, x86 frame pushes (inspector works under the x86 default), the !-suffix retirement, and the flan-dev→flan rename. typed-flan branch freezes the static language pre-dyn. ** Still in flight, worktree branches to merge when they report - x86 dyn lowering + the x86/LLVM invoke-restart divergence (one lane, two commits) — the author is waiting on this one to start playing. - The writable inspector (SLY-style set + editable render buffer). - docs/SPIKE-DUPLICITY.md, the dyn/native boundary audit (report only). ** Open, author's call - sand.flan holds uncommitted WIP: a defvar initialiser reading game-data.edn at startup aborts the headless import (unhandled FileError at the test's CWD). Options on the table: embed, handler-bind fallback, or harness dep. - Signature pairing's cold-rebuild edge: a later type definition can silently re-pair an unannotated parameter vector; a changed-pairing warning between compiles was proposed and not yet queued. * M2 queue, decided with the author 2026-09-20 — in order 1. dyn maps + keywords (interned, O(1) equality). Retires edn/Value after. 2. Per-type descriptors: dyn fields in structs/conditions become markable. 3. Typed containers into dyn as VIEWS — one descriptor word in the box, reads box the element, writes tag-check. Rides on 2. No copies. DECIDED 2026-09-19: the descriptor is its own thing, not the slice type reused. Two reasons. A dyn value is a single word and a slice is two, so reusing the slice buys no allocation back — the descriptor goes on the heap either way. And a slice carries where and how many but not of what, which is the one fact dyn needs, since boxing a read and tag-checking a write both require the element type. The descriptor is therefore pointer, length, and element type: a slice plus the piece a slice is missing. Left open until the lane is built: whether the descriptor points at the container or is a fattened slice stored beside it. That only bites if the container can grow and move, which would leave a push through dyn holding a stale pointer. — LANDED. Settled: a Vec view holds the address of the Vec's own header and reads its ptr/len live on every operation, so a push that reallocates cannot go stale — there is no snapshot to invalidate, because flan_vec_grow overwrites that same header in place. A slice and a fixed array cannot grow, so a flat view snapshots pointer and length once, which is sound for both and is not the weaker half of an asymmetric choice — pointing a flat view at its own value's slot instead would be worse, since a slot's lifetime is not the slice's. The element set is i64, f64 and bool only: a string element's dyn form is a pointer into the collector's heap, and a typed container's storage is memory the collector never scans, so a wider set would let a write plant a live reference nothing traces. (Vec string) and (Map K V) keep the refusal [box] already gave every container. Both backends, runtime/flan_dyn.c and .h, checker tests, an acceptance row per backend, and a survey program (dyn-view.flan) proving the view against both a growing Vec and a fixed array/slice, plus its own two trap modes. REVIEW, 2026-09-20: relocation was proved sound but relocation was not the hazard that mattered — a view can outlive the frame its Vec header sits in, which nothing could reach before this lane because [box] refused every container outright. Three routes, all newly constructible, all stack-use-after-return: returning a view, stashing one in a dyn global, leaving one behind across a condition transfer. AUTHOR'S RULE: on the dynamic side Flan aims where Clojure and Common Lisp are — holding a value should not hand you garbage — so a container may cross into dyn as a view only when its own storage is permanent — a global's. [permanent_root] in check.ml decides it: a global, a field of one, an element of a permanent ARRAY (an element of a slice is NOT — a slice holds only ptr+len, and what they point at can be a frame already gone; the [At] arm steps every index of a multi-index [(at g i j)] the way [indexed] does and demands an array at each level, because the whole index list rides on one node and reading the target's type alone settled level zero only), or a slice cut directly from one at the call (the trace is lost the moment it is bound to a name first). Everything else — a local, a parameter, a temporary, anything behind a (Ptr T) — is refused by name, pointing at the defvar spelling that works. A heap-held header is not expressible soundly at this milestone for a structural reason rather than a missing feature: a (Ptr (Vec i64)) taken off a heap block and one taken off a local are the same type, so admitting a Ptr as permanent would readmit the exact hole this closes. The rule is a narrowing, not a proof, and flan_dyn.h states the property that actually holds: a view is exactly as stale-safe as the thing it is a view of, no more and no less. A global [i64] whose data was cut from a frame that has since returned still passes [permanent_root] and still reads a dead frame. What the guard closes is the routes the checker can see, not every route. An arena-held header is not a separate case for [permanent_root] — an arena changes where a Vec's elements live, never where its own header (the binding) lives, so the cases above already decide it — but that is coverage of the HEADER's lifetime only, and releasing the arena under a live view is a separate hazard handled at RUN time, not here. [view_vec_check] in flan_dyn.c is what handles it: a Vec records its allocator's epoch and every view operation re-checks it, so (free-all ar) with a live view over an arena-grown global Vec traps cleanly and by name at the next read — verified. (arena-destroy ar) is the gap: it frees the allocator block itself, so the epoch [view_vec_check] goes to read is freed memory. Run plainly it happens to trap anyway — the freed block still held the bumped epoch — but that is the allocator not having reused it yet, not a check that held; under ASan the same program is a heap-use-after-free in [view_vec_check] before it decides anything. Left standing rather than fixed with this lane: the typed side has it identically in [flan_vec_check], flan_rt.c, which reads the same freed allocator's epoch, so it is a repo-level question about arena-destroy's ordering and not about views. Three more, all in the runtime rather than the boundary: [view_vec_check] recursed into itself rendering the very view it had just declared unsafe to read (fixed by never rendering it — the sentence names the epochs and nothing else); [dyn_equal]'s VEC arm read raw [len]/[items] regardless of kind, so two views with different contents compared equal and a map keyed by a view collided with every other view (fixed with view-aware length/element readers, [vecish_len]/[vecish_at]); and the three restatements of flan_vec's layout (flan_rt.c, flan_dyn.c, dyn_ops.c) had nothing tying them together despite a comment's claim that they did — a [layout] probe on each, compared field by field in dyn_ops.c's new "layout" mode, makes a disagreement a FAIL line instead of a silent corruption. 4. nil: arrives with maps. nil <-> None at (Option T) boundaries, trap at bare T, (Some nil) unconstructible. — LANDED, 3c1fb1b. The bare-T trap is split: a literal nil the checker can see is refused at compile time, in expect itself; a dyn only known nil at run time still reaches flan_dyn_need_i64's existing trap unchanged. (Option (Option T)) does not cross either direction, same ambiguity as (Some nil). (Option dyn) is a legal type the boundary code already treats correctly — the payload is the identity, box and unbox both — but not yet a storable value anywhere: the per-type-descriptor pass (item 2) refuses it the way it refuses (Vec dyn), and item 4 does not lift that gate. 5. Typed = and != grow strings: bytewise, length + same-pointer fast paths, both backends, one survey program. Ordering stays refused. — LANDED, daed039 6. defclass = named dyn map + shape tag; CLOS class dispatch AND Clojure-style arbitrary dispatch functions. After 1. — LANDED, 8d2bf2a (the feature), 5af990e (the daemon proof and an x86 descriptor fix it turned up) and 6c6024e. Written up below, "Classes and generic functions, 2026-09-20". 7. dyn if: truthiness (nil/false are false, all else true). Typed stays strict bool. — LANDED, 264765a Reaches when, cond, if's own condition, and's condition, or's condition, not and while for free or by hand, all through one funnel in check.ml (check_truthy). Two things fell out of it that nobody had decided going in, one fixed on review and one left as the author's call: - Neither and nor or handed back the operand that decided it. Clojure's rule is that both do; each answered a bare bool sentinel on its deciding path instead. and's "false" sat in the else arm, so check_if typed the real branch first and boxed the sentinel to match: an all-truthy and did carry its last dyn operand through, but a falsey one answered false where Clojure answers the falsey operand — (and (box 1) (box nil) x) printed false, not nil. or's "true" sat in the then arm, the one check_if types first, so the sentinel decided the whole expression's type and a later non-bool dyn answer hit the strict bool boundary and trapped: (or nil "x"), the canonical (or x default) idiom, crashed rather than answering "x". FIXED for or in ad0f1fb and for and in this pass: both now bind the test to a temp and answer the temp on the deciding path, Clojure's own expansion — (let [t a] (if t t b)) for or and (let [t a] (if t b t)) for and — evaluating each test exactly once. The asymmetry between the two forms is fully closed; the survey program (test/programs/dyn-if-truthy.flan) pins both, short-circuit and single-evaluation included, and test_flan.ml pins both desugarings down to the bound name and the bound value. Two things came with that pass. The temp binding and the if it feeds now carry the *operand's* loc rather than the whole form's, which ad0f1fb had lost for or: (or (vec-new i32) v) blamed the enclosing form at 3:13 and now points at the operand at 3:18, and and's second operand gained the same precision. And, noted and not acted on: with both arms of the desugared if now holding real values, a dyn operand mixed with a typed bool one makes check_if unify them by the then arm, so a non-bool dyn value on the losing side traps at the strict bool boundary — (or false (box "s")) and (and (box nil) some-bool) both do. Each form used to be safe in exactly one of those directions, because the sentinel it answered was a bool literal that boxed to fit the real branch; neither is now, and they are at least symmetric about it. (and (box nil) some-bool) printing false is the one previously-compiling behaviour this pass changed. Making a bool arm and a dyn arm join as dyn is a check_if question and the author's call, not settled here. - A bare keyword condition used to be checked with want:Bool from the start and refused by the keyword arm's enum-or-refuse case: ":kw is an enum member where an enum is expected and a dyn keyword elsewhere, but bool is expected here", there being no enum in play. Checked with no expectation first, as every scrutinee now is, it resolves as the dyn keyword instead, and a dyn keyword is unconditionally truthy — a typed if with a bare keyword condition now compiles and always takes the then branch. The author's call: lispy truthiness wins here, the lost diagnostic is not brought back. Pinned in test_flan.ml so it does not regress by accident. Also noted at check_truthy (check.ml) and not acted on: check_truthy's own retry-on-failure, needed to keep a refused literal's or None's message unchanged, re-runs the whole failing subtree rather than only the leaf that needs it, which is exponential in how deep a chain of nested not gets on a program that does not type-check. Moot for anything that compiles; visible only around twenty levels deep, and only the dev daemon's half-typed-form recompiles could ever feel it. A cheaper retry was tried and shelved — it would need to thread want exactly as far as the full retry already does, or it changes which literal further inside a compound condition gets the nicer message, not just the speed. 8. Return slot stays mandatory (dyn or ()) — the parse ambiguity it closes is real; revisit only if it grates. SETTLED 2026-09-19, reconfirmed with the author: both spellings stay legal, () is not collapsing into dyn. No work follows from this one. All of it dispatches after the x86-dyn lane lands. The struct dyn-field refusal (01e60fa) is the stopgap 2 lifts. ** The two models, named 2026-09-19 With a collector in the runtime, the direction has a shorter statement than it used to. The dynamic paths mimic Clojure. The static paths mimic Odin. Both carry a little more ML than either of them does. That is a tiebreaker, not a slogan. A question on the dyn side that Clojure has already answered takes Clojure's answer unless there is a reason to depart, and the same holds for Odin on the static side. Keywords, maps and nil landed under that reasoning without it being written down yet. Common Lisp is consulted alongside Clojure on the dynamic side, and on some questions it is the better authority of the two. The condition system is the standing proof: handler-bind, the restarts and invoke-restart are Common Lisp, and Clojure has nothing resembling them. handler-case is the same lineage — Clojure's try/catch is the shape most reached for, but the form being added is Common Lisp's, and it is named for the Lisp rather than the Clojure because it is the unwinding half of a pair whose other half is already CL's. Where the two disagree, the question is which one the rest of Flan already agrees with. Conditions say Common Lisp. Maps, keywords and nil say Clojure. Neither answer generalises to the other's territory. The ML share is the part neither model supplies — the type system, the options, the exhaustive matching, and whatever a second ML surface would eventually add if the deferred syntax question ever reopens. ** Arithmetic semantics do not fork across the two spaces, decided 2026-09-20 One operator, one meaning, both sides. `/` on integers truncates toward zero and `%` is its remainder, sign following the dividend — LLVM's sdiv/srem, the x86 backend's cqo/idiv, and flan_dyn.c's arith all already agree, and that agreement is now the rule rather than a coincidence. The author's call: this sort of semantics is normalized across the dynamic and static spaces, so the Clojure tiebreaker above does not reach it. Clojure's flooring `mod` (sign of the divisor) is NOT to be added as a dyn-side-only behavior of `%`; if a flooring mod is ever wanted it is a second, separately named operation available to both spaces, the way Common Lisp keeps `rem` and `mod` side by side. Division by zero and INT64_MIN / -1 trap identically on both sides, and float `%` is fmod on both backends and in dyn. ** handler-case, decided 2026-09-19 Flan has handler-bind, which is the resuming handler: it runs where the condition was signalled, with the stack still standing, and carries on by invoking a restart. What it has no spelling for is the other half — unwind, and answer the whole form with a value. Clojure spells that try/catch and reaches for it constantly; the closest thing here is a handler-bind plus a use-value dance that is far heavier than the intent, or a pre-check that races the read it guards. The gap showed itself when edn/read-file stopped returning an Option. The caller that used to write or-else against a None had nothing left to write, because the missing file now arrives as a FileError condition and the only concise way to answer a condition with a default did not exist. The shape wanted is: (handler-case (edn/read-file "game-data.edn") [(FileError [c] nil)]) which keeps read-file's decision intact — the caller still says what a missing file means — while costing one form instead of a machine. Until it lands, sand.flan guards the read with file-exists?, which is a stopgap and racy, and should be rewritten the moment this exists. ** The JS backend answers string equality wrongly, parked 2026-09-19 Typed = and != grew strings in daed039, and the JS dialect was not taught the case. A string there is a view object and the arm at lib/js.ml:856 compares with ===, which asks whether two views are the same object rather than whether their bytes agree. The arm was unreachable for strings until the checker stopped refusing them, so the lane made an existing hole live without touching the file. Equal literals still answer true, because equal literals intern to one view, which is what makes the wrong answer quiet rather than obvious: (= s (string (slice (bytes s) 0 3))) is true natively and false under --target=js. The author parked it. JS stays deprioritised and the fix is not queued. The option on the table when it is picked up again is a loud refusal in that arm rather than a real implementation, so the dialect says it cannot do this instead of saying something false. ** Sweep policy, decided 2026-09-19 A lane runs the fast check and nothing more. `dune test` is the whole of a lane's obligation. It used to be judged by reading the printed output rather than by trusting the exit status, on the theory that some path through the acceptance runner could print a FAIL and still exit 0. That theory did not hold up: test_acceptance.ml is one match on whether clang is on PATH, the wasmtime/raylib/lldb probes inside it are ordinary `if`s that fall through to the same tail rather than branches that leave early, and the tail already turned a nonzero failure count into exit 1 — so did every other test binary's tail, checked the same way. test_acceptance.ml now also carries an `at_exit` guard, but it closes no open gap; it is insurance against a future case leaving past the tail instead of through it. The exit status was already trustworthy and stays that way, so either check does. Running one program directly to capture its real output for an acceptance row is still expected; that is cheap. What a lane may no longer do is sweep. The x86 survey and the sanitizer sweep run once, after several lanes have landed, and whatever they turn up is dispatched as fixes in a single batch. The reason is arithmetic: a survey walks all 156 programs across three modes, and a lane that touches a handful of them was paying that cost in full to learn nothing about the rest. Paid once for several lanes, the same sweep answers the same question at a fraction of the wall clock. The consequence to accept is that a lane is reviewed on its code rather than on sweep numbers it no longer produces, which is what the review before a merge is for. * handler-case, decided 2026-09-19 Built, both backends, and it needed no backend work at all: it is a handler-bind whose clause invokes a restart the form established around itself, which is spec-conditions.md's one open question about the operator answered in the affirmative. The shape is (handler-case BODY [(T [c] ...)]), body first and clauses after, the opposite of handler-bind's order because a handler-bind reads as something put around a body and this one reads as a body with answers hung off it. Everything the unwinding form needs it inherits. Defers and the with-allocator restore run on the way out because a transfer already runs them for every frame it leaves. The body and every clause agree on one type because §3 already says a restart-case's do, and a clause that disagrees is refused with the same message an if with disagreeing arms gets. A condition no clause lists installs no matching frame and carries on outward untouched. A clause runs at the form, so it sees the establishing function's locals, which a handler-bind clause cannot — that is the whole difference, and it falls out of where a restart clause runs rather than being arranged for. The one wart, noted and left: the restart the form makes up for itself is on the restart stack like any other, so a break loop entered underneath one lists it. Choosing it there is refused loudly rather than answered wrongly, and hiding it would mean a new field in a frame layout written out in emit.ml, in x86.ml and in flan_rt.c. * Surface syntax discussion, 2026-09-19 The author wants an F#-ish indentation-based ML surface living side by side with s-expressions, not replacing them. The languages that disappear for the author, in the order named: Python first, then Odin, then F#. That ordering is the case for why Flan's own parens might be costing more than they look like they cost. The architecture agreed if it is ever built: one AST, the existing forms unchanged, and a second reader in front of it. Macros stay usable from either surface, since they operate on the same AST either way. A Nim-style quote-block was floated as the way a macro's own body could be written in the ML syntax rather than in s-expressions, without needing a third representation. Middle options came up and were set aside rather than chosen. Parinfer stays an editor trick — it never changes the language, only how parens are typed, so it does not touch the actual complaint. Wisp and sweet-expressions (indentation implying the parens) were considered and are closer to a real second surface than Parinfer, but still read as a compromise rather than the ML syntax the author actually wants. A simplified in-paren syntax was also on the table and rejected on the same grounds — it thins the parens without removing them. Rhombus was named as the maximal reference point: whatever a full second surface costs, Rhombus is roughly what it costs to do properly. Decided: deferred, no spike queued. The author's working hypothesis is that the friction with Clojure may not be the parens at all — it may be immutability, and the discipline of planning a shape ahead of time that comes with it. The plan is to write imperative Flan as it stands and see whether the parens still grate once that variable is gone. Revisit this once that evidence exists. * The x86 backend tracks LLVM -O0, decided 2026-09-20 The ruling, in the author's words: the x86 backend must behave as closely to LLVM at -O0 as possible. A construct LLVM compiles, x86 compiles, and the two must agree on what the program observably does. The backend is allowed to refuse a node it does not lower — that is what X86.Unsupported is for and it is how the survey reports a gap — but a refusal is a bug to be closed, not a position. "LLVM takes this and x86 does not" is by itself a defect report. What made it a ruling was typed float %. emit.ml's prim arm emits frem for Rem on a float, so (% 7.5 2) compiled under LLVM and printed 1.5; the matching arm in x86.ml had no float Rem case and died at build time with an unlocated internal error, "x86: that operator on f64". Dyn % on floats worked on both backends the whole time — flan_dyn.c's arith implements the fmod identity — so deleting the annotations made the program build again, which is exactly backwards. x86 is the dev loop's default backend, which is what turned a backend gap into a thing the author hit while writing ordinary code. Fixed by calling the same function LLVM calls. There is no SSE remainder instruction and LLVM does not invent one: a frem that reaches the code generator becomes a call to fmod or fmodf, which objdump shows as a call to the PLT stub — fourteen of them in a build of the probe whose operands come through globals, and none at all in one written with float literals, where the pair is folded to its answer before any call exists. x86.ml now loads the two operands into xmm0 and xmm1 — already the SysV argument registers — and calls fmod or fmodf by width. Agreement is then by construction rather than by a second hand-written identity that would have to get every rounding, every signed zero and every infinity right on its own. Nothing new had to be arranged for the link: the prelude already declares both symbols as fmod-f32 and fmod-f64, and every link passes -lm. Rem was the only gap. Walking emit.ml's prim arm against x86.ml's: the whole float surface is Add, Sub, Mul, Div, Rem and the six comparisons. x86 had four of the five arithmetic operators and all six comparisons, and the comparisons match LLVM's ordered predicates — oeq and one are built there from a setcc against ucomis plus the setnp that rules out the unordered case, which is what the o in the LLVM predicate means. The bitwise and shift arms are integer-only on both sides. So nothing else was missing. ** The aspiration: tests that say x86 still tracks -O0 Wanted, and half of it exists. @x86 (test/dune:239) is already the diff: it builds every program in test/programs, spike/x86 and spike/js twice — once through LLVM, once through --x86 — runs both, and compares stdout, stderr and the exit status. SURVEY_STRICT makes a DIFFER or a by-name refusal a failing build. So a corpus program that exercises a construct is already a test that the two backends agree about it, and the float % cases added to math3.flan are in that set by being in test/programs. What @x86 does not do is pin the LLVM side at -O0. It builds both sides at the default -O2, so a construct LLVM folds at compile time — a % over two float literals is one: that build contains no fmod call — is compared as a constant against the x86 backend's actual lowering. The float % block in math3.flan goes through globals for that reason, the same reason arith.flan gives for its own. Two things would close the rest of the gap: an -O0 pass of the sweep, so the LLVM side emits the calls and branches rather than the answers — the script already has SURVEY_FLAGS, which hands the same extra flags to both sides, and both sides do accept -O0 — and something that walks the two prim match arms mechanically rather than relying on somebody reading them side by side, which is how this gap survived. Neither is queued. * Per-form initialisation semantics on re-run, decided 2026-09-20 The defining form is the contract, and the daemon does not have a policy about globals at all. - [defvar] is Common Lisp's [defvar]: its initialiser runs only if the variable is not already initialised. Its value therefore survives a re-run, which is what the daemon has always promised in its own words — "the globals are as the last run left them" — and what a zeroed one already got for free, since .bss is untouched by a second entry into main. - [defconst] with a compile-time-constant initialiser is written into the image — the linker's on one backend, [flan..init-data]'s stores on the other — and no startup code reaches it, so a re-run reaches neither. The split is [Tast.const_init]'s and it is over the *initialiser*, not over the form: a computed [defconst] would be guarded exactly like a computed [defvar]. The x86 backend does guard one; the LLVM backend refuses the program instead, because [Emit.const] has nowhere to run a computed value. That divergence predates the re-run rule — the refusal landed in 495629f and the flags in 931cf86 — and is noted here rather than fixed. Resolved 2026-09-20: there is no computed [defconst] any more, so the paragraph above describes a program the checker no longer accepts. See "A defconst is a compiler const" below. - If the language grows a [def]-style form that re-evaluates, that form recomputes on every run. None exists today and none was invented for this; the rule is written so that adding one is a new case and not a revision. A re-run may therefore re-enter the startup function as freely as it re-enters anything else. Each initialiser guards itself: [Emit.startup_plan] gives every computed global a flag of its own — zeroed in .bss, set after the store — and wraps the store in a test of it. Per global rather than per startup function, because the rule belongs to the form; dev builds only, so a release build's .ll and .s are byte for byte what they were, which was measured on both backends rather than argued. The flag's name is [.init~once.]. It was [.init-once.] until 2026-09-20, which a program could collide with: [.] and [-] are both ordinary symbol constituents, so [(defvar .init-once.x i64 7)] beside a computed [x] emitted the same symbol twice and the dev build died at the assembler on both backends — and worse, the flag's Bool was registered over the user's global in [Emit.globals], so the store to it came out as an [i1]. [~] is a terminator in the reader, so no symbol a program can write contains one; [destructure~N] uses the same trick. [test/programs/dev-rerun.flan] carries a global named [.init-once.counter] to keep it pinned. Verified against a live daemon on both backends with [test/programs/dev-rerun.flan]: a computed i64 counts 41, 42, 43, 44 across four runs where it counted 41, 41, 41, 41 before; a computed dyn map keeps the mutations every run made to it; a zeroed [defvar] still accumulates; a [defconst] is untouched. The block in test_dev.ml that pins it fails on the pre-fix compiler in exactly the two computed cases and in neither of the other two, which is the other half of the claim. ** The interaction with the park's root reset Written when the watermark fix had not landed; both are merged now, so what holds is this. The park's [flan_dyn_root_reset] preserves the dyn globals' permanent roots — it cuts the stack back to [roots_base], the watermark [flan_dyn_root_globals_end] recorded. A re-run's [flan_dyn_root_globals_begin] empties the stack outright, the emitted main re-pushes every global's root, and [_end] re-records the base, so push-exactly-once holds via the bracket rather than via anything the guarded startup does. The guarded startup skipping its stores on a re-run is safe against all of that because the pushes take the global's slot address, never its value, and they sit before the startup call on both backends — nothing in the bracket depends on an initialiser having run. ** bin/main.ml still spells the compile pipeline out by hand The test directory's copies of Load → Check → Reach.link now go through [Test_support.linked] (test/test_support.ml). bin/main.ml has the same shape twice more — :684 and :864, each a load, a check and a [Reach.link] feeding [Build.executable] — and they were left alone, because the lane that did this was test/-scoped and because they are not quite the same three calls: the CLI loads through its own [load] and checks with [Check.program_all] rather than [Check.program]. So closing this is not a matter of calling the test module from bin/, which would be backwards anyway; it means the pipeline moving into lib/ — Build, or a small front-end module beside it — with the two checkers' difference made an argument, and bin/ and test_support.ml both calling that. Not queued. * Memory diagnostics on demand, decided 2026-09-20 ** The author's spec Clojure's [*warn-on-boxed*] crossed with Rider's heap-allocation squiggles. Both kinds of allocation: the GC's — boxing a typed value into dyn where it is not an immediate, map/vec/string construction, the big-int spill — and the native side's — vec-new, a push that may grow, arena allocation, slurp, anything routing through an allocator. Two visually distinct classes, rendered in different colours by the editor and both FAINTER than an error ("they should somewhat fade"). Off by default, surfaced on demand two ways: an Emacs command of the "check for warnings" shape that asks for the current buffer's and overlays the answer, and a compiler flag so the CLI can decide when they appear. Flycheck integration a nice-to-have. Precision over completeness in v1: never mark a site that does not allocate — a dyn immediate must not squiggle — and a site that allocates only sometimes says "may allocate". ** What landed [Check.memory_sites], a pass over the finished program in the shape [Check.no_gc] already has: it runs after checking, answers a [Loc.diag list], and nothing downstream is told it exists. Asking cannot change what compiles. The class rides on the diagnostic's [kind] — "memory/gc" or "memory/native" — so the CLI and the daemon dispatch on one field and neither parses a message. [flan check FILE --warn-memory] and [flan build ... --warn-memory] print them to stderr in the standard [file:line:col: warning: ] shape with the squiggle, filtered to the file named on the command line. The exit status does not move. [(:op "memory")] on the dev daemon answers [(LOC KIND MESSAGE)] rows over [t.session.program], needing no running program — a parked session answers it. [M-x flan-check-memory] in flan.el paints them: two faces, both fainter than [flan-error-face] and with no message drawn beside the line, priority under an error's so a refusal still wins a shared span. [M-x flan-clear-memory], or an edit, or asking again, takes them down. ** Where this overrode the spec, and the evidence *** (vec-new T) and (map-new K V) are not marked. The spec's enumeration lists vec-new as a native allocation; the runtime says otherwise and the spec's own precision rule says to believe the runtime. The ["vec-new"] arm in check.ml passes a capacity of literal zero to [flan_vec_init], and that function's body returns before [flan_vec_grow] when [cap <= 0]. [flan_map_init] never takes a block at all and carries its own comment saying so — "No block until something is put in it". The block arrives at the first push or put, and those are the lines marked. [(vec-new dyn)] and a dyn map literal are the other answer: those are the dyn runtime's own objects and [gc_alloc] runs at the call, so they are marked. The classifier reads [flan_vec_init]'s capacity argument rather than keying on the symbol, which is what lets [slurp] — the caller that sizes the Vec to the file — be marked "allocates" through the same entry point that vec-new is silent through. *** Dyn arithmetic is not marked. [flan_dyn_add] and its siblings end in [flan_dyn_from_i64], so a wide enough result does spill. Nothing static knows the operands, and a squiggle under every dyn [+] is exactly the false positive the precision rule exists to prevent. [flan_dyn_from_i64] IS marked at an explicit crossing, and only when the value can leave the 48-bit payload: a literal inside ±2^47 and a value widened from a narrower integer type are both provably immediate and silent. *** Keywords are not marked. Interned and immortal — flan_dyn.c's intern table holds the only copy of each name, nothing removes one, and [mark_value] walks BOX_OBJ and nothing else. There is no GC object to attribute. *** Dyn push and put are not marked. Added 2026-09-20, from a review: it had only ever been in a test comment. [flan_dyn_push] and [flan_dyn_map_set] are not in [Check.memory_class]'s table and they provably may allocate — a dyn vector or map growing itself is [gc_alloc] on the collector's heap, the same class every other gc row names. This is the one row the precision rule does not decide; it is a judgement. The unit this pass reports is a line the programmer can act on — crossing into dyn is a choice, pushing onto an allocator's Vec is a choice — and a dyn container taking a block to hold what was just put in it is the only thing it could do. Marking it would squiggle every =(push dv x)= in a program that chose dyn, which is the noise the rule exists to keep out. Pinned as a negative in test_flan.ml's "collected heap" row, beside the typed push that IS marked on the line above it. The consequence is that the daemon's =:note= cannot claim "every site the checker can prove may allocate", and no longer does: lib/dev.ml's memory op says what holds and names this exception. *** The overlays outlive the next command. The spec asked for the paths that clear an error overlay. Those hang off [pre-command-hook], which takes an overlay down before the next keystroke — right for feedback about a failed evaluation, and fatal for an annotation: moving point through a marked line is what you do with these on screen. They clear on [after-change-functions] instead, plus the explicit command and the repeat-toggle. Documented in emacs/MANUAL.md. ** Flycheck flan.el has no flycheck wiring of any kind, so per the spec's own branch no checker was defined. emacs/MANUAL.md documents the CLI pattern and carries the [flycheck-define-checker] form for anyone who wants one — the flag is the command, and the printed shape is the error pattern. ** Pinned test/test_flan.ml pins three programs by exact location, kind and message: the collected heap (a dyn vec, a map literal, a string crossing, a wide i64, and the five immediates plus an i32 widening that must stay silent); the allocator side (arena-new, slurp's sized vec-init, a typed container's view record, put, reserve, with a typed vec-new and map-new silent between them); and dyn arithmetic answering nothing at all. test/test_dev.ml drives [(:op "memory")] over the socket against programs/dev-dyn-global.flan, whose one line is two gc crossings at two columns and no native allocation anywhere. * Review-batch findings, 2026-09-20 Two things found in review that this lane could not fix in the files it owned. Written down here so they are not lost with the branch. ** The daemon leaves its temp directory behind, forever Every session makes =/tmp/flan-dev-/= — lib/dev.ml:3516 for the two-process daemon and lib/dev.ml:4415 for the merged one — and nothing ever removes it. It holds the built =program=, the host's =host.ll= or =host.s=, the reload modules and =agent.sock=: about 7MB a session. The review counted 873 of them, 5GB, on the morning of 2026-09-19; this lane counted 68 and 457MB on 2026-09-20. Whatever removed the difference, nothing in the tree did, and the count climbs again with every =M-x flan=. The fix is small and the merged daemon already has the one place for it. Its session ends at lib/dev.ml:4395: [accept_loop] returns, the listening socket closes, the editor socket is unlinked, and [Unix._exit 0] follows. A recursive remove of [dir] belongs between the unlink and the flush — that one site covers all three ways a session ends cleanly, because all three come back through [accept_loop]: - =close= from the editor (lib/dev.ml:3359, which returns [true] and ends the loop); - no editor connected for the grace period (lib/dev.ml:3472); - the program finished and the parked process is let go. The two-process daemon needs the same thing at its own session end. Two deliberate non-goals, and they are the reason this is worth spelling out rather than just doing: - *Not on a crash.* The sibling branch at lib/dev.ml:4393 is [accept_loop] raising, and the directory is the post-mortem — the binary and the exact IR it was built from. Only the clean return cleans up. - *Not other sessions' directories.* A sweep of =/tmp/flan-dev-*= would delete the working directory of a daemon that is still running, and a stale pid is not proof of anything. Each session removes its own and no more. Not done here because lib/dev.ml belongs to another lane that has not merged. ** and's last operand gets a misdirected caret in a want-free position [shortcircuit] in lib/parse.ml documents this at the site; the summary is that =(println (and true true (vec-new i32)))= reports "expected (Vec i32), found bool" with the caret on the second =true=. The last operand of an =and= is the then arm, check_if types the then arm first, and the mismatch is therefore reported against the else arm, which carries the *previous* operand's loc. Every other operand position is right, because an operand anywhere but last is a condition and check_truthy blames it at its own loc; =or= is right everywhere, because there the chain and not the sentinel sits in the else arm. Compiled on the tree at every operand position of both forms, want-free and want-ful; want-ful is right everywhere too, because the want reaches each arm instead of the arms being unified against each other. Not fixed. Three candidate fixes were considered and rejected: giving the else arm the last operand's loc makes the sentence read backwards ("expected (Vec i32)" under a caret on the thing that is the (Vec i32)); answering a bool sentinel again reverts the fix that made =(or nil "x")= answer ="x"=; and inverting the condition to move the last operand into the else arm costs a [not] per operand and worse locs than it buys. What would fix it is check_if preferring the arm that is not a compiler temp when it decides which one to blame — a change in check.ml, which this lane did not own. * A numeric cast opens a dyn box, decided 2026-09-20 Every numeric cast — =(f64 x)=, =(i64 x)=, =(u32 x)=, =(f32 x)=, all of them — takes a dyn operand now. Until this, the cast arm refused it with "f64 converts a number, found dyn", and the only thing in the language that opened a box was a typed parameter, so a program wanting a number out of a dyn wrote a one-line function whose parameter slot did the unboxing and called *that*. A cast is the operator for "convert this to that"; it is the spelling that should have worked. Three cases, and the middle one is the author's call. 1. Same kind. The box holds what the cast asks for, so the cast is the unbox and nothing else. A dyn box only ever holds an i64, an f64 or a bool among the numbers, so =(f32 d)= on a float box unboxes to f64 and narrows, and =(u32 d)= on an int box unboxes to i64 and narrows — each by the rule the same cast already follows on a typed operand. 2. Cross kind — COERCE, with a warning. The author's words were "just coerce it with a warning". =(f64 int-box)= is 7 -> 7.0 and =(i64 float-box)= is 2.5 -> 2, the truncation toward zero =(i64 2.5)= already does, range-check and ArithError included. This overrides the tempting rule of matching the parameter boundary, which traps on a kind mismatch: a cast is already a conversion operator — =(f64 5)= converts a typed integer — so converting across the box is the cast doing its job. The warning exists because the box's kind was not what the program apparently expected, not because the conversion is in doubt. 3. A box holding a non-number traps: text, nil, keyword, vec, map — and *bool*, which is not a special case but the parameter boundary's existing answer mirrored. flan_dyn_need_i64 refuses a dyn holding true at a typed i64 parameter today, and =(i64 d)= refuses it for the same reason and in the same voice. ** The warning is once per SITE These casts sit in per-cell-per-frame loops — sand.flan runs at 120fps — so a per-occurrence line is a flood and not a diagnostic. check.ml threads the site's loc text into the runtime call and flan_dyn.c keeps a small table of sites it has already spoken about, keyed on the loc's *bytes* rather than its address: the two backends emit their own constants for it and neither promises that two mentions of one site share a pointer. Sixty-four sites, and past that it stops deduplicating rather than stops warning — the noisy failure, not the silent one. The line is: FILE:LINE:COL: (f64 x) found a dyn holding an int, and converted it to f64 — warned once for this site The bare =FILE:LINE:COL:= is the house shape for a loc-bearing runtime diagnostic — flan_rt.c's bounds, divide-by-zero and null-allocator sentences all open that way, and the =flan:= prefix is reserved for the lines that carry no location (the leak report at flan_dev.c:1765, the argv failure at flan_rt.c:179). An earlier draft of this warning wore =flan= in front of the location; it was taken off to match the neighbours. Both builds warn, dev and release. No precedent was found making a diagnostic of this kind dev-only: the allocation registry's notes are the one runtime family a release build drops, and those are a *feature* being disabled, not a warning being hushed. After the first hit this costs a tag compare and a linear scan of a handful of entries, which is nothing. ** How it lowers, and why that shape check.ml's [cast_dyn] builds a branch, not a call that converts: (let ([s d]) (if (= (flan_dyn_cast_kind s "file:1:2" "u32" 0) 1) (u32 (flan_dyn_need_f64 s)) (u32 (flan_dyn_need_i64 s)))) flan_dyn_cast_kind answers 1 for a float box and 0 for an int box, traps for everything else, and warns when the answer disagrees with the target. Each arm is then an ordinary [Cast] over an ordinary need — *the same node* a typed operand of that type would have produced. The alternative was a coercing runtime entry point answering the finished number, and it was rejected because =(i64 2.5)= is not a bare fptosi in this compiler: Emit.check_cast range-checks it and signals ArithError when the value will not fit, and lib/x86.ml does the same. A C function returning an int64_t would have had to grow its own second opinion about range and NaN, in a second place, for two backends — a fork of exactly the kind "Arithmetic semantics do not fork across the two spaces" forbids. With the branch there is nothing to keep in step, and "x86 tracks LLVM -O0" holds by construction: programs/dyn-cast.flan prints byte-identical output on both backends, warnings and trap included. The generic cast arm — =(t x)= inside a body with ={:where (numeric? $t)}= — did NOT grow a dyn case and did not need one: the operand's type there is what the bound admits, and numeric? does not admit dyn, so a dyn cannot reach that arm. Pinned in test_flan.ml. ** What this repeals test_flan.ml's row "a keyword with no expectation converts as dyn" pinned =(i64 :space)= as a *check* error. It is a well-typed program now and a run-time trap instead; the row became an [accepts] saying so. That is the whole of the behaviour change outside the new feature. ** For the author: the shims in sand.flan can go sand.flan defines =dyn->f64= and =dyn->u32=, one-line functions whose only job is that their parameter slot unboxes. Every call site can now write the cast directly — =(f64 d)=, =(u32 d)= — and the two defns deleted. Not done here: sand.flan is the author's WIP and this lane did not touch it. * Follow-ups from the 2026-09-20 reviews Small, verified findings the reviews turned up after their lanes had landed. Each was re-checked against the tree before it was written or fixed. ** runtime/flan_dyn_stub.c is dead, and the author should decide its fate RECOMMENDATION: delete it. Not done here — it is a file the author added and removing it is his call, so the facts are written down instead. *** What it was for, in its own words Its header says it plainly: "a standing-in implementation of the flan_dyn.h ABI ... THE MERGE REPLACES THIS FILE WITH runtime/flan_dyn.c. It exists so that the compiler side of dynamic-by-default can be built and run against the fixed ABI before the real runtime lands." The merge it names happened. The real runtime is =runtime/flan_dyn.c=, and lib/dune pastes *that* file — not this one — into Runtime_src (lib/dune:41, :52). *** Why it is dead - No dune rule mentions it, in lib/dune, runtime/ or test/dune. - No .ml refers to it; no test links it; =flan build= never compiles it. - The only mentions anywhere are two historical citations in docs — docs/SPIKE-DUPLICITY.md:58 cites a line number in it, and docs/handoffs/HANDOFF-dyn-m1.md:131 explains that the stub verified nothing about root discipline. Both are narrative about a period that has ended; neither gives the file a live job. *** It does not compile Two conflicting-type errors against its own header, both pre-existing and neither caught by anything, because nothing builds it: clang -c runtime/flan_dyn_stub.c -Iruntime flan_dyn_stub.c:90: flan_dyn flan_dyn_from_bool(int32_t v) vs flan_dyn.h:68: flan_dyn flan_dyn_from_bool(uint8_t b); flan_dyn_stub.c:293: int32_t flan_dyn_need_bool(flan_dyn v) vs flan_dyn.h:145: uint8_t flan_dyn_need_bool(flan_dyn v); So the one thing it could still be — a second implementation the header is diffed against — is a thing it has already stopped being. *** The cost of keeping it It is maintained by accident: the dyn-cast lane added [flan_dyn_cast_kind] to it (flan_dyn_stub.c:333) alongside the real one. That is a duplicity the doctrine does not ask for — the same side of the same capability, written twice — and the copy is the one no test can reach. This batch deliberately did NOT carry the warning-prefix change below into it, so the two now disagree. ** The cast warning wears the house prefix See "The warning is once per SITE" above. The =flan= in front of the location came off; a loc-bearing runtime diagnostic opens with a bare =FILE:LINE:COL:= everywhere else in the runtime. ** Where the memory classifier overrode the spec: dyn push and put Written into the memory-diagnostics decision above, where its siblings live: see "Dyn push and put are not marked" under "Where this overrode the spec, and the evidence". It had only ever been in a test comment. ** Two stale "kept honest by" claims, corrected lib/build.ml's note beside the header write and test/dyn_ops.c's own header both said dyn_ops.c calls every function runtime/flan_dyn.h declares. It does not, and the corrected header made that visible: [flan_dyn_cast_kind], [flan_dyn_is_nil], [flan_dyn_need_not_nil], [flan_dyn_map_get], [flan_dyn_map_set] and [flan_dyn_map_contains] are declared and never called there. The check the include buys is real but narrower than the claim: for a function dyn_ops.c *calls*, the call is compiled against the header and the symbol has to resolve against flan_dyn.o, so a rename, a removal or a changed argument list is a compile or link error in =dune test=. A function nothing here calls gets neither. Both comments now say that instead. * Typed structs do not version; a shape that evolves is a defclass, decided 2026-09-20 The struct-version-word design (plan.org's dev/release table, candidate B in docs/SBCL-REDEFINITION-NOTES.md) is dropped, not deferred. A typed struct redefinition that changes layout keeps today's refusal; the author's call — "let's just ignore it then, we should be using defclass instead." The division of labour is the two-model one: a shape still being discovered lives on the dyn side as a defclass, where CLOS-style lazy migration handles redefinition (its own lane); a typed defstruct is a commitment to a layout, and changing a commitment restarts the process. SBCL context that settled it: SBCL also refuses by default (a continuable error), and its push-through-and-invalidate behaviour is cheap only because its instances carry headers, which Flan's flat structs deliberately do not. * A defconst is a compiler const, decided 2026-09-20 The author's words: "defconst should not be computed, it's the equivalent to a compiler const." So a defconst's initialiser has to be a compile-time constant, and the refusal is the checker's — [Check.const_defconst_init], called from [check_global] right after the union refusal it sits beside. It had to move because the two backends were not refusing the same program. [Emit.const] refused a computed defconst by name, late and on its way to LLVM IR; the x86 backend classified globals by [Tast.const_init] alone, so the same defconst fell into the computed set, was stored by the startup function and was guarded by an [.init~once.] flag exactly like a defvar. The same split let x86 accept =(defconst g U (U.B {.x 1}))=, a data type case in a constant, which LLVM refused with the byte-level-encoder message. One refusal in the checker ends both, and it is the only place that can name the way through. ** The boundary, derived rather than chosen What a defconst may be is exactly what [Emit.const] can write and what the x86 backend's [data_sym] path lowers, which is [Tast.const_init]'s set: an integer, float, bool or string literal; unit; a zeroed or uninit value; [None]; a [Some] of one of these; and a struct literal or array of them. Nothing that compiled on LLVM before stopped compiling. Integer arithmetic is in the set and is not an exception to it. [collect]'s folding pass — [const_int], +, -, *, / and %, over literals and over other folded constants, to a fixpoint — has already replaced =(/ screen-height cell-size)= with its answer before [check_global] looks at the initialiser, so what the refusal sees is an [Int]. That pass is integers only, which is why =(defconst half f64 (/ 1.0 2.0))= is computed and refused. Widening it would be a second folder and was not done; a test pins that there is not one. ** What came out - [Emit.const]'s two refusals are gone. Both are the checker's now. The data type case one is word for word what it was. The general one gained what the checker knows and the emitter did not: it names the constant — "the constant c is computed" rather than "this one is computed" — and it spells the way through, =(defvar c ...)= or a literal, with the integer arithmetic the folding pass accepts named beside it. Both are located at the declaration now rather than at the expression inside it, which is where every other refusal about a global points and what [next-error] jumps to. What is left in the emitter is a [failwith] in the file's own idiom: no program reaches it, and it fires only if the checker's accepted set and [Tast.const_init] ever stop agreeing. - The case is searched for through the aggregates, which is what [Emit.const] did by recursing: =(defconst g S (S {.u (U.B {.x 1})}))= is a case the image cannot hold just as much as a bare one, and "this is computed" would be advice nobody could act on. Left to right and first offender wins, so a computed field written before a case field still gets the general message — the emitter's own order, since it spelled the fields in order and failed at the first one it could not spell. - [emit_global]'s =gconst || const_init ginit= lost its left half. The form no longer decides anything there; the initialiser does, and a zeroinitializer is now always a defvar waiting for the startup function. - x86 needed no edit: it never had a defconst case to delete. It classifies by [Tast.const_init], and the checker now guarantees a defconst passes it, so no defconst reaches [Emit.startup_plan] and no [.init~once.] flag is made for one. The flag machinery for defvar is untouched. ** The test harness that depended on the old rule test_flan.ml's [infers] read a type off =(defconst probe )=, which is how it pinned literal defaulting and every primitive's result — and most of those probes are calls. It asks [Check.expression] now, the way a session checks an expression sent from the editor, which is the question the wrapper was only a way of asking. A defvar could not stand in: only the defconst form takes no type. The one corpus row that relied on an untyped computed defconst, =(defconst k (g))= ordered before [g], is a typed defvar and still pins the order-independence it was there for. * The third element of a defvar decides, 2026-09-20 The author, deciding it: "if it's 3 atoms then it's dyn", and "dispatch the if it's a type do the right thing." So ~(defvar x )~ is the zeroed static global it has always been and ~(defvar x )~ is a dyn global initialised from that expression at startup. ~(defvar current-color i32)~, ~(defvar grid [rows [cols u32]])~ and ~(defvar p Point)~ all keep their meaning to the letter; ~(defvar score 0)~ is a dyn holding 0, and ~(defvar game-data (edn/read-file "x.edn"))~ is what ~(defvar game-data dyn (edn/read-file "x.edn"))~ spells out. The four-element forms are untouched, ~(defvar x dyn )~ among them. This is a step in the direction the "dynamic-first dream" names — the author wants dynamic by default, lowering to static where it can — and it is the cheapest one available: the dyn spelling stops needing a keyword, and the static spelling loses nothing. It is the same dispatch the parameter vector already makes ([(defn f [x y] ...)] is one annotated parameter if [y] names a type and two dyn parameters if it does not), now in the one other position where a name could be either. ** Where it is decided Half in [Parse.defvar3] and half in [Check.settle_defvars], split by what each one can know. Parse settles every form a *shape* settles, and that is most of them: [0], a string, a map, [[1 2 3]] and [(f "x")] are not types by any reading, so the global is dyn and the third element is its initialiser; [[4 u32]], [()] and [(Fn [i32] i32)] are types by any reading and keep today's meaning. Note where the bracket falls — [[n T]] stays a fixed array, so no [(defvar rows [4 u32])] changed under this — and that [texpr] is called under a handler, because "does this parse as a type" is a question its refusals answer. Two shapes are left, and a name and not a shape decides them: a bare symbol, and [(head arg ...)] with type-shaped arguments. Both readings leave Parse together — the [texpr] in the [Ast.Defvar] and an [Ast.Ambiguous] expression beside it — and [Check.collect] picks, at the point where every type name is registered and just after [pair_decls], which is there for the same reason. The type reading wins wherever there is one, and a built-in constructor is recognised by name rather than by whether [resolve] happened to accept it, so [(Vec i32 i32)] stays a malformed [Vec] instead of becoming a call to something named [Vec]. An undecided defvar leaves [collect] as a [Zeroed] or as an [Init] at [dyn] — that is, as [(defvar x dyn )] exactly. Nothing downstream has a third case to learn: the startup lifting, the [.init~once.] re-run guard and the collector root are the ones that form already had, and neither backend was touched. ** The ambiguous symbol One namespace covers every declaration kind ([collect]'s [claimed] table), so a type and a value cannot share a name and the two readings can never both be live. What the rule *does* create is a symbol that is neither, where the old "unknown type foo" would now send a reader looking for the wrong mistake: : foo is neither a type nor a value, and the third element of a defvar has to : be one or the other: a type there declares a zeroed global of that type — : (defvar total i64) — and a value there declares a dyn global holding it — : (defvar total 0). Nothing named foo is declared as either — did you mean fo? Both readings, both spellings, and the near miss ranges over the value names as well as the type names — [near_miss] grew an [~also] parameter for it, and this is its only caller. ** Pinned test_flan.ml holds the four spellings with their meanings (the type and whether anything runs at startup, not merely that they compile), the parse shapes, the collision refusal and the diagnostic verbatim; test/programs/defvar-dyn.flan is both readings in one program, pinned in acceptance at the default, -O0 and --x86; and dev-rerun.flan grew a [(defvar tally 0)] whose line is 4 after three re-runs, which is the claim that the new spelling goes through the old guard. * Classes and generic functions, 2026-09-20 — M2 queue item 6 The recorded decision was "defclass = named dyn map + shape tag; CLOS class dispatch AND Clojure-style arbitrary dispatch functions", and it is built as written. The two dispatch styles are one mechanism and not two: a class dispatcher is the shape tag of the first argument used as the dispatch function, so a method written for the class ~point~ and one written for the value ~:point~ are the same branch — which is also why the two spellings are refused as duplicates of each other. ** The surface, as landed #+begin_src lisp (defclass point [x y]) ; a class: named slots, no types (point 3 4) ; the constructor — the class's own name (class-of p) ; :point, and nil for anything else (get p :x) (put p :x 10) ; the slots are map keys; nothing new (defgeneric area [self] dyn) ; CLOS: dispatch on the class (defmethod area point [p] (* (get p :x) (get p :y))) (defmulti describe [x] dyn (get x :kind)) ; Clojure: the body is the dispatch (defmethod describe :square [s] (get s :side)) (defmethod describe :else [s] "something else") #+end_src - *A slot is a key.* An instance is a dyn map, so ~get~, ~put~, ~has-key?~ and ~len~ are how one is read and written, and no operation was added for any of it. ~(len p)~ is the slot count. - *The constructor is positional*, one argument per slot in the order they were written, and it is an ordinary ~defn~ — so its arity refusal, its cell in a dev build and its behaviour under redefinition are the ones every function already has. The named-slot spelling is deferred; see below. - *A method has no return slot.* The generic states the return type once, for every method written for it, which is also what makes the parse unambiguous: the vector is always the third form. - *Every parameter of a generic and of a method is dyn*, written or not, and a slot that is not a bare name is refused. That keeps these forms off the undecided-pairing path a ~defn~'s vector is on: a vector that may hold only names can be read by the parser, where a ~defn~'s cannot be read until every type name is known. - *A dispatch value is a literal* — a class's name, a keyword, a string, an integer, ~true~, ~false~, or ~:else~ for the arm everything falls through to. ~:else~ and not Clojure's ~:default~, because ~match~ already spells "none of the above" that way and two words for it would be one too many. ~:else~ is the last arm whatever order it was written in. - *A miss signals.* ~(defstruct NoMethod [generic string value dyn])~ in the prelude, signalled with ~error~, carrying the name written at the generic and the value the dispatch actually produced. A condition and not a trap, because a miss is something a program can be written to answer; ~handler-case~ around the call is the shape, and a ~:else~ method is the other answer. No restart is established at the miss, which is BoundsError's decision taken for BoundsError's reason. ~value~ is the first ~dyn~ field in any condition here; the per-type descriptor an item-2 struct carries is what the collector reaches it by. ** The shape tag: a header field, not a reserved key This queue item's own note said "named dyn map + shape tag", and the obvious reading was a reserved entry in the map. It is a field in the object's header instead — an interned ~kw_entry *~ in the map arm of ~flan_obj~'s union — and the departure is deliberate. An entry would be counted by ~len~, walked by both renderers, and compared by ~dyn_equal~'s key loop. Every instance would answer a length one larger than its slot count, print a key nobody wrote, and be one ~put~ away from having its own class changed. A header field cannot be reached by ~get~ or ~put~ at all, so the question of a user key colliding with it does not arise rather than being answered by picking an unlikely spelling. It cost nothing. The view arm of that union is 24 bytes, so the map arm growing from 16 to 24 does not grow the union, and ~sizeof(flan_obj)~ is 48 before and after — checked, not assumed. It needs no marking either: an interned keyword entry is immortal by construction and is not a collector object, which ~mark_value~ states by following ~BOX_OBJ~ and nothing else. The tag is read in exactly four places in flan_dyn.c: ~class-of~ answers it; ~dyn_equal~ compares it, so two instances of one class compare by their slots and an instance is never equal to a plain map with the same entries (Clojure's answer for a record beside a map); and *both* renderers write it — ~render~, which is what ~print~ goes through, and ~say_render~, the 96-byte sentence a trap prints, so a dyn trap naming an instance says which class it was. The spelling is ~#point{ :x 1 :y 2}~, Clojure's own for a record. The tag is built from the class's *qualified* name, and the qualifier is the **importer's alias** rather than anything the defining package chose — the same class imported as ~a~ and as ~zz~ tags its instances ~:a/point~ and ~:zz/point~. That falls straight out of [Load]'s rename, and it is right for the dispatch, which resolves the class name through the same rename and therefore agrees with it. What it is *not* safe for is a hand-written dispatch value: ~(defmethod g :a/point ...)~ is a keyword and nobody qualifies it, so it is coupled to one import's alias and silently answers for nothing under another. Write the class's name, ~(defmethod g point ...)~, which is renamed with everything else. Two packages' own ~point~ classes are two classes either way, which was the property wanted. ** How it is built: a pass, not a macro None of the four forms reaches the checker. ~lib/classes.ml~ rewrites the whole declaration list at the top of ~Check.build_program~, exactly where ~Shim.expand~ rewrites a ~declare-c~: a class becomes its constructor, a generic becomes one function whose body binds the dispatch value and compares it down a chain, and a method becomes a branch of that chain. A macro sees one form and this needs the whole list, because a method may be written above its generic, below it, or arrive at a reload an hour later. Running over the flat list is also what makes the dev loop work: a reload rebuilds every dispatch from the session's whole set of declarations. *The method bodies are inlined rather than lifted into functions of their own*, and that is the load-bearing choice. A generic is then exactly one top-level name, so adding a method to a running program is the ordinary redefinition of one function, through the cell the call site already goes through. ~session.ml~ names the generic alongside the method's own declaration name for that reason — without it a ~C-c C-c~ on a ~defmethod~ would install something no call site reads. A method still declares a name of its own, ~area@:circle~, which is what makes re-evaluating one a replacement and evaluating a new one an append; no function is emitted under it. Proved end to end against a real daemon (~test_dev.ml~, "a method added to a running program"), not only at the session's report. A method's own parameter names are bound from the generic's *in parallel*, through temporaries in the unspellable ~[~]~ namespace. A [let] binds in sequence, so the pairwise spelling reads a name it has just bound: a method [[b a]] under a generic [[a b]] would be handed its first argument twice and the second would be unreachable. Both the swap and the one-step shift are pinned in the survey program, where the values are what is wrong rather than the types. The cost, recorded rather than hidden: *a method is not separately callable and is not a frame of its own*. A break loop under a method shows the generic. And the generic's own parameter names stay in scope inside a method that renamed them, so a body reaching for ~self~ where it declared ~p~ silently resolves instead of being refused — small, and closing it would mean giving the dispatcher unspellable parameter names, which is what the inspector reads. ** Deferred, each with the reason - *Inheritance.* plan.org's own rule is that method specificity and ambiguity rules are required before inheritance or multiple dispatch is enabled, and with single dispatch on literal values there is no specificity question at all: two methods either answer for the same value, which is refused, or for different ones. A hierarchy would create the question, and the author never asked for one. - *Multi-argument dispatch.* plan.org names it as the later extension, for ~(collide Player Enemy)~. It wants the specificity rules above. - *~:before~, ~:after~, ~:around~ and ~call-next-method~.* They only mean something once methods can be ordered by anything but equality, which is the same gate inheritance is behind. - *Named-slot construction*, ~(point {:x 1})~ with an omitted slot meaning nil — the dyn twin of ~(Cursor {.src s})~ with its omitted-is-zeroed rule. Positional is what a generated ~defn~ gives for free, arity included; the named form is a checker special case and was not worth one at v1. - *Unknown-slot checking at ~(get p :z)~.* The one compile-time win a declared slot set makes possible (docs/SPIKE-DUPLICITY.md §8 names it), and it needs the checker to know the class of an expression — class-typed tracking on the dyn side, which dyn deliberately does not have. A class adds a tag and a dispatch, not a static slot discipline. - *Computed dispatch values.* Clojure registers a method under any value because registration there is a run-time call; here it is compile-time, and the method's declaration name is built from the value. - *~nil~ and floats as dispatch values.* ~:else~ covers the nil case, which is the common one (~class-of~ answers nil for anything that is not an instance); a float compared for equality is a trap waiting to be sprung. - *Class redefinition and migration* — plan.org's ~redefine-class~ / ~migrate-instances~. A heterogeneous map has no layout to be stale, so nothing breaks today when a class gains a slot: old instances simply lack it. Enumerating live instances is the part that is missing, and it is the pool's question rather than this lane's. **Built after all, and without the enumeration**: see "Lazy instance migration" below, where the answer turned out to be CLHS 4.3.6's — do not walk the heap, stamp the instances and migrate each one when it is next touched. - *The JS backend.* It refuses dyn wholesale, so none of this compiles there. Same parking as the string-equality hole above. ** Two things found on the way, neither about classes - *The x86 backend's redefinition module never emitted the per-type dyn descriptors.* ~Emit.redefinition~ has always emitted them, by going through ~finish~; the x86 twin ended at the rodata section and stopped. Nothing had reached it, because a redefined body had to construct a struct holding a dyn to need one, and until ~NoMethod~ there was no such struct a compiler-written body could build. It is not a bad read at run time — a descriptor label is local, so ~ld~ refuses the module with an undefined symbol. Fixed with one line beside the same call in the executable path. Emitting them turned up the second half: ~descriptors_asm~ wrote them into ~.rodata~, and a descriptor holds the address of its own offset table. A relocation in a read-only section is a ~DT_TEXTREL~ — ld warns about it in a PIE and refuses it in a shared object — so the section is now ~.data.rel.ro~, which exists for exactly this and is what both the executable and the reload module use. Verified with ~readelf -d~ on a reload module from each backend: no ~TEXTREL~, descriptors in ~.data.rel.ro~. *Still unexercised, and for the next sweep rather than this lane:* marking THROUGH a descriptor that an x86 reload module emitted. What is proved is that the module links and runs; what is not is a collection happening while a live instance of a dyn-holding struct sits in a frame of a body that module delivered. The LLVM path has been exercised since item 2; this one has existed for a day. - *A dyn value answered by ~eval-expr~ never reaches the reply's ~:value~.* It renders to the program's own stdout, which arrives on a *later* reply's ~:output~ — the dyn-global rows already read one that way and say so, and ~(+ 2 3)~ answering "5" beside ~(area (point 3 4))~ answering "" is the whole of the difference. Left standing: where a dyn expression's value should surface is a question about the editor protocol, not about this lane. The dev test works around it by comparing inside the expression, so what crosses the wire is a typed 1. ** What was run ~dune test --root .~ green (exit 0, no FAIL lines) after each commit, and again on the rebase onto the defvar-dyn lane — whose ~load.ml~ arms are the ~defvar~ one and whose ~ast.ml~ arm is the ~Ambiguous~ initialiser, disjoint from the four class arms beside them; both sets were read against each other by hand rather than trusted to the auto-merge. Three acceptance rows for ~test/programs/dyn-class.flan~ — default, ~-O0~ and ~--x86~ — and a three-way diff of the program's real output across the same three, captured by hand before the rows were written and again after the rebase. It is in ~test_sanitize.ml~'s list; per the sweep policy the sweep itself was not run. ** Found while running it: ~dune test~ exits 1 at random, and has since before this lane — FIXED ~test_dev.ml~'s ~trap_park~ rows are racy, and when they lose the race the whole test binary dies with ~Fatal error: exception Flan.Wire.Closed~ — exit 1 with no FAIL line anywhere, which is the worst shape a failure can have given that the sweep policy says a lane is judged on the exit status. The mechanism: ~trap_park~ polls with ~ask~, which is a bare ~Wire.send~ / ~Wire.recv~ pair with nothing around it, and the program it is polling has just aborted at the break loop. If the daemon exits between the send and the recv, ~Wire.recv~ raises ~Closed~, nothing catches it, and every row after it — in this lane's case the new class daemon among them — never runs. Both observed failures landed at the same row, ~dev-trap-null-alloc~. *It is not this lane's.* Measured on a detached worktree at dev-loop's tip (c4e0725) with nothing of this lane in it: 2 of 5 runs exit 1 with the same exception at the same row, against 2 of 5 on this branch. The rates match because the code is the same. Not fixed here, deliberately: the fix is to catch ~Closed~ in that poll and read it as the program having ended, which is a claim about what those rows mean and belongs to whoever owns them. Flagged rather than patched. * Two struct spellings, 2026-09-20 Both were DISCUSS.org items, both diagnosed there as the same parse/check boundary problem, and both are decided by the author on 2026-09-20. ** A. A bare ~{.field v}~ takes its type from the position it stands in The note's own diagnosis was right: the refusal ("a bare map is not an expression; write (Type {.field v})") sat in ~Parse.expr~, before any checking, so ~(defn get-mouse-cell [] Cell ... {.row r .col c})~ could not work no matter what the checker knew. It has moved. Parse now builds ~Ast.Bare~ — a field list with no name — out of the same ~struct_fields~ the named form uses, so the two field lists are parsed by one function and cannot drift. ~Check.check_bare~ reads the type name off the expectation and hands that same list to ~check_struct~. That is the whole feature: ZII for an omitted field, the unknown-field refusal, the duplicate-field refusal, their notes and their error kinds are not "the same as" the named form's, they *are* the named form's, reached by the same call. *Accepted* — every position that carries a want: - a defn's return position (the case from the notes), - an argument of a call, the only argument or a later one, - a field of an enclosing literal, at any depth, - a typed place being ~set~, a local or a field of one, - a union want, which reaches ~check_union~ by the same route. *Refused, at checking, by name*: - no want at all (a ~let~ binding, a body form that is not the last): "does not say which struct it builds — the fields alone do not name a type", naming both ways out, and saying why a let binding is not one of them (a local takes its type from its value). - a ~dyn~ want: refused, and told that a dyn map's keys are keywords. This is the boundary that mattered most. Braces at a dyn want are the dyn map literal and stay exactly that; a ~.field~-keyed brace was never part of that spelling and is not being quietly given a second meaning now. - a want that is not a struct type at all: "i32 is expected here, which is not a struct type". - a data type's name as the want: inherits the existing message, which names the cases — ~D~ is not specific enough, a value of ~D~ is one of its cases. One thing had to move in ~Check~ as well as in ~Parse~. ~(g {.row 2})~ is parsed as a struct literal named ~g~, because the parser's struct-literal arm fires on the *shape* of the single argument and has no table to consult; it used to be refused with "g is a function, not a struct". Now, when the head is a name that would actually resolve to a callee (a defn, a generic, or a local of function type — ~callable~), it is handed back to ~named_call~ as the call it was written as, with the fields rebuilt into the ~Ast.Bare~ node the parser would have made anywhere else. An unknown name keeps the old "unknown struct" report, because that shape is usually a misspelled struct name. ~(name {})~ keeps its old refusal untouched: the empty braces are genuinely ambiguous between the zero-field struct literal and the empty dyn map, and that one does have the let-binding fix its message already names. ** B. ~(Cell 1 2)~ positional, and arity is exact The note's diagnosis again: the parser cannot tell ~(Cell 1 2)~ from any other call, so ~Check~ does it. The decision sits on the last arm of ~named_call~ — after a local of function type, after a generic, after the global function table — where the old "Cell is a type" refusal used to be. *No collision is possible.* ~collect~'s ~claimed~ table spans every declaration kind, so one name is one declaration and a ~defstruct Cell~ beside a ~defn Cell~ is "Cell is defined twice" before any of this is reached. A ~(defclass point [x y])~ constructor is a real ~defn~ that ~Classes.expand~ wrote before checking began, so ~(point 1 2)~ resolves in ~env.fns~ two arms above the struct one and never reaches it. Pinned both ways. *** The arity decision: exact, no partial ZII Positional construction gives every field or it is refused. This is not a retreat from ZII — ZII is what the designated form does, and ~(Cell {.row 1})~ still zeroes ~.col~, which is where the message points. The reason is that a positional list cannot *say* which field it left out. ~(Cell 1)~ reads as a Cell with one field given, and which field that is depends on a declaration order the author is free to change later; a trailing field silently zeroed there is the field-reorder hazard at its very worst, arriving as a wrong value rather than as an error. So a short list is a refusal that names the first field it did not reach: : Cell has 2 fields and 1 was given positionally — .col has no value. : Positional construction gives every field, in declaration order; to give : some of them and zero the rest, a struct value is written : (Cell {.field value ...}) with ~declared_note~ pointing at the declaration. A long list points at the first extra argument and shows both spellings. Odin's positional literal takes the same line, and the repo's ZII philosophy is not against this: ZII is about what an *omitted* field means, and this refusal is about a spelling that cannot express omission at all. *** The field-reorder hazard, accepted The author's words, on B's remaining cost: "B can be fixed with refactorings later on when we decide to add it." Reordering a ~defstruct~'s fields silently changes what every positional call site builds, and nothing in the compiler catches it when the types happen to line up. Accepted as the price, with refactoring tooling named as the eventual answer rather than a compiler rule. *** Argument type errors Each argument is checked against its own field's type by ~map2_lr~ and ~~want~~, exactly as a call's arguments are checked against its parameters — so the mismatch is reported at the argument, in the words a call's argument already gets ("expected f32, found string"). What is added is a *note*, "this is Cell's field .col", plus ~declared_note~, because a positional call site is the one place the source does not show the field name. The note is attached only to a diagnostic raised at that argument's own location, and it only ever names the position — which is true whatever went wrong there — so a nested failure inside the argument cannot be miscaptioned by it. Naming the field *in the message* would need an error-context helper ~loc.ml~ does not have; not built here, since the note carries the same information and adding the helper touches a file the Elm-messages lane is in. ** Backends Zero edits, and nothing to edit. Both features are gone by the time ~Check~ finishes: a bare literal becomes the ~Tast.Make~ the named form already built, and a positional call becomes that same node with its arguments put into declaration order. ~Emit~ and ~X86~ have no case for either. The three acceptance rows for ~test/programs/struct-ergonomics.flan~ — default, ~-O0~, ~--x86~ — print the same fifteen lines, which is what says so out loud. ** One existing test's needle had to change, and one did not ~test_flan.ml~'s two "bare struct-shaped braces still refuse" rows refused at *parse* and now refuse at *checking*, for a different and better reason; their needles and the comment above them were rewritten together. The row for ~(Cursor {:src s})~ did not have to move: that form is now a Cursor built from too few arguments, and the new refusal still contains "a struct value is written (Cursor {.field value ...})", which is what its needle asks for. Its comment was corrected anyway, since the *reason* it refuses changed. ** What was run ~dune test --root .~ in the lane's worktree: exit 0, no FAIL lines. The first run exited 1 with ~Fatal error: exception Flan.Wire.Closed~ and no FAIL line anywhere — the known ~test_dev.ml~ ~trap_park~ race recorded under the classes lane above, not this lane's; the rerun was clean. The survey program was run by hand at all three settings and its output diffed across them before the acceptance rows were written. Not added to ~test_sanitize.ml~: the program allocates one small dyn map and nothing else, so there is nothing for ASan to find that ~dyn-map.flan~ does not already exercise. * Six dogfooding items off DISCUSS.org, 2026-09-20 Each of these is an author note from a session of writing Flan rather than a report from a test. They are small and they are unrelated to each other, which is why they went in one lane: every one of them is a place the language said no for no reason, or did not have a name it should have had. ** (when test) with no body, and the family it turned out to belong to [lib/parse.ml]'s ~when~ required ~body <> []~ and failed "when is (when test body ...)". The guard is gone and an empty body is the ~Do []~ that ~(do)~ already means. A ~(when)~ with no test at all is still refused, because there is nothing to branch on. ~unless~ is a prelude macro now, not a special form, and carried the same restriction as ~(< (len args) 2)~. It is ~(< (len args) 1)~, and its unknown-name report narrowed with it: ~unless-takes-a-test~ rather than ~unless-takes-a-test-and-a-body~, since the body is no longer part of the claim. The author then added the third member of the family, and it turned out to be two different questions: - =(defn foo [bar i32] ())= — a declared return type of () and no body — was *already legal*, and the refusal for the other case was already the right one: [Check] says "foo returns i32 but has no body" at the declaration. No change; both are pinned now, which they were not. - =(fn [])= was refused by the parser, by the same ~body <> []~ guard ~when~ had. Dropped. An fn declares no return type, so "legal exactly when the return type is ()" has to be decided somewhere else, and the position it is written in is the only thing that knows: check_fn now refuses an empty body at a non-unit want — "an fn with no body answers (), and this one is in a position that wants i32". *That refusal is new and it was needed:* without it the empty body fell straight through check_fn's ~List.rev fbody~ match, the fn compiled, and the call read a return value nothing had written. So relaxing the parser here opened a hole that had to be closed in the checker, which is not true of ~when~ or of ~defn~. ** () as a unit value in expression position — considered and dropped The author, 2026-09-20, closing the question DISCUSS.org left open beside =(rl/with-drawing ())=: making bare ~()~ a unit value in expression position was considered and is not wanted. Empty forms doing the right thing — the three above — covers the need that made it look attractive, and ~()~ stays unspoken-for in value position on purpose, against the possibility that the language grows lists later and wants the spelling. (Paraphrased from the author's note, not quoted.) So ~()~ remains the type-position spelling of Unit and nothing else, and the guard below is written against that rather than around it. ** (rl/with-drawing ()) — a body that was not written, spelled the second way [vendor/raylib/modes.flan]'s guards caught zero arguments and not one argument that was itself ~()~, so the latter was spliced into the expansion verbatim and the report came out of the middle of the expanded ~do~ saying ~()~ is not an expression — several forms from anything anyone wrote. All five ~with-*~ macros now treat a lone ~()~ where the body goes as no body, answering the same unknown-name they already answered for the missing one. Only a lone ~()~, and only in the body position. ~()~ as a camera or a render target is left to fail on its own: nothing the macro could say about it would be truer than what the compiler says. The macros needed a predicate they did not have. ~form-items~ cannot tell ~()~ from a symbol — it answers the empty slice for both — so [lib/prelude.ml] grew ~form-empty-list?~, which matches ~Form.List~ and asks its length. ** (comment ...), built in A prelude ~defmacro~ answering ~(do)~ and reading none of its arguments, which is the whole feature: a macro's arguments are raw Form and are never checked as expressions, so what is inside never has to be a program. The pinned test puts an unknown function, a wrong arity, ~(+ 1 "two")~ and a field that does not exist inside one and compiles it. The one rule it does obey is the reader's — balanced delimiters, legal tokens — because reading happens before any macro runs. ~#_~ is the other spelling and they are not rivals: ~#_~ is the reader's and discards the one form after it, so it works in argument position; this is a form of its own and takes any number, which is what a parked block wants. ** inc/dec, ++/-- The four the note spells out, in the prelude rather than per project. A word for the pure pair, C's punctuation for the mutating pair, so ~(inc i)~ in an argument and ~(++ i)~ as a statement cannot be confused the way C's ~i++~ and ~i+1~ can. Generic for free, and verified rather than assumed: the pinned program runs ~inc~ over i8, i16, i32, i64, u8, u16, u32, u64, f32, f64 and a dyn, and prints the answers. Nothing in the four macros mentions a type, because ~+~ and ~-~ already work at all of them and a macro has no type to get in the way. *The accepted tradeoff, documented at the definition:* ~(++ PLACE)~ expands to ~(set PLACE (+ PLACE 1))~, so the place is read once and written once and is therefore *evaluated twice*. Free for a variable, a field or a deref. Not free for ~(at arr (next-index))~: ~next-index~ runs twice and the read and the write land on different elements. Not fixable here — macros are non-hygienic by decision, and a macro cannot bind a temporary for a *place* without a reference type the language does not have. rl/with-drawing and rl/with-mode-2d already take the same trade on their arguments. The note's four macros have no arity guard, and they needed one: ~(inc)~ would have indexed past the end of its own argument slice and failed inside the compiler rather than saying anything about the program. Each guards on ~(!= (len args) 1)~ — both too few and too many — and each is pinned. ** Type-limit constants [lib/prelude.ml] gained i8/i16/i32/i64 and u8/u16/u32/u64 max and min, and f32/f64 max, min-positive and epsilon. Kebab and the type's own name, following ~ns-per-second~: ~i32-max~, not ~INT_MAX~. Each carries its type, so ~i32-max~ where a u8 is wanted is a type error rather than a silent 255. The u*-min constants are all zero and are all there. A family with a hole in it is worse than four lines that say nothing surprising. There is no ~f32-min~, and the absence is the design. A float's least value is the negation of its greatest and needs no constant; what a caller reaching for "min" actually wants is the smallest positive one, which is a different number entirely. Naming either of them ~f32-min~ would put the collision at the worst possible place, so the name says which it is: ~f32-min-positive~, the smallest *normal* value, as Rust's MIN_POSITIVE does. *u64-max is written in hex and has to be.* The reader parses a decimal integer through ~Int64.of_string~, and 18446744073709551615 does not fit one; ~0xFFFFFFFFFFFFFFFF~ is read as the 64-bit pattern it names, which is what a u64 literal is here — [Check.in_range] accepts any pattern at 64 bits unsigned for exactly this reason. i64-min's decimal *does* fit, being i64's own least value, so it is written the ordinary way. *Every value is pinned against an independent derivation, not against itself.* A wrong constant compiles — that is the whole hazard — so [test/programs/limits.flan] does not compare any constant to the way the prelude spells it. The integers are printed, and the expected text in test_acceptance is the decimal spelling written out from the definition of each type; an integer's decimal rendering is exact, so that comparison is the whole value. The floats cannot be pinned that way, because printing one is snprintf "%g" and 3.40282e+38 is equally true of f32-max and of a neighbourhood around it — so each is *derived* by exact power-of-two arithmetic and compared for equality. Every step of those derivations is exact in IEEE-754, and the two that are not powers of two have representable operands and a representable product: | constant | derivation | bit pattern | |------------------+-------------------------------+--------------------| | f32-epsilon | 2^-23 | 0x34000000 | | f64-epsilon | 2^-52 | 0x3CB0000000000000 | | f32-min-positive | 2^-126 | 0x00800000 | | f64-min-positive | 2^-1022 | 0x0010000000000000 | | f32-max | (2 - 2^-23) * 2^127 | 0x7F7FFFFF | | f64-max | (2 - 2^-52) * 2^1023 | 0x7FEFFFFFFFFFFFFF | and each epsilon additionally against the property its name promises — adding it to 1.0 moves, adding half of it does not — and each max against there being nothing finite above it, since doubling one overflows to an infinity. The program runs on *both backends*, and that is not ceremony: materialising a full-width u64 immediate and an f64 bit pattern is a different job in LLVM and in the hand-written x86 backend, and a lowering that truncated one would print a number this row catches and nothing else in the suite does. Both print identical text. *No infinity or NaN constant, and none is possible to write down.* The reader has no literal for either. ~(/ 1.0 0.0)~ is the only route to an infinity today, and under the defconst-is-const rule decided the same day it is not one a defconst can take: the folding pass is integers only, so a float division is a computed initialiser and refused by name. So an ~f64-infinity~ defconst is not available without either a reader literal or a second folder, and neither is this lane's. Recorded, not added. The *runtime* test for one is in the prelude already and limits.flan reuses it: an infinity is the value that equals its own double and is not zero. ** {.row .col} — and the collision the note said was not there DISCUSS.org: "No obvious grammar collision — nothing currently matches a bare .field symbol on its own." *That is false*, and it was worth checking before relying on it. [dmap]'s pair arm takes any pattern in head position, and [destructure]'s first arm accepts any ~Sym~ as a name — a dotted one included. So before this change: - =(let [{.x .y} p] ...)= parsed, as "bind a local called ~.x~ to field ~y~", and the program failed later with "unknown name x" pointing at the *use*. Verified against the compiler, not reasoned about. - an odd number of bare fields hit the ~[odd]~ arm and was refused, which is where test_flan's =rejects_check "a field name with no pattern before it"= came from. So the dot in head position did have a meaning; it was just never a useful one. The new arm is checked *before* the pair arm and takes both readings away. The ~[odd]~ arm survives for the case it was actually written for — a plain name with nothing after it, ~{a}~ — and that test is now two: the old one inverted to an ~accepts~, and a new one on ~{a}~. Where it works: ~let~, and nowhere else, which is where ~{name .field}~ works today. Destructuring binds in ~let~ only. A match arm is *not* a second position the shorthand had to reach: a struct pattern has never worked in one, and the refusal there is the match grammar's own — "expected a pattern, found {a .x}" — not [no_pattern], which is what a defn parameter, an fn parameter and a dotimes counter get. Checked against the compiler rather than read off parse.ml's comment: ~{.x .y}~ and ~{a .x}~ in a match arm produce the same refusal as each other, which is the claim that matters — the shorthand inherited the existing rule rather than changing it. An unknown field gets the named form's refusal unchanged, because it is the same field access underneath: "Point has no field z" with the declared_note listing the fields there are. ** Pinned - test_flan.ml: ~(when c)~ parses to if + empty do; ~(when)~ still refused; ~(fn [])~ parses with an empty body; ~(fn)~ still refused; a defn returning () with no body accepted and one returning i32 refused; an fn with no body accepted at a ~(Fn [] ())~ want and refused at a ~(Fn [] i32)~ one; the ~{.x .y}~ shorthand accepted plain, mixed with a pair, and nested; ~{.z}~ refused by field name; ~{.x}~ inverted from a refusal to an ~accepts~; ~{a}~ refused; and both ~{.x .y}~ and ~{a .x}~ refused identically in a match arm, which is the "wherever the named form works" half of the claim. - test/programs/rl-with-empty.flan and rl-with-empty-arg.flan, through test_acceptance's ~refuses~: the two guard shapes, a body starting at argument zero and a body starting after a camera, each given a bare ~()~ and each answering the name the zero-argument case already answered. Never built, which is how rl-with-reject.flan beside them works and is why these need no raylib on the machine. - test/programs/prelude-macros.flan, plain and -O0: ~comment~ with four different kinds of garbage in it; inc/dec over eleven types; ++/-- over a local, a field, an element and a deref; empty ~when~ and ~unless~ bodies. - test/programs/limits.flan, plain, -O0 and --x86: every constant, as above. - test/programs/destructure.flan gained ~shorthand~ and ~shorthand-mixed~ rows, so the shorthand is in the program that is the destructuring test. - test_acceptance.ml: the arity guard of every new macro, by the name it answers, plus ~unless~'s narrowed one. ** Note for the concurrent lanes The diagnostics lane owns check.ml's message strings. This lane added *one* new message at a *new* site — check_fn's empty-body refusal — and rewrote none. The parse.ml edits are structural: a dropped guard in ~when~, a dropped guard in ~fn~, a new arm at the top of ~dmap~. Expect a rebase, not a conflict of intent. * The diagnostics pass, 2026-09-20 Worked from ~docs/DIAGNOSTICS-AUDIT.md~, which is tracked as of this lane's first commit. Graded against the contract the audit sets out: show the code with the caret, say what was understood, say what conflicts, name the fix. ** Reached Worst-20 ranks 1, 3, 4, 5, 6, 7, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, and the runtime half of 2. All four defvar follow-ups. Two from the author's dogfooding notes in DISCUSS.org: the foreign-spelling list, which answers ~int~ with ~i32~ instead of a lecture about type variables, and the two-element ~defconst~ whose bracketed type read as an array literal. ** Not reached, each with the reason *** Rank 8: ~unhandled Boom~ has no location Not a copy of the dyn-trap work, and the difference is the calling convention. ~flan_error~ takes five integer arguments — the type id, the condition, the channel, and the name as ptr+len — which is rdi through r8. A ~(loc, loclen)~ pair makes seven, past x86-64's six argument registers, so ~lib/x86.ml~ would need stack-argument passing at a call site whose own comment two hundred lines up says "the channel lands in r9 and the register file is exactly full". The dyn entry points took the pair without any of that because none of them was near the limit. The rest of rank 8 — the condition's field values, and the handlers that were in scope — is separate work again and has no ABI question in it. The audit's gap 4 names a dev-side half of this: ~flan_trap_hook~ hands control to a session that is in-process with the compiler and *can* read the source, so a real caret at runtime belongs in ~lib/dev.ml~. That file is another lane's and the audit already wrote it up as a hand-off. *** Rank 20: the fn-literal arity message Re-read and judged already satisfying. The audit asks it to name the parameter list it was measured against; it prints the whole ~(Fn [T ...] R)~, which is that list. Left alone rather than churned. *** ~trap_oom~ in flan_dyn.c The other three trap printers took the location pair. This one is reached from ~gc_alloc~, which has no site to be given: every allocation path in the file would have had to carry one for a sentence that is about the host refusing memory rather than about the program. ~trap_range~ has the pair and every caller passes NULL, so giving ~at~, ~set-at~ and ~push~ a site later is a call-site change and not another round of signature churn. *** The audit's structural gaps 3, 5 and 6 Printing the stable ~kind~ at the end of the first line, the "understood / conflicted" clause order as a writing rule, and non-cascading multiple errors through ~Loc.sink~. Each needs a decision from the author rather than work, which is what the audit says about them too. ** Two behaviour changes, not only wording ~(defn idx [v i] dyn v)~ was *refused* and now compiles as two dyn parameters. The rule is the digits: this language sizes its machine types in the name, so a typo keeps them — ~f65~, ~i33~ — and a parameter called ~i~ or ~n~ has none. ~pair_params~'s own comment says that is what the feature is. A ~defn~ whose name is a builtin's is still not refused. The builtin still wins every call and the definition is still unreachable; what changed is that the arity message says so and notes the definition. Refusing the shadowing is a language decision and was left to the author. [Superseded the same day by the author's decision — see "Shadowing a builtin" below. The builtin no longer wins, the definition is no longer unreachable, and the arity note this paragraph describes has been removed along with the world it described.] * ~int~ and ~float~ as builtin aliases, 2026-09-20 The author, on the foreign-spelling list the diagnostics pass had just landed: "I think we can make an exception for int and float." Exactly those two. ~int~ is ~i32~ and ~float~ is ~f32~; ~integer~, ~long~, ~double~, ~uint~, ~str~ and the rest keep the teaching refusal, and ~usize~ stays off the list entirely for the reason already recorded there — its width depends on the target. ** Spelled as machine types, not as prelude aliases Two implementations were on the table: two ~defalias~es in the prelude, or two entries where ~i32~ and ~f32~ already resolve. The second, and the thing that decides it is the cast. ~Check.is_cast~ asks ~Types.ikind_of_name~ and ~Types.fkind_of_name~ whether a head names a primitive. It does not look in the alias table, and no user alias is a cast head today. A prelude ~(defalias int i32)~ would therefore have given ~(int x)~ no reading while ~(i32 x)~ had one — a spelling that works in type position and nowhere else, which is a second-class name and not what was asked for. So: ~"i32" | "int" -> Some I32~ and ~"f32" | "float" -> Some F32~, plus both names on ~Types.primitive_names~. That last is not decoration — ~type_named~ reads that list, and it is what decides whether ~(vec-new int)~ names an element type and whether a three-element ~(defvar x int)~ reads its third element as a type. Without it the identity would have been type-position-only again, one layer down. Every other path is reached without learning the word: the resolver, the parameter-vector pairing, the ~$t~ refusal, the near-miss candidates, the ~let~ binding-vector annotation hint. Nothing in ~emit~, ~x86~, ~js~ or the runtime changed, or could have. ** What the user sees: ~i32~, always ~ikind_name~ and ~fkind_name~ are the only way back from a type to a name and they have no ~int~ to give. So the erasure is total and in one direction: a program may write ~int~ everywhere, and every error message, every eldoc signature, every inspector line and every DWARF type name says ~i32~. ~(defn f [a int] int ...)~ reports as ~(Fn [i32] i32)~. A mismatch at a site spelled ~int~ says "expected i32". Both pinned. This is the same erasure a user ~defalias~ already has and is the honest answer: the alias is a spelling, the type is the type. ** Redefinition: true ones are no-ops, false ones are refused The author's own programs contain ~(defalias int i32)~, written before there was a builtin. The rule is decided by the target, at registration: - ~(defalias int i32)~ and ~(defalias float f32)~ — accepted, and nothing is written to the alias table. The declaration is true, it is now redundant, and deleting the line is a cleanup rather than a fix. - Anything else — refused: "int is a builtin alias for i32 and cannot be redefined as i64 — delete this defalias, or give the type another name". The alternative was the ~arity~ precedent, where the builtin won and a note surfaced at the error the shadowing caused — a precedent deleted later the same day, when shadowing a builtin became legal and the user's definition started winning instead (see "Shadowing a builtin" below); the reasoning below stands either way, because neither world has anywhere to put the note. It does not transfer: a ~(defalias int i64)~ has no later error site to hang a note on. ~resolve_name~ reaches ~ikind_of_name~ before the alias table, so the declaration would be read as ~i32~ at every use and nothing would ever say so. Silence was the one unacceptable answer; refusing costs a rename in the program that meant it. Nothing was added for ~(defvar int 5)~ or ~(defn f [int x] ...)~. Identity settles them: whatever those do with ~i32~ written in, they now do with ~int~, and both were already refusals. ** Widening No table entry, because there is nothing to widen — ~int~ *is* ~i32~. Pinned as identity instead: ~(+ intvar i64var)~ is refused with "expected i64, found i32", the same message and the same spelling as ~(+ i32var i64var)~. Written that way so it survives whatever the widening lane lands: it asserts that the two spellings behave alike, not what either one does. ** Pinned Type position (parameter and return), cast head, ~(Vec int)~ and ~(Map int float)~, struct fields, ~(defalias Row (Vec int))~, the three-element ~defvar~ zeroed static, ~int~/~i32~ and ~float~/~f32~ passing for each other across a call, the two erasure messages, the widening identity, both no-op redefinitions, three redefinition refusals, and ~integer~, ~double~ and ~long~ still teaching. ~test/programs/int-float.flan~ runs the value half on both backends. One existing row changed: the foreign-spelling pin in test_flan.ml used ~int~, which resolves now, and was moved to ~long~. * A macro's parameter list, and the one breaking spelling, 2026-09-20 DISCUSS.org's "defmacro should support real parameter lists" is built. =(defmacro do-grid [[r rows c cols] & body] ...)= — positional parameters, a =[ ]= pattern wherever the argument is a vector, nesting, and =&= for the tail. The list is read in lib/expand.ml (=params_of=, =check_call=), turned into bindings by lib/parse.ml (=macro_body=) and checked against a call by lib/macro.ml (=checked_call=) before anything is expanded. ** THE BREAKING CHANGE: [args] was the whole call, and is now the first argument This is the one decision in the lane that changes what existing text means, and it is here rather than in a commit message because it is the thing to disagree with if it is wrong. A macro's single parameter *was* the whole argument list, so =[args]= meant "everything written at the call". Under a positional parameter list it cannot keep meaning that: one named parameter has to be the first argument, the way it is in every other language with parameter lists and the way Clojure has it. So the whole list is now spelled =[& args]=. The alternative was a legacy mode — one parameter with no =&= keeps the old meaning — and it was refused. It makes =[a]= and =[a b]= mean unrelated things, which is the kind of rule nobody can hold in their head, and it would have left the corpus written in a grammar the documentation no longer describes. So every =defmacro= in the tree was migrated in the same commit. Seventeen files, mechanical, bodies untouched: - lib/prelude.ml — =clamp=, =unless=, =into=, and the dogfood batch's five (=comment=, =inc=, =dec=, =++=, =--=), which landed on dev-loop after this lane branched and were migrated at the merge — eight in all - vendor/raylib/modes.flan — =with-drawing=, =with-mode-2d=, =with-mode-3d=, =with-texture-mode=, =with-scissor-mode= - vendor/edn/provide.flan — =defedn=; vendor/json/provide.flan — =defjson= - test/programs/ — macros.flan (7), macro-cycle.flan (2), macro-spin.flan, pkg-macro.flan, printers.flan, pkgs/mac (6), pkgs/macring (2), pkgs/macspin (1) - test/test_dev.ml, test_flan.ml, test_repl.ml, test_session.ml and emacs/test-flan.el — the =defmacro= fixtures written as strings Nothing was rewritten to *use* the new grammar as part of the migration — =with-mode-2d= is still =[& args]= picking its camera out by hand, and its hand-written arity guard still says what it said. That was deliberate: the migration had to be a spelling change or it proves nothing. The new grammar is shown off in test/programs/macro-params.flan, which is its own program beside macros.flan. The equivalence is asserted rather than assumed. pkg-macro.flan declares =tenfold= (=[& args]=, =(at args 0)=) and =tenfold-listed= (=[n]=) with the same body, and test_session expands both and requires the same text. ** Map destructuring in a macro's parameter list — deferred, refused by name =dmap= (lib/parse.ml) is ={:keys [x y]}= over a *struct*: it reads field names off a declared type. A macro's argument is a =Form=, whose =Map= case is a flat run of alternating forms with no field names anywhere in it. So the pattern cannot be translated — it would have to be given a new meaning (match a keyword key in the literal map written at the call? bind by position?), and none of those is obviously the one somebody wants. Vectors and =&= are the 95% case and are built. A map pattern in a macro's parameter list is refused by name where it is written: map destructuring is not implemented in a macro's parameter list — a macro's argument is a Form, whose Map case is a flat run of alternating forms with no fields to name. Take the form and pick it apart in the body Pinned in test_flan.ml. Whoever wants it should decide what it means first. Flagged rather than patched by that lane, and fixed by the one after it. The diagnosis was right about the exception and one row off about where: the losing ~ask~ is the ~abort~ that ends the row, not the ~describe~ poll that opens it — every reproduction died on the line after ~flan: aborted at the break loop~, four runs out of four. *The claim those rows now make.* ~abort~ is the one verb that ends the process answering it, and in a merged ~flan dev~ that process is the daemon. flan_agent.c's listener writes its own ~ok~ and sets ~aborting~; the break loop's next pass calls ~die_now~, which is ~_exit(134)~, from the *program* thread — while the reply to the editor is still being composed on the *serve* thread, out of ~Dev.abort~'s ~ok~. Nothing orders the two. So an abort that did exactly what was asked comes back either as ~:status "ok"~ or as the socket closing under the read, and both are the same outcome. Neither is the assertion: what says the abort worked is the ~waitpid~ wait underneath it, which every one of these rows already does. A new ~aborted~ helper in ~test_dev.ml~ answers ~None~ for the end that arrived as an exit, and the three sites that abort a stopped or trapped program go through it — the break row, the globals row and ~trap_park~. The fourth ~abort~ in the file is the one a *running* program refuses; it ends nothing and was left alone, as was ~test_agent.ml~'s, which talks to the agent's own channel: the ~ok~ is on the wire before ~aborting~ is set, so the exit cannot overtake it, and that file's ~send~ reads to EOF and already swallows a ~Unix_error~ besides. The ~describe~ poll that opens ~trap_park~ is guarded too, and with the other answer: these traps park because ~flan_trap_hook~ is installed, and with no hook ~rt_trap~ falls through to ~rt_die~ and the program takes the daemon with it — so a socket closing *there* is the trap having ended the program instead of stopping it, which is the failure that row already names. Closed on the abort is a pass; closed on the poll is a FAIL with a reason. Neither is a retry. SIGPIPE is ignored in ~test_dev.ml~ for the watchdog's reason: with a daemon that exits by design, a ~Wire.send~ into the socket it left behind would kill the binary with no line saying why — the same silent shape, reached from the write side. Measured after: 22 runs of ~test_dev.exe~, all exit 0, no fatal exception; 5 runs of ~dune test --root . --force~, all exit 0. ~--force~ because dune caches a test that passed, and a cached pass proves nothing about a race. * The two byte fills, 2026-09-20 DISCUSS.org's "a DEADBEEF-style sentinel-fill builtin", built. The author's answer to the single-byte-or-four-byte question was "why not both? we need some sort of memset -1 right? and dead-beef can loop, that's fine", so there are two builtins and they are siblings of ~zeroed~, not a new shape. Revised the same day: the pattern builtin was ~sentinel-filled~ and is now ~dead-beef~, and it gained an optional operand so the pattern is the program's to choose. What did not change is ~filled~, or the fill boundary, or the byte-order rule — the revision generalised the pattern, it did not reopen what may be filled. ** The spellings ~(filled BYTE)~ and ~(dead-beef)~ / ~(dead-beef PATTERN)~, all value forms driven by the type expected of them, exactly as ~(zeroed)~ is: : (set grid (filled 0xFF)) : (set frame (dead-beef)) : (set frame (dead-beef 0xBAADF00D)) A place-taking ~(filled place byte)~ was the other candidate and was not taken. ~zeroed~ already answers "the all-bytes-X value of whatever this is being stored into", ~set~ already takes the place, and a second spelling for an operation ~set~ expresses would have been a second thing to learn for nothing. The cost is real and is paid on purpose: a fill in a position that expects no type is refused ("filled needs to know the type it is filling"), which is ~zeroed~'s own refusal worn by both siblings. ~dead-beef~ takes the pattern or leaves it out, and leaving it out is *defined as* writing the default: the checker's zero-argument arm builds the same ~Tast.Int 0xDEADBEEF~ the spelled-out call would have, so ~(dead-beef)~ and ~(dead-beef 0xDEADBEEF)~ are the same IR node by construction and no backend has a second path for the bare form. An acceptance row prints both and pins that they agree. The pattern is an ordinary ~u32~ /expression/, not a literal — the byte arm's rule at four times the width. A literal out of range meets ~in_range~'s located "does not fit in u32"; anything computed is guaranteed by its type instead, since a ~u32~ cannot be out of ~u32~ range. Refusing a computed one would have been a restriction with no mechanism behind it: neither backend needs the number early. /Reading note, for whoever reviews this./ The revision asked for "a u32-range constant ... decide literal-only vs any constant expression from what the byte-fill arm already accepts". The byte-fill arm accepts any ~u8~ expression, runtime ones included, and the same instruction asked that both backends handle "eax loaded from a value, not an immediate" — which only exists if a computed pattern is legal. So the operand is any ~u32~ expression. That is a strict superset of constants-only: every program the narrower reading allows behaves identically here. Tighten it to literals if that was the intent; nothing else depends on the breadth. ** The fill boundary — what may be overwritten with raw bytes *Numbers, and structs and fixed arrays built out of numbers. Nothing else.* ~Check.unfillable~ is the rule, in one recursive walk, and every refusal names the type it stopped at and why. Zero is a value every type can have; 0xDE is not. That is the whole of why this rule exists and ~zeroed~ needs none: - *dyn* — a struct holding a dyn is rooted on the collector's root stack with a descriptor naming that word's byte offset. A filled one is a root pointing at nothing and the next collection follows it. This is the refusal the feature could not ship without. - *Vec, Map, Allocator* — an owning header: pointer, length, capacity, allocator. A filled one frees a wild address the first time it is touched. - *string, slice* — a pointer and a length that every bounds check believes. - *Ptr* — not walked by the collector, and a poisoned pointer is arguably the useful case. Kept out anyway so the rule is one sentence rather than "plain data, except one kind of address". *This is the arm to relax first if the question is reopened.* - *bool* — the one refusal that is about the backends rather than the runtime. A bool is a byte in memory and an ~i1~ to LLVM, which reads the low bit, where x86 compares the whole byte against zero: 0xDE is false on one and true on the other. Byte-identical behaviour across the two backends is the property this feature is pinned on, so the divergence is refused rather than documented. - *a data type* — a tag that names a case, and no byte pattern names a real one. *An ~(Option T)~* — the same, one bit of it: a filled tag says the value is there over a payload nobody wrote. *An enum* — its values are the members it declared, and no byte pattern is one of them. - *a union* — and this one is not about a tag, because ~env.unions~ is "the untagged unions". It is that a union's members overlay and ~unfillable~ walks a struct's fields rather than a union's members, so nothing has shown every member is plain data; a member that is not would be filled through the one that is. Relaxable by walking the members, if anyone wants it. - *a function value* — a code address, and a call through a filled one jumps into whatever the pattern happens to address. Floats are in: every bit pattern is a float, NaNs included, and both backends move one as bytes. A ~defconst~ of a fill is refused by the existing constant rule and not by anything of this feature's own — a fill is never a value the linker can write into the image. A ~defvar~ is fine and goes through the startup function on both backends, which ~programs/fill.flan~ pins. ** The byte order, which is the specification *A pattern's ascending bytes are its big-endian bytes* — exactly how the hex literal reads left to right. So ~(dead-beef)~ lays down DE AD BE EF and ~xxd~ reads "deadbeef"; ~(dead-beef 0xBAADF00D)~ lays down BA AD F0 0D. One rule, both arities. On a little-endian machine the word a 4-byte store must therefore leave is the *byte reversal* of the pattern, which is all ~Emit.word_of_pattern~ is (~bytes_of_pattern~ beside it is the ascending list). Those two are the one place the order is written, and ~Tast.dead_beef_default~ is the one place 0xDEADBEEF is written, so the default and the parameterised case cannot drift. x86.ml reads ~word_of_pattern~ out of Emit rather than repeating it. It does *not* use ~bytes_of_pattern~: its tail walks the bytes out of ~rax~ with ~shr~, which is the same arithmetic the list encodes and is how the computed path has to do it anyway, so there was no second constant to share. emit.ml uses both — the list for a folded tail, the word for the loop. A literal pattern is reversed at compile time and reaches the loop as an immediate — the default's generated code is exactly what it was before the pattern became an operand. A computed one is evaluated and reversed at run time, by ~llvm.bswap.i32~ on one backend and ~bswap eax~ (0F C8, new) on the other. *Tail behaviour.* A size that is not a multiple of four ends on a prefix of the ascending bytes: 1 byte over is DE, 2 is DE AD, 3 is DE AD BE. Equivalently, tail byte k is ~(word >> 8k) & 0xFF~ — which is what the computed path actually does, by shifting, since there is no constant to fold. ~programs/fill.flan~ has all four lengths (8, 9, 6, 7) and, crucially, runs a computed pattern over lengths 6 and 7: that is the case a constant-only implementation would pass by accident. ** The backends - *LLVM (emit.ml).* The byte fill is one ~llvm.memset~ with the byte as an operand instead of a zero — the same call the existing bulk zero makes, and the reason the single-byte fill is the cheap one. The pattern fill cannot be a memset at all (the intrinsic takes one repeated i8, which is the snag DISCUSS.org named), so it is a counted loop over dwords in the header/body/exit shape ~emit_while~ writes, with the counter as an entry-block alloca that ~mem2reg~ promotes. Every store is ~align 1~, because a ~[7 u8]~ array is a legal thing to fill. A computed pattern goes through ~llvm.bswap.i32~ (newly declared) and the loop stores an SSA value rather than a constant; the tail then shifts and truncates. - *x86 (x86.ml).* ~rep stosb~ for the byte fill — ~zero_loc~'s three registers with the program's byte in ~al~ instead of a zero — and ~rep stosd~ (new, 0xf3 0xab) for the pattern, with the stored word in ~eax~. A computed pattern is loaded and run through ~bswap~ (new, 0F C8); the tail walks the bytes out of ~rax~ with ~shr~ by an immediate (new, C1 /5), which is used rather than ~shift_cl~ precisely because ~rep stosd~ leaves ~rcx~ at zero. Either operand is evaluated *before* ~rdi~ is loaded, because evaluating one may call and a call clobbers ~rdi~; ~rep stosd~ does not touch ~rax~, which is what lets the tail keep reading the word out of it. - The one asymmetry: ~emit.ml~ needs a ~Tast.Set~ arm of its own to fill the place rather than a temporary, because its value path returns an SSA value. ~x86.ml~ needs none — a ~Set~ there already lowers its value into the place's location, so filling a place and filling a temporary are the same line. - *js.ml* refuses both by name. A struct is an object there, not a run of bytes, so there is nothing for 0xFF to mean. ** What was run ~dune test --root .~ green (exit 0, no FAIL lines). Three acceptance rows over ~test/programs/fill.flan~ — default, ~-O0~ and ~--x86~ — and the three outputs diffed against each other by hand before the rows were written: byte-identical, with a fourth build (~--dev~) added at the rename: four-way identical. The three rows were confirmed to actually run, by breaking one expectation on purpose and watching all three report. Seventeen checker rows in ~test_flan.ml~: four accepting (both ~dead-beef~ arities and a computed pattern among them), and seventeen refusals covering the boundary — one per reason, since review found the tagged types were sharing a line that was false for two of them — both arities, both no-expected-type positions, the byte's range, the pattern's range and the ~defconst~ rule. ~dune test~ exits 1 on this branch about half the time, with *no FAIL line anywhere* — the ~Flan.Wire.Closed~ flake an earlier lane wrote up further up this file. Green runs are real (2 of the last 4 exit 0); the rest are that race. *This lane makes it fire more often, and that is worth saying plainly rather than filing the whole thing under "known flake".* Measured, because early runs looked like the lane had broken something: | what | full ~dune test~ | | base commit 1526b6f, none of the lane | 0 failures in 5 | | this lane | 5 failures in 5 | | this lane, my 3 acceptance rows off | 1 failure in 3 | Isolated, ~test_dev.exe~ alone (15 seconds, not the ten-minute suite) gives 4 in 6 here against 2 in 6 at the base — much closer, which is the shape you would expect if the lane is not touching the racy code but *is* changing the load around it. The three acceptance rows add three compile-and-run jobs to the pool that ~test_dev~ runs alongside, and a busier machine is slower to answer the poll that races. So: not a new defect, and nothing in ~check.ml~/~emit.ml~/~x86.ml~ here is implicated — but the next lane to add acceptance rows will push the rate up again, and the fix the earlier writeup already named (catch ~Closed~ in ~trap_park~'s poll and read it as the program having ended) is now worth doing rather than noting. One detail to add to that earlier writeup, which had only seen the flake on ~dev-trap-null-alloc~: it is not row-specific. Five of my six isolated failures were that row and the sixth was ~dev-trap-free-all~, so what is racy is ~trap_park~ itself and every row that calls it — which is exactly what the mechanism described there predicts. Per the sweep policy the ~@x86~ and ~@sanitize~ sweeps were not run here. * Shadowing a builtin, 2026-09-20 The author's decision, in the author's words: #+begin_quote "allow shadowing but warn" — a user ~(defn get ...)~ colliding with a builtin is legal, the USER'S definition wins at call sites (real shadowing, Clojure's model: the def takes over, a warning says so), and the compiler warns once at the definition site. #+end_quote ** Where builtin-wins actually lived Not in a table and not in a precedence list. ~named_call~ is one ~match name with~ whose arms are the builtin names written out as string literals, and the three arms that look anything up — a local of ~Fn~ type, ~gsigs~, then ~env.fns~ — are the last three in that match. So a builtin won because OCaml tried its arm first, and for no other reason. ~env.fns~ never outranked anything; it was simply never reached for a name spelled like a builtin. The old comment above ~arity~ said this outright ("the dispatch above reaches every builtin arm before it ever looks in [fns]") and is the only place it was written down. ** The resolution change One guard, first arm of ~named_call~: : | _ when shadows_builtin ctx loc name -> ordinary_call ctx ~want loc name args and the three trailing arms factored into ~ordinary_call~ so that both routes — falling past every builtin, and being sent straight there by the guard — resolve a name by exactly the same rules. Order is now total and reads the way a reader would guess: local of function type, then generic signature, then the function table, then the builtins, then the struct and the did-you-mean refusals. ~shadows_builtin~ asks two questions, in this order. Is the name a builtin's: one lookup in ~builtin_set~, false for every call to an ordinary function, and asking it first is also what keeps the arms that are not calls — an enum cast, a cast to a type variable, a machine-type cast — exactly where they were. Then, and only then, is there a definition that reaches this call: a local of function type, or a defn written in this same file. ~builtin_set~ is a ~Hashtbl~ and is new. The guard is the first arm of the dispatch, so it runs at every named call, and the list ~builtin_names~ that already existed is walked linearly — about a third of check time on a program of twenty thousand calls, measured in review. The list stays for the did-you-mean, whose order is its order; the set answers the membership. ** The warning, verbatim : shadow-builtin.flan:20:7: warning: get shadows the builtin get — every call in this program now reaches your definition — the builtin stays reachable as builtin/get : 20 | (defn get [p P] i32 (.x p)) : | ~~~ The clause after the second dash arrived a day later with the escape hatch itself; this entry shipped without it, because there was nothing to name. Rendered by ~Loc.entry ~mark:'~' ~label:"warning: "~, which is the ~--warn-memory~ precedent, so flycheck parses it exactly as it parses an error. Nothing raises and the exit status does not move. Unlike ~--warn-memory~ it is behind no flag: there is nothing to tune, and the line is one line and rare. It is printed from ~Check.build_program~ rather than from ~bin/main.ml~ beside ~print_memory_warnings~, because every route into the compiler passes through that function — build, check, run, and the dev daemon's reload, which is where a defn is most likely to be written. The list itself is ~Check.shadowed_builtins~, a pure function over the declarations, which is what the tests ask. ** Scope, settled from the code *Package-wide or program-wide: neither, and the mechanism already decided it.* ~Load~ qualifies every name an imported package declares to ~alias/name~, including its own uses of them, so a package's ~get~ is ~rl/get~ and cannot collide with a builtin at all. What is left is the other direction: a program that defines ~get~ and imports a package whose body calls the builtin ~get~. That call must keep meaning the builtin, and it does: the shadow reaches exactly the file the definition was written in, which is the same visibility a defn has everywhere else. The prelude falls out of the same rule rather than needing one of its own — it is a file, and not the one the program is in. The file and not the enclosing function's name, which is what this first shipped with and was wrong. A package's functions are qualified at the import, so "does the owner's name carry a slash" answers correctly wherever a call sits inside a function — and wrongly in the one place a call does not. Review demonstrated it: a program defining ~(defn len ...)~ reached inside an imported package's ~(defvar sz i32 (len "abcd"))~, which is checked with no owner at all, and made it 999. A global initialiser has no enclosing name; it does have a file. ~programs/shadow-builtin.flan~ is every half in one program: 7 is the program's own one-argument ~(get p)~, 4 is the builtin ~get~ called inside the package it imports, 99 is a shadowed ~+~, 999 is the program's own ~len~, and the last 4 is that same ~len~ inside the package's global initialiser, where the builtin still means the builtin. *Prelude macros.* No rule was needed: the namespace is already one. ~(defn comment [x i32] i32 ...)~ against the prelude's ~(defmacro comment ...)~ is refused today as "comment is defined twice", with a note at the prelude's definition, and the same for ~inc~ and ~dec~. Shadowing a builtin is a different question precisely because a builtin is not a declaration — it is an arm in the compiler, with nothing for a redefinition check to point at. Macros expand before checking and key on the head name unconditionally, so if the redefinition check were ever relaxed the macro would win and the defn would be unreachable; that is not a state this compiler can reach, and nothing was written to handle it. *What the file rule costs.* A bare REPL expression — ~C-x C-e~ on a form, evaluated with origin ~~ and no file behind it — is not the file the defn was written in, so it reaches the builtin. ~C-c C-c~ sends the buffer's own path and is unaffected, which is the case the dev loop is actually made of. It is the conservative direction: a REPL line meaning the builtin is a surprise, a REPL line silently meaning a definition somewhere else is a worse one. If it ever bites, the fix is for the session to evaluate with the buffer's path as origin, which it already knows. *A macro named after a builtin warns too, and that is right.* ~(defmacro get [args] ...)~ is an ~Ast.Defn~ like any other by the time the declaration list is collected — a macro is a function the compiler runs — so ~shadowed_builtins~ names it and the warning reads the same. The macro also wins, and by a different mechanism: expansion runs before checking and keys on the head name, so the call never becomes a call at all. The one wrinkle is that a file carrying macros is checked twice, the macro module first, so its warning is printed twice. Disclosed rather than suppressed: dropping a duplicate means keeping state across the two checks, and the second line is the same line. *The dead end: a shadowed builtin has no remaining spelling.* Nothing in this language qualifies a name — there is no ~core/get~, no ~(builtin get)~ — so a file that defines ~get~ has given up the builtin ~get~ for the whole file, and a definition that wants to *wrap* the builtin cannot. ~(defn len [s string] i32 (+ 1 (len s)))~ is not a wrapper, it is unbounded recursion: the inner call reaches the definition being written, and the program stack-overflows at run time with no diagnostic from the compiler, which has nothing to object to. The warning says the name is taken over; it does not say this. An escape hatch is a language decision and is with the author. /Closed the next day./ The author's answer was the qualified spelling — see "builtin/, the reserved qualifier, 2026-09-20" below. ~(defn len [s string] i32 (builtin/+ 1 (builtin/len s)))~ is the wrapper this paragraph said could not be written, and it runs: ~programs/builtin-qualified.flan~ prints 5 for it beside the builtin's own 4. The warning's sentence now carries the escape, so the reader is told what is left at the moment they are told the name was taken over. ** Pins - ~test_flan.ml~: the warning's kind, line and column; its message, matched whole and not by needle; that it carries no notes; that the source which used to be refused now checks; and that a program shadowing nothing warns not at all. - ~test_flan.ml~, from review: a shadowed operator warns with the same sentence and lowers to a ~Call~ to the definition rather than the ~Add~ prim; and a call read with another file's name, against the same declaration list, reaches the builtin and is refused at the builtin's arity — the global-initialiser case at its smallest. - ~test_acceptance.ml~: ~programs/shadow-builtin.flan~ outputs ~7\n4\n99\n999\n4\n~, and the ~@x86~ sweep compares both backends over the same file. - Removed: the ~check/builtin-arity~ kind, its message ("this is the builtin get, which a defn of the same name does not replace"), its note ("is also defined here, and this call is not reaching it — rename it to call it"), and the three checks that pinned them. The situation cannot arise: the call reaches the user's defn, whose arity is whatever it declared. - Changed: the builtin-arm/~Check.builtins~ cross-check reads ~named_call~'s source down to ~ | _ ->~ rather than ~ | _~, because the new first arm is guarded and stopping at it read the whole region as empty. ** One thing the new package cost A package under ~test/programs/pkgs/~ needs a ~glob_files~ line of its own in four places in ~test/dune~ — the test stanza and the ~@valgrind~, ~@x86~ and ~@js~ sweeps — because dune's glob does not descend and the sweeps walk ~programs/*.flan~ whole. Without it the corpus row fails with "no package at ..." and prints no FAIL line, only "1 failure(s)" at the end of the log: worth knowing, because a grep for FAIL says green over it. ** What was run ~dune test --root .~ in the lane's worktree, forced: exit 0. Rebased onto dev-loop before the review follow-ups, so the ~arity~ signature this lane cuts down is the one the byte-fill lane had just given a ~ctx~ argument, and the ~int~/~float~ section's paragraph about "the ~arity~ precedent, where the builtin wins" is revised in place — that precedent is what this lane deleted. The heavy sweeps (~@x86~, ~@sanitize~, ~@valgrind~) were left to the batch. * Lazy instance migration for a redefined defclass, 2026-09-20 CLHS 4.3.6 — the ~update-instance-for-redefined-class~ protocol — adapted to the dyn side's classes, minus the user hook. Redefining a ~defclass~ in the dev session used to be *silent*: a class is compile-time sugar for a constructor ~defn~, so the edit replaced a function body, the instances already in the program kept their old keys for ever, and nothing anywhere said so. Now the instances follow the class. The research is ~docs/SBCL-REDEFINITION-NOTES.md~, candidate C. Its central finding is why this was cheap and why the same thing is not available for a typed ~defstruct~: every SBCL mechanism of this kind rests on an instance carrying a pointer to its shape, and a dyn instance *has a header* where a flat struct does not. ** What it does #+begin_src lisp (defclass point [x y]) ;; ... a program runs, builds instances, holds them in globals ... (defclass point [x z]) ; C-c C-c, with the file's callers if any ;; every live instance, at its next touch: ;; :x keeps the value it had (matched by name) ;; :z appears as nil (gained) ;; :y is gone (dropped) ;; the object is the same object (identity preserved) ;; (class-of p) is still :point (so every method still reaches it) #+end_src Nothing is enumerated and no heap is walked, which is the part the old deferral thought was missing. The redefinition is O(1) — one registry entry updated — and the work is paid per instance, once, by whoever touches it. ** The three pieces *** A registry, in the runtime ~runtime/flan_dyn.c~, under "Classes": one entry per class name, holding the current slot list and a generation counter. ~flan_dyn_class_def(name, slots, n)~ registers or re-registers one; ~slots~ is the names packed into a single string with newlines between. *Nothing in it is a collector object, and that is the whole GC argument.* A class's name and its slots are interned ~kw_entry~ pointers — immortal, not on the collected heap, never traced — which is the same argument the ~klass~ header field already makes. The table itself is ~malloc~ed, append-only and never freed. So no root is pushed for the registry, the marker has nothing to reach in it, and a collection triggered from inside a migration cannot see a half-built slot list. A registry of dyn vectors would have needed all three of those worried about. *** A generation, in the instance's header A ~uint32_t~ in ~flan_obj~, *in the padding between ~mark~ and ~len~*. ~sizeof(flan_obj)~ is 48 with it and was 48 without it — the union is exactly 24 bytes (~items~, ~cap~, ~klass~), so there is no spare word inside the arm and a field placed after the union would have cost eight bytes on every dyn value in the heap for a word only class instances read. The obvious guess before reading the struct is that ~view.is_vec~ leaves four spare bytes at offset 44; it does not. That word is the *view* arm's and is aliased with ~klass~ — the arms overlap, so nothing inside the union is free. The free bytes are the ones alignment already wastes, in front of it. The number is asserted rather than commented: ~flan_dyn_obj_size()~ is a new entry point and ~dyn_ops.c~'s ~classes~ mode checks it against 48, so a later field that pushes it out fails a test instead of costing that silently. Zero means "built before any definition was registered", which is every instance of every program that was built and never reloaded. The first registration of a name lands on 1, so those instances migrate exactly once, the first time the class is redefined under them — which is what makes a program that predates this correct rather than merely unbroken. *** A registration thunk, per reload ~lib/session.ml~'s ~change~ emits one nullary function per evaluation that declared any class, calling ~flan_dyn_class_def~ once per class, and hands it to ~Emit.redefinition~/~X86.redefinition~ as ~?call~ — the mechanism ~C-x C-e~ already uses, where the agent finds ~flan_reload_call~ by ~dlsym~ and runs it after the module's bodies are published and on the game thread. Both backends, unchanged: the thunk is an ordinary Tast function and the backends lower ~Rt~ calls generically. *It has to be a thunk and not something in the constructor.* The case this exists for is a class redefined and *not* constructed — old instances touched after the edit — and a registration that only ran at construction would never fire for it. That is the same reasoning that rules out registering from ~main~: reload modules re-execute their definitions, not their program. *Every* class in the form is registered, not only the ones whose slots changed, because a class the registry has never seen has to arrive somehow. The bump is what is conditional: re-registering an identical list changes nothing, so a ~C-c C-k~ costs one comparison per class and migrates nothing. Without that rule every save would migrate every instance in the program. ** Where a migration happens ~want_map~ (so ~get~, ~put~ and ~has-key?~), ~flan_dyn_len~'s map arm, and ~dyn_equal~'s. CLHS asks for "no later than the next time a slot of that instance is read or written"; those are the three places that read or write the slot *set*. *Neither printer is one of them*, and that has a consequence somebody will meet. ~render~ — which ~print~ goes through, and which the editor renders every dyn value with — and ~say_render~ — the 96-byte sentence a trap prints — both walk the entries raw and neither syncs. ~say_render~ runs inside trap reporting, where the heap is whatever the trap left, and a printer that frees an object's entry block and installs another is not something to have on that path; ~render~ is its sibling and is reached from it for nested values, so splitting them would put the mutation one recursion below a trap anyway. So: *a stale instance shows its old slots to the editor until something touches it.* A watch expression, the value ~C-x C-e~ answers and the inspector's render of a dyn all arrive through ~render~, so in the moment after a ~defclass~ is redefined the inspector can show a slot the class no longer has and omit one it has gained — while ~(get p :z)~ typed at the same instant answers the new definition, migrates the instance, and makes the inspector agree from then on. CLHS's "implementation-dependent time" permits it; it is the price of the printer staying a printer; and it is disclosed here rather than discovered. The migration rebuilds the entry block rather than compacting it in place, and writes the slots in the *class's* order. One ~malloc~ per instance per redefinition, and the property bought is that a migrated instance is indistinguishable from a freshly constructed one — ~dyn_equal~ compares maps by lookup and would not have cared, but ~len~ and ~render~ work in insertion order and would have. ** Equality across generations: migrate first Two instances of one class built either side of a redefinition, holding equal values for the slots the class still has, *are equal*. ~dyn_equal~ migrates both operands before comparing the tag or the length. The decision recorded: equality is over the class as it is now, not over the shapes the two values happened to be born with. The alternative — comparing key sets literally — would answer "not equal" about a difference the class no longer has, and would make the answer depend on which of the two had been touched since. ** The registry is advisory, and this is the honest cost A class instance is an open map. ~put~ takes any key — FIX.org already defers refusing ~(get p :z)~ — so a program can write a key the class never declared, and the next migration *drops it*, because the migration's rule is that an instance's keys are the class's slots. That is data loss, and there is no enforcement behind it to make the loss impossible. Enforcing would mean refusing an unknown key at ~put~, which is the static slot discipline the dyn side deliberately does not have, and the research names this exact risk: "if ~put~ of an arbitrary key stays legal, the registry describes an intention rather than a constraint". It describes an intention. ~test_dev.ml~ pins the loss as behaviour rather than leaving it to be discovered. ** What the session had to give up to allow it, and what it kept A slot added or removed is a *constructor signature change*, which ~session.ml~'s ~compatible~ refuses by default — a call site compiled to pass two dyn words into a three-parameter body leaves the third holding a register, and a dyn word that is not a value is a wild pointer rather than a wrong answer. Item 6's own line above — the constructor "is an ordinary ~defn~ — so its arity refusal, its cell in a dev build and its behaviour under redefinition are the ones every function already has" — is true and was read one step too far: what every function already has *is* the signature refusal, so a class could not change its slots at all. That was the first thing this lane had to fix, before any of the runtime work could be reached. The refusal is now lifted for a ~defclass~ constructor *and nothing else*, and only when no compiled caller is left behind. In practice the checker gets there first: the whole declaration list is re-checked against the new constructor before ~compatible~ is consulted, so a declaration still calling it with the old count is refused at the call site with a line number — which is the sentence a reader sees, and is what ~test_session.ml~ pins. What ~change~ adds is the *reason* held locally rather than inherited: a caller that type-checks under the new arity is one whose source changed, so it is in this form and is republished with the class. The walk over ~t.program~'s bodies asserts that instead of assuming it, and if it ever fires the answer is a refusal naming the callers rather than a wild pointer. Not touched: typed ~defstruct~ layout changes and typed global type changes keep their refusals. ~SBCL-REDEFINITION-NOTES.md~ §5 is why — a flat unboxed struct has no header to stamp and cannot change size in place, so none of this is available there at any price. ** Deferred, with the reason - *~update-instance-for-redefined-class~ itself*, the user hook. CLOS hands the discarded slots' values to a method so a coordinate change can be written by hand; the obvious Flan spelling is a generic, ~(defmethod update-for-redefined point [p added discarded] ...)~, riding the dispatch that already exists. Left out of v1 because the automatic half — name matching — is the half that makes redefinition usable, and the hook is what makes it *expressive*. Nothing about the design blocks it: the migration already computes both lists. - *Initargs validation.* CLOS's default method signals on an initarg the class does not declare. There are no initargs here; construction is positional. - *Refusing an unknown ~put~*, which is what would turn the registry from advisory into enforcing. Same gate as the deferred ~(get p :z)~ check. - *Rolling a failed migration back.* SBCL wraps the user hook in ~nlx-protect~ so a signalling method leaves the instance on its old wrapper. With no user hook the migration cannot signal, so there is nothing to roll back yet; it becomes a real question the day the hook lands. - *The whole-program build registers nothing.* A program that is built and never reloaded has no registry at all, its instances carry generation zero, and everything behaves exactly as it did before this existed. Registering at startup would need an initialiser in both backends' executable paths and buys only introspection — there is no *stale* instance in a program whose classes never changed. ** Pinned - ~test/dyn_ops.c~'s ~classes~ mode, run by ~test_dyn.ml~: the object size, an unregistered class behaving as before, a slot gained, a slot lost, both at once, three definitions an instance slept through, a re-registration of the same list migrating nothing, two generations compared, a plain map untouched by any of it, and two thousand instances migrated while the collector runs. Driven from C because the event has no Flan spelling: a class definition changes between two *modules*, so no single program can see one change. - ~test_sanitize.ml~'s ~dyn_sweep~ runs that mode under ASan and UBSan. It is the one mode that frees an object's entry block while the object stays live and reachable, which is the shape a wrong marker would show as a use-after-free and as nothing at all in the checked build. - ~test_dev.ml~, "a class redefined under its own instances": a real daemon over ~test/programs/dev-classes.flan~, instances pushed into a dyn global by ~C-x C-e~ thunks, then five ~C-c C-c~ evaluations of the class — four of which change the slot list — with the program's own heap answering between them: gained slot nil, kept slot kept, count right, *a generic still dispatching after the migration*, an untouched instance migrating on its own first touch, a lost slot gone, the third generation, the tag surviving, the one unchanged re-evaluation migrating nothing, and a raw-~put~ key dropped by the next real redefinition. - And the same protocol once more against a ~flan dev --llvm~ daemon. The block above runs on x86, which is what ~flan dev~ takes unasked; the subset under LLVM is the part that is backend-specific — whether the registration thunk reaches the runtime at all — and everything past that point is flan_dyn.c's, which does not know who called it. Written because ~x86.ml~'s header had claimed for some time that it did *not* emit ~flan_reload_call~, which is exactly the kind of sentence not to trust twice. - ~test_session.ml~: a slot added and a slot removed both accepted, the module carrying a ~call~ to ~flan_dyn_class_def~, a definition of ~flan_reload_call~ and the packed slot-list constant, an unchanged class registering anyway with its own list, the refusal when a compiled caller is in the way, and the same edit accepted when the caller comes with it. ** Found on the way ~lib/x86.ml~'s ~redefinition~ header said "the transient ~flan_reload_call~ thunk is not built here, and is refused by name". It has been built there for some time — the code is at the bottom of the same function — and the comment had simply not moved with it. Corrected rather than worked around; this lane's thunk goes through that path on every ~C-c C-c~ of a class, which is the default backend for ~flan dev~. A second one, found by the review rather than by the lane: two of the ~test_session.ml~ pins above asserted the string ~flan_dyn_class_def~ against the module's IR text, and ~emit.ml~ writes a ~declare~ for every runtime entry point into every module it emits — so both passed against a module that registered nothing. They assert ~call void @flan_dyn_class_def~ and the packed slot-list constant now. Confirmed by mutation: with the thunk suppressed the old needles pass and the new ones fail. Worth carrying as a habit rather than as a fix — a needle that names a runtime symbol is matching the declare block unless it says ~call~. ** What was run ~dune test --root .~ green (exit 0, no FAIL lines) before and after the rebase onto dev-loop, and ~test_dev.exe~ run directly afterwards because its label can be swallowed by a cached run. ~dune build --root . @sanitize~ clean on the committed source, which is where the two-thousand-instance migration under collection actually gets looked at. The rebase is worth a line of its own. Three conflicts were additive — FIX.org, ~want_map~ (the diagnostics lane gave ~trap2~ a location pair, this one put a ~class_sync~ beside it, both wanted), and ~test_dev.ml~'s agent-socket block beside this one's. The fourth was not a conflict at all and is the one to remember: ~flan_dyn_class_def~'s argument check was written against the four-argument ~trap1~ and merged clean into a tree where ~trap1~ takes a location first, so the class name would have been read as a length. *~dune build~ does not compile ~flan_dyn.c~* — it is a string the compiler carries and hands to clang at ~flan run~ — so a green build is not evidence about that file at all. ~dune test~ is, and so is running any program. * Implicit widening, 2026-09-20 — "go with C" Answers DISCUSS.org's *implicit numeric conversions with a warning flag, instead of hard errors*. The ask there was a warn-instead-of-refuse mode; the answer is narrower and needs no mode and no flag. *The decision.* Implicit numeric *widening* is legal — every conversion that cannot change the number. *Narrowing stays a hard error everywhere*, with no flag that turns it into a warning. Odin's position roughly; Rust's no-conversions-at-all position is rejected, and so is C's, which is what DISCUSS.org's ~-Wconversion~ middle ground would have reproduced. So there is no second type-checking mode, which was the objection in the note: one predicate says which conversions exist, one helper inserts the ~Cast~ for them, and everything else in the checker is unchanged. ** The lattice ~Types.widens_to ~from ~into~ (lib/types.ml). One rule decides every row: a conversion is admitted exactly when no value of the source can come out the other side as a different number. | from | widens implicitly into | |-------------+-------------------------------------------| | ~i8~ | ~i16~ ~i32~ ~i64~ ~f32~ ~f64~ | | ~i16~ | ~i32~ ~i64~ ~f32~ ~f64~ | | ~i32~ | ~i64~ ~f64~ | | ~i64~ | — (nothing) | | ~u8~ | ~u16~ ~u32~ ~u64~ ~i16~ ~i32~ ~i64~ ~f32~ ~f64~ | | ~u16~ | ~u32~ ~u64~ ~i32~ ~i64~ ~f32~ ~f64~ | | ~u32~ | ~u64~ ~i64~ ~f64~ | | ~u64~ | — (nothing) | | ~f32~ | ~f64~ | | ~f64~ | — (nothing) | Read off the rule, one clause at a time: - *Same signedness, strictly wider* — the uncontroversial half. - *Unsigned into strictly wider signed* — ~u8~→~i16~, ~u32~→~i64~. Every value of the source is a value of the target, so it is in. - *Signed into unsigned* — never, at any width: the negatives have nowhere to go. - *Equal width across signedness* (~i32~→~u32~, ~u32~→~i32~) — never, for the same reason. Half the range would have to move. - *Integer into float, exact only.* An ~f64~ significand is 53 bits, so everything 32 bits and under reaches it and ~i64~/~u64~ do not — 2^53+1 is not an ~f64~. An ~f32~ significand is 24 bits, so only the 8- and 16-bit integers reach it. Odin allows any integer into any float; this is the tighter rule deliberately. A program that wants ~i64~→~f64~ writes ~(f64 x)~. Loosening this later adds programs; tightening it later would break them, which is why the loose version is not the one that landed. - *~dyn~ is not in the lattice.* Crossing into and out of a box is ~box~/~unbox~ and is untouched — in particular a ~dyn~ still only unboxes to ~i64~/~f64~/~bool~, and a narrower want there is still the refusal lib/check.ml's ~unbox~ has always given. - *Containers are invariant.* A ~[i32]~ is not a ~[i64]~, a ~(Vec i32)~ is not a ~(Vec i64)~, an ~[8 u8]~ is not an ~[8 u16]~. Widening rewrites a value with a ~Cast~; there is no value to rewrite in a slice that does not own its bytes, and rewriting a ~Vec~ would mean allocating a second one. - ~bool~ and an ~Enum~ are not numbers and are not on the list. A keyword still resolves against an enum and a bare integer still does not fit one. *Not expressed as a loosening of ~equal~ or ~fits~*, deliberately. ~widens_to~ is a separate predicate precisely so that admitting a conversion is always paired with inserting the ~Cast~ that performs it. Had ~fits~ been loosened, every site that accepts a value without rewriting it would hand the backends a node whose type lies about the bits it holds. ** Where it applies ~Check.expect~ (lib/check.ml) is the single place a wanted type meets a produced one, so one arm there covers the whole surface: argument passing, return position, ~let~ and ~defvar~ with an annotation, struct field initialisers, ~Vec~ pushes, ~set!~, every C import's parameters. Nothing else had to learn about widening except the binary operators, which have no "wanted type" to meet. ** The join rule for binary operators Both operands of a binary operator have one type, and the old comment said "there is no implicit widening, so one side has to decide it". The decides-rule generalises rather than disappearing: 1. *An expectation still wins, and it reaches the operands.* When the site wants a type — ~(defn f [] i64 (+ a b))~ — that want is threaded into both operands as before, and now widens them. The addition happens at ~i64~, not at ~i32~ followed by a widened result. That is the better of the two and it is only reachable by programs that did not compile before. 2. *Literals decide exactly as they did, and this one had to be defended.* ~y_decides~ and ~needs_want~ are untouched: a literal takes its width from the other operand, a float literal outranks an integer one. ~(+ x 1)~ over a ~u64~ ~x~ still builds a ~u64~ one, which is what keeps ~(let [h fnv-offset])~ with a ~u64~ ~defconst~ meaning exactly what it meant. Saying so was not enough. The join is implemented as a *trial* — ask the second operand for the first's type, and reconsider if it refuses — and the first version of it reconsidered a literal too, which silently moved ~(+ u8-thing 300)~ from "300 does not fit in u8" to i32 arithmetic answering 555, asymmetric in the operand order, and ~(+ i32-x 1.5)~ to an f64 add. That is a different language from the one decided on. A literal that does not fit is the program's mistake and not a pair of types that failed to meet — the literal had no type of its own to bring — so the three refusals that say so (~in_range~, and the integer and float literal arms of ~check~) now carry the kind ~check/literal-at-want~, and the trial re-raises on sight of it rather than looking again. Pinned four ways: the literal as the operand, the literal buried inside one, the float-literal spelling, and a literal that *does* fit still taking the operand's type. 3. *Otherwise the wider side decides* — ~Types.join~: whichever operand the other widens into, with the loser wrapped in a ~Cast~ to it. ~(+ i32-var i64-var)~ is ~i64~ and is newly legal. ~(min i8-var i16-var)~ is ~i16~. 4. *Equal-width cross-sign still refuses.* ~(+ i32-var u32-var)~ has no join — neither widens into the other — and the message names the cast to write. ~join~ is not a real lattice and is not meant to be: ~(i32, u32)~ has no answer, and inventing ~i64~ for it would pick a type neither operand was written at. *Folds are still folds.* ~(+ a b c)~ is ~((a + b) + c)~, so the join is pairwise and left-to-right: the first pair settles a type and the third operand is checked against it. ~(+ i8 i8 i64)~ therefore still refuses, where ~(+ i64 i8 i8)~ passes. Left to stand rather than joined across the whole argument list, because changing that would change what ~(- a b c)~ means, not only what it admits. *Shifts are carved out.* ~<<~ and ~>>~ do not take the plain join: the value decides, and the count widens to the value's type. Under the general rule ~(<< u8-var i32-count)~ would widen the *value* to ~i32~ and the result type and the wrap width would silently follow the count's declared type — and the emitter's poison mask is keyed to the value's width. A count wider than the value is refused and says so. ** Const folding is unchanged, and was never the thing it looked like The ~defconst~ integer folder (~const_int~, lib/check.ml) runs on the *AST*, before anything has a type, and carries one ~int64~ per constant with no width attached. So it already folded across widths and still does — ~(defconst w i32 4)~ times ~(defconst h i64 5)~ has always been a constant 20, usable as an array length — and widening neither added a fold nor removed one. Measured, not assumed. The one thing that did change is at the edges rather than in the folder: it answers nothing for a ~Call~ whose operator is not one of the five arithmetic names, and a written cast is such a call. So ~(* w (i64 h))~ was not a constant and ~(* w h)~ is — which means dropping a cast that widening made unnecessary can turn a run-time computation into an array length. That is widening adding a program, the same as everywhere else, and needed no change here. ** No overload resolution to disturb Worth saying plainly, because widening is exactly the change that breaks overloading in a language that has it: this one does not. Every builtin is dispatched by *name* in ~named_call~ — there is no set of candidates to pick between, so widening cannot change which one fires and cannot make a call ambiguous. ~min~/~max~ and the arithmetic builtins looked like they keyed on types, and what they actually do is check a predicate (~ordered?~, ~numeric?~) against the type the operands already agreed on. Widening changes what they agree on and nothing about the dispatch. ** Sites changed, and sites kept Changed, three of them and no more: - lib/types.ml — ~widens_to~ and ~join~, new. ~equal~ and ~fits~ untouched. - ~Check.expect~ — one arm, which is the entire annotation surface. - ~Check.binary~ — the join, and ~~join:false~ for the shifts. Kept, with the message saying *narrowing* rather than "no conversions": - ~Check.unbox~'s per-width refusal at the dyn boundary. A dyn carries one integer width and one float width, so there is no narrower source to widen from and nothing on the lattice reaches it; what it refuses is a truncation at the one boundary where the value's type was already uncertain, and that is as true as it was. - Every numeric refusal that survives ~expect~ now carries ~numeric_note~, which tells the two surviving cases apart: a narrowing names the cast and points out that the other direction is free, and an equal-width cross-signed pair is told that neither direction exists. Comments rewritten rather than left to rot, each now stating the new invariant rather than the old one: lib/types.ml's header, ~equal~'s note (why widening is deliberately *not* a loosening of it), ~Check.unbox~, ~Check.binary~, the bitwise and shift arms, the ~embed~ two-spellings argument (which turns out never to have rested on widening at all — it rests on containers not converting), lib/prelude.ml's ~print~ note and both ~sum-~ notes, docs/BUILT.md's ~gravity~ and ~#load~ paragraphs, test/programs/embed.flan, and the ~+~, ~bit-and~, ~<<~, ~>>~ and ~min~ lines of the ~builtins~ table. Left alone: docs/SPIKE-*.md and docs/handoffs/*, which are dated records of what was true when they were written. ** What was run - ~dune test --root . --force~ — exit 0, 0 FAIL lines, on the lane *and* in a trial-merged tree. Through most of this lane it exited 1 instead, from ~test_dev.ml~'s ~trap_park~ rows racing and dying with ~Fatal error: exception Flan.Wire.Closed~ at ~dev-trap-null-alloc~ — measured on an untouched worktree at dev-loop's tip with nothing of this lane in it, and written up above under "Found while running it". Another lane has since fixed it (~trap_park stops dying on the abort race~), so the green run is a real green run rather than a lucky one. One *other* ~test_dev.ml~ row failed twice across seven runs of identical code — "the merged program never bound ...agent.sock", a daemon that did not come up in time — and was green on every run either side, on the lane and in the merged tree. The second failure named its own cause: the corpus sweep was compiling in another worktree on the same machine, and the row gives the daemon a fixed window to bind in. Run on an idle machine it is green. Recorded rather than chased: it is a socket bind in the agent fixture, this lane touches neither the agent nor the dyn side, and it looks like the same family as the ~trap_park~ race that was just fixed, one row further along — a timeout that is generous when nothing else is running and is not otherwise. - test/programs/widening.flan, new, with three acceptance rows — default, -O0 and ~--x86~ — and its output diffed by hand across the two backends before the rows were written. Byte-identical. - The lattice's edges pinned in test_flan.ml: what widens, what does not, the two calls that could have gone the other way (int-into-float exact-only, and equal-width cross-signedness), container invariance, the join in both operand orders, the literal rule still standing, and the shift carve-out in both directions. - *Verified in a trial-merged tree, not only on the lane.* dev-loop moved eight times while this was open, and the acceptance rows, the full suite and the sweep were re-run against the last of them. The branch caught up by rebase until the notes file made that expensive — every commit of this lane touches FIX.org and so conflicted with every landing that also did — and finishes with an ordinary merge of dev-loop into the lane instead, resolved once. The merge back into dev-loop is clean, and was built, run and tested as a merged tree rather than only on the branch. - *The corpus sweep, base against lane.* Headless programs (test/programs/) were compiled, ~check~ed and run, and the diff of the whole lot is a single pure addition: widening.flan's own rows. Not one existing program's diagnostics, output or exit status moved. The thirteen test programs that import ~vendor:raylib~ were not run either, for the same reason, and got the same treatment as examples/ below: ~check~'s diagnostics are identical on both sides, LLVM ~emit~ is byte-identical, and the x86 difference is the prelude-line strings and nothing else. examples/ were *not run*. They link raylib and every one of them opens a real window on the author's desktop, so the comparison there is ~check~'s exit status and diagnostics plus a byte-diff of ~emit~ and ~emit --x86~. LLVM output is byte-identical for all of them — after the same prelude-line normalisation the x86 comparison needs, which the LLVM diff gets for free because it spells those strings out as text where x86 emits them as ~.byte~ data. The x86 output differs in 28 of them and every differing byte is inside a ~:line:col~ string — this lane's comment rewrites moved prelude source lines by three, and the x86 backend spells those strings out as ~.byte~ data. Normalising the prelude line number makes both backends byte-identical everywhere. - A global-initialiser check by hand, both backends: a widened ~defvar~ initialiser, a widened struct field in a struct literal, a widened array element, and a widened ~set~. The concern was that a ~Cast~ in an initialiser would stop being an LLVM constant; it does not, and the two backends print the same six lines. A ~defconst~ of a float *from* an integer constant is refused, with the existing "must be a compile-time constant" sentence — the folder is integers-only and says so. ** What this lane did not do - ~dyn~ is untouched in both directions. - No ~Vec~, slice or array element type converts, and nothing was added that could make one. - The ~@x86~ and ~@sanitize~ sweeps were not run; per the sweep policy they belong to the batch after several lanes land. The individual ~--x86~ builds the policy does require were run, and are the acceptance row and the sweep above. ** Review round two: what the first version got wrong Three findings, all in the mechanism rather than in the lattice, and all from the same root — the join is implemented as a *trial* (ask the second operand for the first operand's type; reconsider only if that refuses), and a trial that catches an exception is not free the way a trial that returns an option is. *1. An abandoned trial left its bindings behind.* ~scoped~ restores ~ctx.scope~ on the way out, and an exception does not take that way out — so every binding the abandoned pass made survived into the enclosing scope. Two symptoms, and the second is the serious one: - a name that should be unknown resolved anyway, and - the abandoned binding *shadowed* a live one. ~(let [t i32-x] (println (+ i32-x (let [t i64-y] t))) (println t))~ printed the sum and then ~0~ — the outer ~t~ read through the dead inner binding's slot, which nothing ever stored into. An uninitialised stack read, in a program the compiler accepted, on both backends. Fixed with ~trial~, which snapshots the context and puts it back when the trial refuses. ~scoped~ itself is untouched — it is shared by every scope-opening form in the file and this is not its problem to solve. ~trial~ also narrows the catch to ~Loc.Error~: a timeout or a stack overflow is not a refusal to reconsider, and continuing past one would turn a resource failure into a wrong answer. *The first version of that fix restored six chosen fields, and the choice was wrong.* Review round three found three more, and the worst of them inverts the symptom: where a leaked binding produces a false *accept*, a leaked window produces a false *refusal*. - ~in_frames~. ~check_frames~ sets it, threads the expectation into the body's last form, and clears it on the way out. A trial abandoned inside that window leaves the flag stuck, so : (println (+ i32-x (handler-bind [] i64-y))) : (return 0) — which compiled before this lane and compiles again now — was refused with "return is not allowed inside handler-bind yet", pointing at a line with no ~handler-bind~ within sight of it. A valid program refused for a reason that is not in the program. - ~loops~, the same window via ~loop~: a leaked ~Lrecur~ made an invalid ~break~ answer "the nearest loop is a (loop ...), which answers with the value of its body" instead of "break is only allowed inside a loop". No bad accept, a thoroughly misleading refusal. - ~defer_block~, message text only, and leaked with ~loops~. *So the subset was replaced by the whole record.* ~trial~ now restores every mutable field of ~ctx~ — the three above, the six from round two, and ~defer_ok~, ~tail~ and ~outer_what~, which would self-heal on their own and are restored anyway, because "this one cannot currently leak" is precisely the reasoning that produced two rounds of leaks. The destructuring is closed and carries ~[@warning "+9"]~, so adding a field to ~ctx~ stops ~trial~ compiling until somebody decides about it. *Verified that the guard guards*: removing one field from the pattern by hand fails the build, naming the field. One thing is deliberately not restored, and it is on ~env~ rather than ~ctx~: an abandoned trial that lifted a function out of an ~fn~ literal leaves it in ~env.lifted~. That is dead and harmless — the names are ~fn//N~ handed out by count, so the live pass gets fresh ones and nothing refers to the orphan — and it rides into the module as a function nobody calls. Left because ~env~ is the program's table rather than this form's, and rewinding it would mean deciding what else on ~env~ a trial may have touched. [Corrected by the milestone-5 lane, below: the generic instantiation cache does not rewind itself either, and does not need to. ~instantiate~ rewinds a copy whose *body* refused, which is a different event from a copy the caller abandoned. The abandoned one is harmless because the trial and the live pass cannot disagree about which copy to make.] All five symptoms pinned — the two accepts, the shadow, the unknown name, and the loop diagnostic. *2. The trial reconsidered literals.* Written up under the join rule above. The short version: ~(+ u8-thing 300)~ compiled, at i32, answering 555. The decision was literals-unchanged and now the code says so, by kind rather than by hope. *3. Three globals collided with the prelude.* The dogfood batch added ~u8-max~, ~u16-max~ and ~u32-max~ as prelude ~defconst~s while this lane was open, and the acceptance program had defined its own. The textual merge was clean and all three acceptance rows died on "defined twice" in the merged tree, which is precisely the failure a per-lane ~dune test~ cannot see. Every global and function in test/programs/widening.flan now carries a ~w-~ prefix, and the rows were re-run in a trial-merged tree rather than only on the lane. ** Collisions with the lanes that landed underneath Three, each read by hand rather than trusted to the auto-merge: - *The diagnostics lane* kinded ~expect~'s mismatch as ~check/type-mismatch~ so a call-argument site can recognise it. Its wording and its mechanism win; ~numeric_note~ rides on the same message, because a reader who has just been told i64 and i32 are different types needs telling in the same breath which direction needed nothing. - *The struct lane* added ~check_bare~ and ~positional_struct~. No overlap: it calls ~expect~, this lane added an arm inside it. The intersection — a struct literal whose field initialisers widen — was compiled and run on both backends by hand. - *The int/float alias lane* pinned ~(+ int-var i64-var)~ as a type error, with a comment saying the pin was written as identity so it would survive whatever the widening table grew into. It was not written that way — it pinned a refusal and a message — and it is the one refusal pin in the suite this lane makes legal. Rewritten to pin identity for real: the mixed form is accepted at i64 under ~int~ exactly as under ~i32~, and the narrowing back into ~int~ is still refused, naming ~i32~ because that is what ~int~ erases to. ** Stale claims elsewhere, and one left alone ~runtime/flan_dyn.c~'s ~flan_dyn_need_f64~ note and ~runtime/flan_dyn_stub.c~'s arithmetic note both said the typed language has no implicit widening at all. Rewritten, and the rewrite is not a hedge: the typed language *does* widen an integer into a float now, but only the exact ones, and the dyn box carries integers at i64 — the one width that reaches no float on the lattice. So both boundaries refuse exactly what they refused, for a reason that is now stated correctly. ~web/index.html~ (two places) makes the same stale claim. *Left alone deliberately*: the website has its own rewrite lane, and a marketing page is not the place for this lane to be making edits it cannot test. Flagged here so that lane picks it up. * (agent/start) lost its argument, 2026-09-20 Four notes from the lane that made the socket path optional and bound it before main. Three of them are about ground this lane deliberately did not take; the fourth is a line the author can delete at leisure. ** sand.flan can drop its socket path =(agent/start "/tmp/flan-sand.sock")= at sand.flan:125 still works and always will — the explicit form is not going anywhere. But the path was only ever a value nothing read under =flan dev=, because the daemon overrides it through FLAN_AGENT_SOCKET, and the zero-argument =(agent/start)= now does the right thing in both places: the daemon's socket when there is one, and an announced =/tmp/flan-agent--.sock= when there is not. Changing that line is a one-word edit whenever the author feels like it; this lane does not touch sand.flan. With the constructor below, sand.flan could delete the call outright — it calls =(agent/poll)= in its frame loop, which is the condition. That is a bigger claim than a shortened line and is worth making deliberately. ** Auto-start reaches as far as the linker does, and no further =vendor/agent/flan_agent.c='s =auto_start= constructor binds FLAN_AGENT_SOCKET before main, so a program under =flan dev= needs no =(agent/start)= at all. What it cannot do is reach a program that never mentions the agent: =Reach= prunes a package nothing calls into, so an executable with no =(import agent ...)= — or one that imports it and calls nothing — does not link the file the constructor is in. There is nothing to run. So the true scope is: *a program that calls =(agent/poll)= or =(agent/wait)= and has dropped its start call*. That is the ceremony the feature was asked to remove, and it is removed. Full invisibility — a dev build that links the agent because it is a dev build, whether or not the source says so — needs the package force-linked from Load/Build, which are files this lane did not own and a decision about what =--dev= means rather than about the agent. The constructor is also not =--dev=-only, because nothing in =vendor/agent/flan_agent.c= can tell the two builds apart: the dev runtime is linked either way and there is no weak symbol to ask. A *release* binary that links the agent and is run with FLAN_AGENT_SOCKET set in its environment therefore binds a listener it would not have bound before. Only =flan dev= sets that variable and it never runs release builds, so this is a sentence about the shape of the gate rather than an observed problem — but it is the one behavioural difference outside the dev loop and it should be said. The way it would be felt is theft rather than noise, and that is worth spelling out: =start_on= unlinks the path before binding it, because a stale socket from a previous run is the ordinary case. So if FLAN_AGENT_SOCKET ever leaks into a shell's exported environment — a person exporting it by hand to drive a program with =nc=, a terminal opened from a daemon's child — every agent-linked program started from that shell takes the path away from whoever bound it first. The earlier program keeps an fd on a socket with no name and goes silently unreachable: the daemon that was talking to it now reaches the newcomer. Before this lane the unlink was reached only by an explicit =(agent/start ...)=, which is a line somebody wrote; now any agent-linked program run in that environment does it before main. The gate is the same variable either way, so the fix, if this is ever felt, is a narrower gate rather than a narrower unlink. ** The daemon's "has not called (agent/start ...)" note is now unreachable =install_note= (lib/dev.ml:789) and the =describe= branch at lib/dev.ml:1085 say, of a RUNNING program whose socket is not bound, that a redefinition installs at its next =(agent/poll)= and not at all if there is none. For a program that links the agent that cannot happen any more: the constructor binds before main, so by the time any editor can ask, =agent_bound= is true. It was true of exactly one thing, and the constructor is what removed it: a merged session whose program *links* the agent, where the ring is reachable in-process from the first instant while the socket is not bound until =(agent/start ...)= runs. Bound before main, that window is gone. Going through the other three shapes leaves nothing: - *merged, program links the agent* — the socket is bound before main, so =agent_bound= is true by the time any editor can ask. This is the window above, closed. - *merged, program does not link the agent* — there is no =flan_agent_request= in the process and no socket either, so the delivery is refused with "cannot reach the program on ..." and never reaches =install_note= at all. Pinned as of this lane by =programs/dev-noagent-running.flan= and its row in test_dev.ml, which also holds that the session survives the refusal. - *two-process* — =two_process= kills the child and =failwith=s when the socket never appears, so a program with no agent has no session to be sent anything. So the branch at lib/dev.ml:789 and the =describe= arm at lib/dev.ml:1085 are unreachable, not merely unexercised. Retiring them is the author's call over a lane that merged days ago, not this one's — they are left in place, saying a true thing about a state nothing can now be in. Two rows nearby are about different sites and should not be mistaken for cover: the =dev-noagent.flan= row asserts the *daemon's own stderr warning*, said by the accept loop once the ten-second deadline is behind it, and the late-agent row asserts the note's *absence*. ** The agent socket under the daemon is still the temp directory's problem =start_on= now stashes the path it bound and unlinks it three ways: an atexit for an ordinary exit, and by hand in =die_now= and =orphan_die=, which both leave by =_exit= and skip the atexit chain deliberately. That covers a program run on its own, a program aborted out of the break loop, and an orphan whose daemon died. It does not cover an ordinary =flan dev= session ending, and cannot: the two-process daemon kills its child with SIGTERM and the merged session leaves by =Unix._exit 0=, neither of which runs an atexit. The socket sits in =/tmp/flan-dev-/= and goes when that directory goes — which is the item above, "The daemon leaves its temp directory behind", still open. No separate fix is wanted here; the session-end cleanup that item asks for takes the socket with it. * builtin/, the reserved qualifier, 2026-09-20 The author's decision, in the author's words: #+begin_quote "the full spelling is fine, I like that." #+end_quote This closes the dead end disclosed the same day by "Shadowing a builtin, 2026-09-20": a defn named after a builtin wins program-wide inside its own file, and before this there was no remaining spelling for the thing it had taken over, so a definition that meant to *wrap* a builtin was unbounded recursion with no diagnostic. ~builtin/len~ is the builtin ~len~, whatever else the file has decided ~len~ means, and it is legal whether or not anything is shadowed — a spelling that only compiled while some other declaration existed would be one nobody could write down in advance. ** The resolver Two interceptions, both at the very top of the dispatch they sit in, and each strips the prefix and re-enters the same function with one flag set: : | _ when not qualified && qualified_builtin name <> None -> : let bare = Option.get (qualified_builtin name) in : if not (Hashtbl.mem builtin_set bare) then not_a_builtin loc bare; : named_call ~qualified:true ctx ~want loc bare args ~named_call~ gains ~?(qualified = false)~ and the shadowing guard beneath it becomes ~not qualified && shadows_builtin ...~. That flag is the whole of the mechanism: a qualified call has already said which of the two readings it means, so there is nothing left for shadowing to decide, and every arm below sees the *bare* name — which is why ~(builtin/len 1 2)~ is refused with exactly the sentence ~(len 1 2)~ would get. It cannot loop: ~builtin/builtin/len~ strips once and is then refused by name, because ~builtin/len~ is not in ~builtin_set~. ~var~ gains the same arm, for the builtins that are names rather than calls — ~true~, ~false~, ~nil~, ~None~, ~context/allocator~, ~context/temp~. The last two fall out for free: stripping one prefix off ~builtin/context/allocator~ leaves a name the match already has an arm for. *The one asymmetry, and it is load-bearing.* ~var~'s qualified path must refuse where the call path falls through. A qualified name that gets past the value arms is in ~builtin_set~ but is call-only, and letting it fall into ~lookup~/~globals~/~fns~ would answer ~builtin/len~ with the address of the very definition the qualifier was written to escape — the feature inverted, silently. So a guarded ~| _ when qualified ->~ arm sits above the catch-all: : builtin/len is the builtin len, which is a call and not a value — a builtin : has no address to pass. Write (builtin/len ...) at the call, or wrap it in a : defn to pass that ** Why ~/~ and not ~(builtin get)~ The spelling is the package qualifier's, deliberately. A reader who knows that ~rl/draw-fps~ is ~draw-fps~ from the package imported as ~rl~ already knows what ~builtin/len~ is and needs no second syntax. What makes it unambiguous is that ~builtin~ is *reserved* rather than resolved: every qualifier in a finished program comes from ~Load.qualify~, and every ~qualify~ takes its alias from an ~import~ form, so refusing that one alias is the whole of the reservation — there is no other door. The refusal is at the top of ~Load.import~, before the package is read, which also covers a package importing one under that alias since every import goes through that function: : builtin is a reserved qualifier and cannot be an import alias: builtin/name : always means the compiler's builtin, which is how a program reaches a : builtin it has shadowed. Import this package under another alias *It is the alias and not the directory.* The task that asked for this said "a package directory named ~builtin~ must be refused at import", and the code says something slightly narrower, because the alias is always written out — ~(import rl "vendor:raylib")~, ~parse.ml~'s two-element form — and a directory never becomes a qualifier on its own. A package whose directory is called ~builtin~ imports fine under any other name and collides with nothing; ~(import builtin "anything")~ is what is refused. The directory is not named in the message either: it has been resolved to an absolute path by then, and the caret is already under the import form, which carries the path the reader wrote. *And from the other side.* ~(defn builtin/len ...)~ reads — ~/~ is an ordinary symbol character — and would land in ~env.fns~ under a name nothing could ever call, since the prefix is stripped before any table is consulted. ~Check.collect~ refuses any declaration whose name carries the prefix, over ~Ast.declared_name~ so it covers every declaration kind at once: : builtin/len cannot be declared: builtin/ is a reserved qualifier, so a name : spelled with it reaches the compiler's builtins and never a declaration — : nothing could call this one ** The reader, and ~builtin/+~ No exception was needed. ~reader.ml~'s ~is_delimiter~ makes ~/~ ordinary and says so in its own comment (~rl/draw-fps~ is one symbol), and the operator characters are ordinary for the same reason ~+~ is a symbol at all. The one path that could have taken ~builtin/+~ apart is the number reader, which takes a token starting with a digit or with ~-~/~+~ followed by a digit, and ~builtin/+~ starts with ~b~. So it arrives as one symbol and there is nothing to document as unreadable. ~(builtin/+ 1 2)~ is 3 in a file whose ~+~ answers 99, and it lowers to the ~Add~ prim rather than to a ~Call~. ** The refusals for a qualifier that reaches nothing Its own kind, ~check/unknown-builtin~, and the did-you-mean is over ~builtin_names~ *alone* — not over the program's own names. The reader wrote the qualifier, so they were reaching for a compiler name, and offering them a defn called ~lem~ would answer a question they did not ask. Every other did-you-mean in ~check.ml~ keeps the candidates it already had, and the dot-access diagnostic is untouched: nothing anywhere suggests a ~builtin/~ spelling for a name that was written bare. : nosuch is not a builtin, so builtin/nosuch reaches nothing. The builtin/ : qualifier reaches the compiler's own names and nothing else; an ordinary : function is called by the name it was defined under : lne is not a builtin, so builtin/lne reaches nothing — did you mean : builtin/len? : builtin/ needs a name after it — the qualifier reaches a builtin, as : (builtin/len v) ** The warning now names the escape : shadow-builtin.flan:20:7: warning: get shadows the builtin get — every call in this program now reaches your definition — the builtin stays reachable as builtin/get One sentence still, and the second half is the half the reader wants next: they are being told the name was taken over, and what is left is the thing they are about to go looking for. ** The arm-scraper, which nearly broke twice ~test_flan.ml~ reads ~check.ml~'s source to cross-check the builtin arms against ~Check.builtins~, keying the two regions on the literal prefixes ~"and named_call "~ and ~"and var ctx "~. So the optional argument had to go *after* ~ctx~ in ~var~ — ~and var ctx ?(qualified = false) loc ~want name~ — and a leading one would have emptied that region and reported ~true~, ~false~, ~nil~, ~None~ and the two ~context/~ names as deleted arms. Both new arms are guarded and carry no string literal in the head, so the scraper skips them exactly as it skips the shadowing guard; nothing in that test changed. ** Pins - ~test_flan.ml~: ~builtin/len~ checks with nothing shadowed; with a two-parameter ~len~ in the way, the bare call at two arguments checks and the qualified one is refused at *the builtin's* arity ("len takes 1 argument, given 2") — the pair is refusable only under one reading each, so it cannot pass under both. - ~test_flan.ml~: the self-referential wrapper ~(defn len [s string] i32 (builtin/+ 1 (builtin/len s)))~ checks and its body holds no ~Call ("len", _)~ anywhere, walked with ~Tast.walk~ — the difference between a wrapper and a loop, asserted rather than assumed. - ~test_flan.ml~: ~builtin/+~ with ~+~ shadowed lowers to ~Prim (Add, _)~; ~builtin/nil~ and ~builtin/context/allocator~ check; ~builtin/len~ in a value position is refused with the call-and-not-a-value sentence. - ~test_flan.ml~: ~check/unknown-builtin~ as a kind, both of its messages whole (with and without the near miss), and the declaration refusal; plus that a *bare* typo is still answered bare ("did you mean len?") and never with a qualifier. - ~test_flan.ml~, changed: the two shadow-warning messages, matched whole, now carry the escape clause. - ~test_acceptance.ml~: ~programs/builtin-qualified.flan~ outputs ~9\n5\n4\n99\n3\n~ — builtin/max unshadowed, the wrapper's 5, builtin/len's 4 beside it, the shadowed operator's 99, builtin/+'s 3. It is an ordinary corpus row, so the ~@x86~ sweep compares both backends over it. - ~test_acceptance.ml~: ~programs/import-builtin-alias.flan~ is refused, by the alias sentence and by the clause saying what the qualifier is for. ** What was run ~dune test~ in the lane's worktree, green. Per the batching policy the ~@x86~ and ~@sanitize~ sweeps were not run here — the new corpus row is registered for the x86 survey through the existing ~programs/*.flan~ glob and will be compared on the next sweep. * Milestone 5, and the sweep behind it, 2026-09-20 ** What was already there Almost all of it, and the first finding of this lane is that finding. docs/SPIKE-GENERICS.md carries a banner saying so — "it stopped being current when generics landed for real, on 2026-09-13" — and the code agrees: ~$t~ binds and bare ~t~ reads; ~collect~ puts a generic signature in ~gsigs~ and keeps it out of ~env.fns~; ~generic_call~ binds left to right, substituting each binding into the parameters still to come; ~instantiate~ caches by ~Types.equal~ on the concrete parameter list; the body is checked once abstractly so a refusal lands at the definition; ~{:where~ carries four predicates with an entailment table; ~runaway~ caps the depth; a copy is an ordinary ~Tast.fn~ with a cell, so both backends were untouched then and are untouched now; and ~Check.instantiations~ expands a redefined generic's name for ~Session.eval~, which test_session pins at four shapes including a copy the running process was never built with. So this lane is not "start M5". It is the four things M5 did not reach, and the sweep the author asked for. ** 1. A written zero may stand where a numeric type variable stands The one thing the landed generics could not express was the family the whole feature was asked for: #+begin_src lisp (defn pos? [x $t] bool {:where (numeric? $t)} (> x 0)) #+end_src ~(> x 0)~ was refused with "expected t, found the integer literal 0", because ~int_literal~ had no arm for a want that is a type variable. It has one now, and *the bound is what makes it sound rather than optimistic*: every type ~numeric?~ admits is an integer or a float, and an untyped integer constant is usable at all of them, so there is no instantiation of a ~numeric?~ variable at which the literal has no meaning. Under anything weaker there is — ~ordered?~ admits an enum, which holds no number — so ~numeric?~ is what is asked for and the refusal names it. *The float literal is refused at a type variable even under ~numeric?~*, and that asymmetry is the concrete arms' own rather than a new rule: an integer constant is usable where a float is wanted, and a float literal is never usable where an integer is wanted. ~numeric?~ covers both halves of the numbers, so a body written with ~0.5~ has no meaning at the integer half of its own bound, and refusing at the definition is what the abstract pass is for. Nothing built here is emitted. The abstract pass builds a placeholder at i64 and throws it away with the rest of the body; each copy re-checks the same form with the variable substituted, and that is where the literal is built at the concrete width and range-checked — so ~(+ x 300)~ is fine at i32 and a refusal at u8, and u8 is where it is refused. ** 2. Generics and implicit widening *Decided: implicit widening does not cross a generic binding.* Widening landed days after generics did, and the rule the two of them left between them read off the order the arguments were written in: #+begin_src lisp (defn eq2? [a $t b $t] bool {:where (equal? $t)} (= a b)) (eq2? (i8 3) (i64 3)) ; refused — i64 into i8 can lose (eq2? (i64 3) (i8 3)) ; accepted — $t was i64 already, the i8 widened in #+end_src Same two values, same function, one copy at i8 refused and one copy at i64 generated. Neither answer is unsound — a widen cannot change a number — so this is not a bug report; it is a decision nobody had taken, because the two features had never been in the tree at the same time. Taken: a concrete argument at a variable an earlier argument already bound has to be that type. Both orders refuse now, with one sentence naming the binding, the argument and the cast to write. *Why refuse rather than join.* Letting the pair meet at the wider type is the other coherent rule, and it is the better one if the ergonomics ask for it. It can be added later without invalidating a single program written under this rule. The reverse is not true. Refusing is the direction that can be walked back, and with two features that had never met, that is the direction to be wrong in. The rule costs almost nothing, because ~Types.widens_to~ admits only numeric scalars: a variable bound inside ~[$t]~ or ~(Fn [$t $t] bool)~ leaves a parameter no widening ever applied to, so ~sort-by~ and the whole fn-literal path are untouched by construction. Two exceptions keep the ergonomics — an untyped literal has no type of its own to keep, so it still takes the variable's; and a form with no type without a want (~(zeroed)~) is asked for its natural type through a ~trial~ and falls back to the want when that refuses. *** And the composition with the trial machinery, which is the reason to care A binary operator whose operands disagree re-checks the right one at the left one's type inside a ~trial~, so a generic call written there is checked twice, once in a pass that is thrown away. An instantiation made during the discarded pass does *not* go back out: ~instantiate~ rewinds a copy whose body refused, which is a different event. It does not have to, and the reason is this lane's own rule rather than luck. *A generic call's instantiation is read off its arguments and never off the ambient want* — an unbound variable is checked with no expectation at all, and a bound one no longer widens — so the trial and the live pass ask ~instantiate~ for the same types, the second ask is a cache hit on the first, and exactly one copy exists either way. Pinned by counting copies in the checked program, not by reading the comment. The widening lane's own note said the instantiation cache "already rewinds itself"; it does not, and the entry above has been corrected in place. ** 3. A type variable is not instantiated at dyn *Decided: refused, at the binding.* Nothing stopped it before, because ~dyn~ is an ordinary case of ~Types.t~ and substituted like any other type. The copy was then made and walked into the dyn answers that are not all there, and the refusal arrived from inside the generic's own source: ~(or-else (Some d) e)~ over two dyns was reported against ~:385~, about a descriptor the collector cannot build for ~(Option dyn)~ — a line the caller did not write and cannot act on. Every such case is this refusal arriving late and in the wrong place. The message does not only say no. Two models answer "one body, many types" here and they are not rivals: this one copies per written type at compile time, ~defgeneric~/~defmethod~ dispatch at run time on a value that carries its own. A dyn argument is asking the second question of the first machinery, so the sentence names the other spelling. Only the unbounded half is new — a variable carrying a ~{:where}~ clause was already refused by ~pred_holds~, and that refusal is left in front of this one deliberately, because it names the predicate the signature wrote down. *Open, and the author's:* whether dyn should eventually flow through a generic at all. Refusing now is the walk-backable direction for the same reason as the widening decision. ** 4. Three messages about milestone 5, from a milestone that arrived Swept, and they were not all the same kind of stale. - ~check.ml~'s unknown-lowercase-type arm reported "generic code over the type variable X is not implemented yet — milestone 5 work". Generics are implemented, and ~resolve_name~ consults ~env.tyvars~ and ~env.subst~ long before anything reaches that arm, so a lowercase name arriving there is a typo too far from any type to guess at, or a type variable nobody introduced. It names the sigil that would introduce it. - The type resolver's "X takes no type arguments — generics are milestone 5" and the value-position fork's "a type given type arguments is generic code, which is milestone 5" are about the *other* half, which is genuinely unbuilt: ~Types.Named~ is a bare string with no room for parameters, and giving it some is a change to ~Types.t~ and therefore to the layout calculator, both backends, ~Render~ and DWARF. Both now say a generic *type* is not there yet and point at the generic function that is. Nothing was built for them. Three test needles moved with them. ** 5. The prelude sweep — what collapsed, what did not *Added:* ~pos?~, ~neg?~, ~zero?~. Three questions about a number's sign, one body each, answering at i8 through u64 and at both float widths. They were never written before because without a type variable they are three functions per width; they are writable now because of item 1 above and not because of the type variable alone. *Declined, with the real reason written where the old one was:* - ~abs-i32~/~abs-i64~ stay two functions. The comment's old reason — "there are no generics over the numeric types" — is false now, and the generic body checks and runs at every integer width. What stops it is the float half of its own bound: ~numeric?~ is the only predicate that admits a written ~0~ and it admits f32/f64 too, and ~(if (< x 0) (- 0 x) x)~ is the wrong abs for a float — it hands back a negative zero. The float pair is libm's ~fabs~ for exactly that reason. *The collapse waits on a bound that spells "an integer type".* - ~min~/~max~ stay builtins. Not a type-system limit: they are variadic, and each step slots both of its sides so every operand is evaluated exactly once. A binary prelude generic would have to be nested at the call site, which puts the double evaluation back. Their generic half was never missing — ~ordered?~ already admits them in any body that declares it. *** An ~integer?~ predicate — recorded, not built It would collapse ~abs~, and it would let ~%~, the bitwise operators and the shifts be written over a variable. It is four lines in ~pred_holds~, ~predicate_names~ and ~pred_entails~ (declared ~integer?~ gives ~numeric?~, ~ordered?~ and ~equal?~). It is not built here because adding a predicate is language surface — the vocabulary a programmer writes — and that is the author's call, not a lane's. ** What this lane did not build, deliberately - *Generic types.* ~(defstruct Pair [a $t b $t])~ cannot be spelled, and the price is in the spike: ~Types.t~ and every backend. Out of scope, and the two messages above now say so accurately. - *"In instantiation of" notes.* A refusal inside a copy points at the generic's source with no note saying which call site asked for that type. ~Check.instantiation_origin~ exists and ~session.ml~ already uses it for compatibility reports, so the data is there; wiring it into every ~fail~ under an instantiation is the spike's "bulky, not hard" bucket and is a lane of its own. Two of the three places it mattered most are closed by items 2 and 3 above, which move those refusals to the call site outright. - *~$n~ in length position.* Same price as generic types, smaller prize. ** Pins added Cross-package generics (~programs/pkg-generic.flan~ and a new ~pkgs/gen~ package — one generic at two element types, one calling another in its own package at its own variable so the transitive copy is generated from a call site two files away, and a local generic calling across the boundary at its own ~$t~), both backends and -O0; the package bound refused at the call with the clause quoted; the literal family at six numeric types in the generics corpus row; the prelude's three under their real names including ~zero?~ at ~-0.0~; both widening orders refusing; the written conversion and the untyped literal still accepted; the fn-literal path unaffected; ~(zeroed)~ still getting its want; ~$t~ at dyn and at ~(Option dyn)~; a bounded variable still refused by its bound; the abandoned-trial copy count; and the three reworded messages. Dev-loop reload needed nothing: test_session already pins ~C-c C-c~ on a generic installing its copies, the callee side, the absence of a stale cache across two evaluations, and a redefinition that needs a copy the process was never built with. ** One stale claim flagged, not touched plan.org's Types section still lists *five* predicates and describes ~copyable?~ and "a type variable is move-only by default" at length. spec-memory.md's Generics section already records that ~copyable?~ went with the second repeal, and ~predicate_names~ in check.ml has four. plan.org is the one that is behind. Left alone deliberately: it is the ownership-repeal lane's sentence to retire, not this one's, and it is flagged here so that lane picks it up. spec-memory.md's Generics section gained the three rules this lane decided — the literal under ~numeric?~, the widening boundary, and dyn — because the spike banner names that section and plan.org's Types as the current account, and all three are observable from a program. * The Emacs buffer story, consolidated, 2026-09-20 The decision: two streams, one tool list, and the rest untouched. - Two streams. ~*flan*~ (renamed from ~*flan-dev*~) is the daemon's log — compilation-minor-mode, jump-to-error, and now a mirror of the program's println output, so output lands somewhere before any REPL interaction has happened. ~*flan-repl*~ is the working stream: eval results, the program's output inserted above the prompt (output first, then the value), and a one-line summary when a compile fails — "1 error — see ~*flan-diagnostics*~". - One tool list. ~*flan-diagnostics*~ holds everything the compiler reports: the errors as today, popped up (shown, not selected) when one lands, and below them the memory-allocation sites ~flan-check-memory~ asks the ~(:op "memory")~ op for — one section, replaced whole on every ask, each line in its kind's faint face (memory/gc, memory/native). The buffer got a major mode: read-only, ~n~/~p~/~RET~ throughout both sections. - ~*flan-output*~ is removed entirely, its ~C-c C-o~ with it. The key now clears the REPL's last send; ~C-c M-o~ clears the transcript whole (CIDER's pair), both bound in flan-mode and flan-repl-mode. - Inspector and break/conditions buffers unchanged. No daemon changes: the program's output already rides every reply's ~:output~, so both destinations are editor-side routing in ~flan--append-output~. A REPL rejection is distinguished from a connection failure (~:client~ on the synthetic reply); only the compiler's messages reach the diagnostics list. ** What was run ~dune test --root .~ green, test_emacs and test_cider included; the three changed .el files byte-compile clean with warnings as errors. New checks in test-flan.el: output reaches the daemon buffer with no REPL open, output lands above the value at the REPL and is mirrored, the rejection summary and its full message in the diagnostics list, both clears, and the two-section layout (errors above, memory below, replace-whole, clear takes both). * (array-fill [n ...] v) and (array-gen [n ...] f), 2026-09-20 DISCUSS.org asked for a value-producing array constructor: =(array n T)= is the zeroed array and =dotimes= is Unit, so "an array of these" had no spelling that could stand where an expression must — a defvar's initialiser being the line the note was written about. These two are that expression, at any rank. The dimensions sit in brackets and are the same compile-time lengths the =[n T]= type spelling takes — an integer literal or a defconst's name, one rule in one place (=array_len=) — with one extra condition the type spelling does not need: a dimension has to fit an i32, because every index in the language is an i32 and so is the loop that writes the elements. The generator is a function value called once per element with one i32 index per dimension, first dimension's index first, and its return type is the element type. Row-major order is pinned as a promise, and the fill value and the generator *value* are each evaluated once, before any loop runs — =(array-fill [n] (next-id))= is one call and n copies of its answer. The lowering is want-driven and reaches no backend: bind a slot, =Zero= it, one =While= per dimension writing each element through =Set= of a =Pindex=, answer the slot. Those are nodes both backends already had, so LLVM, x86 and the js one all get the form with no edit. The annotation's element type is threaded down as the want, so a fill value that disagrees with =[rows [cols u8]]= is reported at the value in expected/found words, not as a whole-array mismatch. Composition is the ordinary kind: =(array-fill [2] (array-fill [3] 7))= is an array whose fill value is an array, and it works because the inner form is just an expression in the value slot. What does *not* exist is a nested bracket syntax — =[2 [3]]= as a dimension list means nothing; ranks are spelled flat, =(array-fill [2 3] 7)=. ** The inline fn, and the want it was owed =(array-gen [3 4] (fn [i j] ...))= — the canonical form — was refused at first: an fn takes its types from its position, this position carried no =(Fn ...)= want, and =check_fn= answered "nothing here says what this fn's parameters are". But the form *does* say: one i32 per dimension is the rank's own promise. =check_array_gen= now hands an inline fn its parameter types directly, with the annotated element type as the return want where the annotation reaches that deep, and with the return left to the body where it does not — so a bare =(array-gen [3] (fn [i] (* i i)))= infers =[3 i32]= the same way a fill value infers its element. A body that disagrees with an annotated element type is reported at the generator's answer — expected u8, found f64, caret on the offending expression — per element, not per array. Named defn generators check exactly as before, arity and index types in array-gen's own words. * integer?, the collapsed abs, and the join, 2026-09-20 The author's brief, verbatim in spirit: we want generic arithmetic as much as possible; we are failing if a function that can be generalized needs variants for different numerical types. ** integer?, the fifth predicate ~numeric?~ was one type too wide for a family of bodies. It is the only bound that admits a written 0, and it admits f32 and f64 too — so an integer body under it was instantiated at the floats, where ~(if (< x 0) (- 0 x) x)~ is the wrong abs (a -0.0 comes back negative) and the bitwise operators, the shifts and an integer-only ~%~ mean nothing at all. ~integer?~ admits every integer kind, signed and unsigned, at every width, and refuses floats and everything else: ~Types.is_integer~, wired into ~predicate_names~, ~pred_holds~ and the entailment table. The entailments run one way. ~integer?~ entails ~numeric?~ — every integer is a number, so the arithmetic, the written 0 and the untyped integer literal all come with the one clause, through the same ~int_literal~ arm ~numeric?~ uses — and through it ~ordered?~ and ~equal?~. The reverse does not exist, because it would let floats into ~bit-and~. What it unlocked in the checker: the bitwise fold asks ~unconstrained~ for ~integer?~ now instead of ~numeric?~ (so ~(bit-and x 1)~ in a ~numeric?~ body is refused at the *definition*, not from inside the generic's source at whichever call site first instantiated at a float), and the shifts admit an ~integer?~-bounded variable where they refused every variable before. The float literal in an ~integer?~-bounded body gets the bound's own sentence: there is no instantiation at which it means anything. ~%~ stays ~numeric?~ deliberately — a typed float ~(% x y)~ is fmod and always was (test/programs/math3.flan pins the four sign cases), and tightening it would be a semantics change this predicate does not ask for. ** abs, collapsed ~abs-i32~ and ~abs-i64~ existed per width only because ~numeric?~ admitted floats. They are one ~(defn abs [x $t] $t {:where (integer? $t)} ...)~ now, answering at all six-and-more integer widths; the copies at i32 and i64 even keep the old symbols, since an instantiation mangles to ~abs-i32~ and ~abs-i64~. The decision between "integer? plus the float overloads" and "one numeric? generic with a float-safe body": there is no float-safe body to write. ~(max x (- 0 x))~ picks whichever zero sits in the wrong slot because -0.0 and 0.0 compare equal, and the branch spelling hands -0.0 back unchanged. The right float abs is a sign-bit clear, which is libm's fabs and is already declared — ~abs-f32~/~abs-f64~ stay as the float spellings, and ~(abs 1.5)~ is refused naming the bound. For that refusal to be the one a float caller sees, ~instantiate~ now checks the ~where~ clause *before* the name-collision check; before the reorder, ~(abs 1.5)~ computed the sym ~abs-f64~ and died on "already defined — rename one of them", which is the wrong sentence with no fix in it. Behaviour pinned identical: both signed minimums answer themselves (the negation wraps, as every two's-complement abs), unsigned is the identity, ~(abs-f64 -0.0)~ is 0. test/programs/int-generic.flan, plus the math3 rows. ** The survey — what else numeric?-admits-floats was keeping per-width The prelude's remaining per-width families, each left with its reason: - ~sum-i32~/~sum-f32~ — the accumulator is a *different, wider* type than the element ("the type $t accumulates into" is a type-level function no predicate spells); their own comment already says so. - ~append-i64~/~append-f64~ — two different runtime primitives. - ~parse-i64~/~parse-f64~ — the variable would appear only in the return type, which no argument determines and no syntax names. - ~rand-i32-range~/~rand-f32-range~ — two different algorithms (Lemire rejection vs. scale), not one body twice. - ~sign-f32~ — its integer twin would write -1, which has no meaning at the unsigned half of ~integer?~; a bound spelling "signed" does not exist and is not asked for. - ~min~/~max~ — builtins by decision (variadic, evaluate-once), untouched. - The libm pairs — declares, one C symbol each; nothing to collapse. So the survey's whole yield is abs, plus the *checker* generalizations above that let user code write generic bit/shift/mod helpers it could not write at all before (int-generic.flan's ~low-bits~, ~even?~, ~toggle~, ~halve~). ** The join, superseding "widening does not cross a generic binding" The 2026-09-20 milestone-5 entry above took refusal as the walk-backable direction and recorded the join as the coherent alternative. The author walked it back the same day: *just pick the wider type for both.* The old entry stands as written; this one supersedes it. The rule as landed: numeric scalars bound to one ~$t~ resolve it to whichever written type every one of them widens into — ~Types.join~, so value-preserving widening only, never an invented third type... except that an upper bound *in the set* found through a later argument is exactly that: ~(tri u32 i32 i64)~ has no join at the second argument and a perfectly good one at the third, so a joinless pair is deferred and re-asked against the final binding rather than refused on the spot. That is what makes acceptance order-independent, which is pinned two ways: both orders accept, and both orders of the whole program instantiate exactly one copy, at the wider type (the pin counts ~eq2?-i64~ in the checked program's functions). Still refused, each in its own words: a pair with no join anywhere (u64 against i64 — no type holds every value of both), and a variable the signature also reaches through a container or function type (~index-of~'s slice binds its element exactly; elements cannot be rewritten wider). The arguments the final binding out-widened catch up through the same ~Cast~ node the written conversion builds, so the emitted copy never sees the narrow type. Literals still decide as before — a bare literal at a bound ~$t~ takes the binding — and spec-memory.md's Generics section now carries the joined rule. ** Still refused, known, deferred A *compound constant expression* at a bounded ~$t~ — ~(+ x (+ 1 2))~ where ~(+ x 3)~ works — is still refused: the literal arm admits a bare constant at a type variable, and nothing folds the compound to a bare one before the ask. Walk-backable (admitting more programs later invalidates nothing written now), so it waits until a body actually wants it. * Enum keyword prefixes, 2026-09-20 ** The decision, author's words raylib's enum keywords carry a disambiguating prefix, because bare members collide across enums and with user code. Key members are ~:key-r~, ~:key-space~, ~:key-left-shift~; MouseButton members are ~:mouse-left~, ~:mouse-right~ and so on. ~mouse-~ over ~button-~ because gamepads have buttons too. Only Key and MouseButton are decided; the rest of the survey is below, awaiting a ruling per enum. ** The bindings directive extension The `enum` line in vendor/raylib/bindings grew an optional third column: the prefix the members carry on the Flan side, stripped before the C prefix is applied. `enum Key KEY_ key-` checks ~key-r~ against KEY_R rather than KEY_KEY_R; `enum MouseButton MOUSE_BUTTON_ mouse-` reaches MOUSE_BUTTON_LEFT from ~mouse-left~. A member that does not carry the declared prefix is reported, not checked under a guessed name — ~null~ beside a declared ~key-~ would otherwise build KEY_NULL, which the header happens to have, and the naming rule would erode silently. A name the rule builds that the header lacks is still reported, never skipped. `flan generate-c vendor/raylib` runs green against raylib-5.5.h with both lines in place. The checker also grew a did-you-mean for enum members: one edit away, and the bare name of a prefixed member — ~:r~ suggests ~:key-r~, ~:left~ suggests ~:mouse-left~ at a MouseButton site. ** Open, author's call — the survey of the other nine enums None are renamed; these are the collision-prone bare members found: - TraceLogLevel: nearly all generic — ~all~, ~trace~, ~debug~, ~info~, ~warning~, ~error~, ~fatal~, ~none~. ~none~ also collides with Gesture's. - Gesture: ~none~ (collides with TraceLogLevel's), ~tap~, ~hold~, ~drag~. - CameraMode: ~custom~, ~free~ (also the name of the language's free). - MouseCursor: ~default~, ~arrow~, ~crosshair~. - TextureFilter: ~point~. - GamepadButton: ~unknown~, ~middle~ (plus ~middle-left~/~middle-right~). - GamepadAxis: ~left-x~/~left-y~/~right-x~/~right-y~ read gamepad-ish already, but ~left-trigger~/~right-trigger~ sit one hyphen from GamepadButton's ~left-trigger-1~/~2~ — a prefix ruling should take the two enums together. - CameraProjection (~perspective~, ~orthographic~) and PixelFormat (~uncompressed-*~, ~compressed-*~) are effectively self-naming; low risk. ** Open, author's call — sand.flan sand.flan calls ~(rl/key-pressed? :r)~ and ~(rl/mouse-button-down? :left)~ (lines 161–166), and the default suite compiles it (test_session, and test/programs/sand-headless.flan imports it). The file is the author's live WIP and was not touched, so those two tests are red on this branch until the three keywords there become ~:key-r~ / ~:mouse-left~. * println is variadic, 2026-09-20 Author, dogfooding: "println should be variadic" — hit "println takes 1 argument, given 2". Semantics chosen: Clojure's. Every argument prints in order, a single space between each pair, println ends the line. (println) is the newline alone, (print) is nothing. Single-argument call sites are byte-identical to before — the space is a separator, never a trailer. Mechanics: no prelude macro. print/println were never functions — they are the checker's structural walk (lib/check.ml, the "print" | "println" arm; the walk in lib/render.ml) — so the arm itself went variadic: each argument is checked and rendered exactly as it was alone, with a one-byte " " write interleaved. Typed and dyn arguments mix in one call because each gets its own printer and both sinks share stdio's buffer (flan_write_stdout and flan_dyn_print both go through stdout). One generic argument still defers the whole call to instantiation. Diagnostics stay on the argument: each is checked carrying its own loc and render.ml fails on the expression's loc, so an unprintable second argument underlines that argument, not the form — pinned in test_flan.ml. Output pinned by test/programs/println-variadic.flan and its acceptance row (LLVM), spacing exact, "|" markers so a leaked trailing space is a visible red. * Break-loop display pass, 2026-09-20 Off a dogfooding session that hit BoundsError: "can I get a better error message? I don't see a precise line number anywhere, what is s1 and s3? the condition field messages are weird, the continue message is weird too, do a full pass and reword things." ** Built - Condition values render. The break loop stashes the condition pointer in the agent's snapshot (it used to discard it); [flan_agent_condition] hands it back on the stopped thread; a new daemon op =condition= builds a render thunk over the struct's fields — render_locals pointed at the condition — and delivers it at-stop, so resume-and-restop cannot read the old type over the new pointer. The buffer's headline now reads the fields inline: "BoundsError — low 648, high 648, length 100", nothing hardcoding any one condition. Works for user =error= conditions and for the trap-built ones, on both backends. - Precise location. The bounds/slice/arith trap sites publish their loc around the break-hook call ([flan_break_site] in flan_rt.c), the snapshot copies it, agent verb =site= serves it, and =break= answers =:site= plus the line's text as =:source=. The buffer draws "at file:line:col" under the headline with the source line and a caret at the column. - Compiler temps are hidden from the locals listing rather than refused as =s4=; a shadowing rebind strips its =~N= except when the outer binding is on the same list, where both keep their raw spelling ([Session.shown_names]). - Rewording. Every bracketed implementation note is gone from the buffer (they were implemented anyway); the refusal table is one short sentence per section; the abort line says what abort does ("end the program here; the dev session ends with it" — true: abort is _exit(134) and merged flan dev is that process). A shadowed restart is now *takeable*: the buffer sends =restart-at= with the index for every choice, name as receipt, so the shadowed line just says "same name as N; taken by its number". - A u8 shows its character where a person is inspecting: =97 (\a)= in a frame's locals, in inspect, and in a condition's fields. Ruled by the author: =[u8]= already renders as text, so a lone byte reading =97= was an asymmetry exactly where someone is reading rather than computing. =println= is untouched — a u8 is a number and that path is the program talking. The switch is =Render.pointers=, which already marks the inspecting side and which =println= passes as =None=, so the printing path cannot acquire this by accident. Spellings answer to lib/reader.ml's =read_byte= (the five named ones, and any single non-delimiter character), so what is shown could be typed back; a byte with no spelling shows the number alone rather than an invented escape or a raw control byte. The table is in flan_dev.c as one call: the value is only known at run time, and a chain over ninety-odd comparisons per rendered byte would have been the walk paying for its own shape. Pinned on both backends with a printable, a named and an unprintable byte, and =println (u8 97)= pinned bare in the acceptance table — the existing 255 could not tell the two apart. ** Deferred, ready to build - Restart locations. The =%restart= frame is mirrored across emit.ml, x86.ml and flan_rt.c (fields 0-9 today), so giving =continue= a file:line:col means: two fields (loc ptr + i64 len, the module's own string, like the shadow frame's), stores emitted at emit_restart_case in both backends, a [flan_restart_loc] accessor, the agent snapshot copying it beside each name, =restarts= growing a loc column, and the buffer printing "0: [continue] sand.flan:52". Cross-backend ABI change; do it as one lane, not as a rider. - A site for user =error= calls. flan_error has no loc parameter; threading one through means both backends' call emission. Same lane as above if the frame is being touched anyway. * The INSERTIONSORT crash, 2026-09-20 — bytes copies, rodata traps, segfaults park ** What happened The author dogfooded an in-place sort over (bytes "INSERTIONSORT"). (bytes s) was a zero-cost reinterpret — the [u8] aliased the string's storage — so the sort wrote into a string constant. The compiled build appeared to carry on (measured: at -O2 LLVM deletes the store as UB, so the program silently does nothing; at -O0 both backends already emitted the data read-only and the store trapped). The dev session hard-crashed with no message at all: the merged daemon runs the program's code in its own process, so the SIGSEGV took compiler, socket and session down together. ** The decisions, in the author's words 1. "I would expect bytes to copy, but there should be an equivalent slice function for read-only." — (bytes s) now allocates a writable copy of the string's bytes; (bytes-view s) is the old free reinterpret, read-only by convention. (string b), the mirror reinterpret, is unchanged. 2. "Don't we have allocators for this sort of thing?" — the copy goes through the allocator surface like every allocating operation: (bytes s) takes the context allocator, (bytes s a) names one, failure signals StorageExhausted with retry, and dev builds note the block in the allocation registry. Never a hidden malloc. 3. String constants are read-only on every path — LLVM `constant` globals, x86 .rodata — so a stray write traps immediately and identically at -O0 on both backends and in the session (pinned in test_acceptance.ml; the -O2 store deletion is UB and is documented, not pinned). 4. A segfault in a dev session is a stop, not a silent death: dev builds install a SIGSEGV/SIGBUS handler (flan_dev_crash_enable, constructor emitted only in dev builds) that names the address and the innermost frame, then parks in the break loop through flan_trap_hook exactly like the no-channel traps — the daemon stays alive, describe answers :condition "SegFault", evals still run. Release builds are untouched. ** Found by review, fixed on the same branch - The park had the original bug inside it. sigaction without SA_NODEFER blocks the handler's own signal for the whole handler, and here the handler *is* the park — it never returns. A hardware SIGSEGV delivered while SIGSEGV is blocked is not handled at all: the kernel forces the default action. So fault, park, evaluate something at the break loop that faults, and the daemon died exactly the way the author's session did. Measured both ways before and after the flag. SA_NODEFER added, flan_crash_entered cleared before the hook so each break-loop fault gets its own line, and the case is pinned (trap_park ~refault:true) — the pin was confirmed to fail without the flag rather than pass vacuously. - A disposition is per process, and a merged `flan dev' is one process with the daemon in it: the handler was shadowing OCaml's SIGSEGV handler for the daemon's whole life, including after the program run ended, which turns a daemon-side stack overflow into a park instead of Stack_overflow. Scoped to the thread it was armed on; other threads chain to whatever was installed before. Arming per *run* was considered and is wrong — a finished program still runs Flan from flan_merged_park's poll, so every C-x C-e at the parked prompt would have been left unprotected. The thread test also makes the per-thread sigaltstack honest, since only the armed thread has one. - wasm32 compiles flan_dev.c and has no signals; the section is guarded and flan_dev_crash_enable is a no-op there. ** Open directions left here - Read-only slice types. bytes-view is read-only *by convention* only: the type system has no way to say a [u8] cannot be stored through, so the rodata trap is the enforcement. A read-only slice (or provenance) is what would move that refusal to compile time. - (clone slice) / (clone slice a) as the general spelling of what (bytes s) does for strings. Not done now: clone answers its argument's type, and a cloned [u8] would be a block with no owner — the same who-frees question bytes answers by leaning on free-all/destroy. If slices grow a clone, the two should share the lowering (flan_bytes_dup already is it). - The bytes copy is reclaimable only by its allocator's free-all or arena-destroy — the slice carries no allocator, so (free) cannot take it. Fine against an arena or the frame allocator; a heap-tier copy is a block that lives until exit. Documented in BUILT.md's surface table. * slice's arities, and at/slice over a string — 2026-09-20 The two rulings, in the author's words: #+begin_quote slice should take multiple arities, none just pass the whole slice, 1 start from n, 2 n to m #+end_quote #+begin_quote at/slice should work on strings. #+end_quote Both came out of the same wall: a fixed array does not decay to a slice at a call, so handing [6 2 4 9 1 9 4 5] to a generic sort meant writing (slice a 0 (len a)) every time; and a string could be neither indexed nor sliced at all, so the only route to a byte was (bytes s) — which the lane changing bytes into a copying operation would have turned into an allocation per index. What landed. (slice a) is the whole of it and (slice a n) is the tail from n, written out in check.ml into the three-argument form — same node, same static bound checks, same runtime trap, and on a fixed array the implicit length is the constant (len a) already folds to. A target that is not already a name goes through a slot first, so (slice (f x)) calls f once. Neither backend needed arity work. Strings: (at s i) is the byte, bounds-checked, and (slice s ...) at all three arities answers a *string* viewing the same bytes — not a [u8], because a byte slice is writable-looking and these bytes are not the program's to write. (set (at s i) x) is refused in check_place and says so. The backends needed one case each: emit.ml's element_addr grew the String arm, and x86.ml's index_len grew the length it checks a string index against — it had been returning None, so x86 would have indexed a string with no check at all once the checker allowed it. Open, and not invented here: (slice s) cannot be passed to a [u8] parameter. Crossing wants bytes-view, which is the other lane's to land. ** Review follow-ups on the same lane Found by the independent review of this branch against dev-loop, and all of it fixed here rather than queued. The blocker was an interaction and not a bug in either half. dev-loop's single-index fast arm (ab94c69) checks its own target and calls [indexed] directly, on the stated grounds that [indexed] refuses a string by name — which was true until this branch made [indexed] accept one. A refusal in [check_place] therefore covered the spellings that go through it — (set (at g 0 0) x) and (addr (at s 0)) — and missed the one a person writes: (set (at s 0) 90) compiled, LLVM dropped the store and x86 exited 255. The question now lives in [indexed] itself, behind a ~place location, and is asked at every dimension — (at g 0 0) over a [[2 string]] reaches a string only at the last step. [refuse_string_place] is the one message, and [addr] gets it too, so it reads as value-versus-place rather than as an assignment rule. Slicing an array a call returned is refused outright now, at every arity. It dangles — the view outlives the temporary, both backends print reused bytes, nothing traps — and it dangled the same way at (slice (mk) 0 3) long before this branch. It was cheap to refuse and nothing in the tree did it. An array literal is untouched: the frame holds one for as long as the form it is written in. Noted, not fixed: - A sliced string loses the trailing NUL both backends emit after a string constant. The contract is ptr+len and nothing promised otherwise, but a declare-c wrapper that leaned on the courtesy is now leaning on a slice's end. - (at d i) over a dyn string works and (slice d 1) is refused. Pre-existing, and semantics never fork, so dyn slice should exist. - (slice "abc" 0 99) is not refused at compile time, because Types.String carries no length. Consistent with a slice of a slice; a missed nicety. * 2026-09-20 — an evaluated expression that signals says so at once An expression evaluated from a buffer signalled a [BoundsError], the thunk stopped in the break loop, and five seconds later the daemon answered "the program did not reach a frame boundary; is it calling (agent/poll)?" — on a reply that said [:stopped t :condition "BoundsError"] two fields along. The program had reached the boundary, run the thunk, and stopped inside it. [eval_expr]'s wait recognised exactly one kind of stop: a [Pause], and only when [:pause t] had asked for one. Every other stop fell through to the timeout arm, which then chose between two sentences neither of which was about a thunk sitting in the break loop. ** The decision The wait reads what it found on the way in, before the module is delivered, and treats a stop entered after that as the thunk's. A fourth answer carries the condition's name off [status] and is given at once, because a thunk in the break loop will never produce a value on its own and waiting for one is waiting for nothing: the expression stopped on BoundsError before it produced a value. The break loop is holding it: take a restart, or abort 5.15s to 0.01s on the reported case. "After that" is a *number*, not a name. [stop_gen] (lib/dev.ml) asks the agent's [stop] verb, which answers [snap_top()->gen]; [snap_push] mints one on every break entry including a nested one, never reuses it, and runs on both backends. So the case a name cannot settle — evaluating from inside a break into a thunk that stops on the same condition class — is settled by comparing two integers. No new C: the verb is there, and the writable inspector two screens down in the same file already uses it for the same kind of question. The name stays as the fallback for an agent that cannot answer [stop], and the old ambiguity comes back only there. Both timeout sentences stay as they were, and are now only said when they are true — the frame-boundary one when the program is running, not parked, and silent for five seconds. The [(pause)] path is not untouched, and saying so would be wrong. The split is on the condition's name now, not on the [:pause t] flag. A plain [C-x C-e] over an expression that calls a body somebody marked with [C-u C-c C-c] reaches a [(pause)] this request never asked for, and used to spend five seconds and then blame [(agent/poll)]. It answers [ok] with "stopped at (pause)" at once, the same as the flagged case. Pinned in test_dev.ml on the [dev-pause] daemon, over a function the program itself never calls. Which is why [(pause)] is not folded into the signalled arm. A breakpoint firing is the feature working, and "the break loop is holding it: take a restart, or abort" would be telling somebody to abort out of the breakpoint they set on purpose. The flag was never what made a [(pause)] deliberate — putting one there was. [:pause t] itself is unchanged in every case that exists. [Session.eval_expr] splices the call *ahead* of the expression ([Do [pause_call; parsed]]), so a flagged thunk always stops at its [(pause)] before the expression can run, and "it signalled before reaching the pause" describes nothing reachable. An earlier draft of this entry claimed otherwise. Cost, measured rather than assumed: the wait now asks [status] every tick where it used to short-circuit on [pause &&] and ask nothing. 22µs a round trip under [--two-process], 22ms over the thousand ticks of a full timeout, against a five-second budget — and [ms - 5] counts ticks, so that is budget inflation rather than time spent inside it. Four parts in a thousand. Left alone. [run_render_thunk] shares the sentence and is stopped-only by design, with its own [resumed] discriminator. Untouched. Emacs needed nothing: [flan--absorb] already reads [:stopped]/[:condition] off every reply including errors, and already schedules the break buffer. ** Open: whose break it is, which no counter answers The generation says a break is new. It does not say whose. [build_module] takes a couple of hundred milliseconds between the snapshot and the delivery, and the wait runs for five seconds after it. A game loop that signals on its own during either window bumps the generation exactly as a thunk would, and the reply then says "the expression stopped on X" about an expression that had not run. The machine-readable fields stay right — the editor opens the break the program is really in — so what is wrong is the sentence and only the sentence. Nothing counted can close it, because the program's break and the thunk's are the same kind of event. What separates them is the per-frame "program"/"eval" origin the backtrace already carries, and that is LLVM-only: the default x86 backend pushes no shadow stack, so on the backend [flan dev] actually gives you, it answers nothing. Closing it properly means x86 pushing frames in dev builds, which is a lane of its own. Not queued. The window is narrow, the fields are right, and the wrong sentence is a great deal better than the one it replaced. * def, and defvar renamed to defonce, 2026-09-20 ** The gap, hit dogfooding The author edited a ~defvar colors [4 u32] [...]~ initialiser and the colours did not change on C-c C-c — which is defvar working exactly as designed, and the wrong form for what he was doing. The re-run rule (the entry "Per-form initialisation semantics on re-run" above) had already decided the trio in his words: "It doesn't matter if you rerun that startup function, those 3 forms decide what happens." Two of the three were built; ~def~ — foreseen there as "a def-style form that re-evaluates, recomputes on every run" — was not. Now it is. ** The rename, author's words "Rename to defonce, I think Clojure's name is better and more descriptive." Clojure's ~defonce~ has exactly these semantics — define only if unbound — so the name now says what the form does, next to a ~def~ that follows the source. ~defvar~ is refused by name (~parse/defvar-renamed~) with the two spellings that compile; every program, test, doc and editor list in the repo is swept, except sand.flan, which is the author's live WIP and stays for the merge. ** The trio | form | initialiser runs | on a re-run | |----------+-------------------------+------------------------------------| | def | at startup, every run | repaints — the source's value wins | | defonce | at startup, first run | keeps — the program's value wins | | defconst | never — it is the image | untouched; it was never storage | ~def~ is Common Lisp's ~defparameter~, ~defonce~ is CL's ~defvar~ under Clojure's name, and ~defconst~ is a compiler constant. Every spelling of the third element (the four spellings pinned in test_flan.ml) holds for ~def~ exactly as for ~defonce~ — same parse arm, same collision rules, same third-element dispatch — with one field of difference, [Ast.reinit], carried to [Tast.global]'s [grerun]. ** How a def reaches the next re-run Two mechanisms, one per half of the promise: - No guard flag. [Emit.startup_plan] gives a [defonce]'s computed initialiser the [.init~once.] flag and gives a [def]'s none, so the store runs on every entry into main. Shared plan, so the two backends cannot disagree. - Always lifted. [Check.check_global] lifts *every* def initialiser into [global/] — zero and literal included, where a defonce keeps constants inline in the image. The host's startup calls the initialiser through its function cell, so when the author edits the form and C-c C-c's it, [Session]'s [def_inits] hands [global/] to the redefinition, the cell swaps, and the next re-run stores the *edited* value into the same storage — a native ~[4 u32]~ def repaints in place, so every reference sees the new values. A constant left inline would have baked the stale value into the host's startup body for ever. [Emit.redefinition] declares the cell for a non-sibling target (a lifted initialiser's [fparent] is its global); the x86 side already reached host cells through the GOT. ~uninit~ is the one exception on both forms: nothing to run, nothing to lift, nothing repaints. Pinned in test/programs/dev-rerun.flan (a ~(def c 3)~ printing 4, 4, 4, 4 beside a ~tally~ climbing 1..4; a ~(def hues [4 u32] ...)~ element printing 8 every run; then ~(def c 9)~ evaluated and the next re-run printing 10 while the defonce beside it climbs on), in test_flan.ml (parse shapes for every spelling of both forms, [grerun] on the pair, the lifted-initialiser claim, def/defn and def/defonce collisions, the defvar teaching error verbatim), and in programs/global-init.flan's last four lines (all def spellings start identically on both backends and at both -O0 and -O2). ** Review follow-ups Three real defects, all from the always-lift, all found by review rather than by the suite: - *A def typed fresh into a live session came up zero and stayed zero.* The image [flan_dev_global] copies on the allocation is the only value a brand-new global ever gets — the host's [.init-globals] was compiled when the process started and never calls the new name's initialiser — and both backends decided that image with [Tast.const_init g.ginit], which a def's lifted [Call] fails by construction. [(def n i64 42)] therefore came up 0 where [(defonce n i64 42)] came up 42, permanently, for that process. Now [Emit.initial_image] reads the constant back out of the lifted body and both backends ask it; the x86 twin had the same bug and the same fix. Pinned in test_session.ml beside the defonce row it is compared against. - *Changing the keyword on an existing global was silently ineffective.* Which form declared it is not in the storage, it is in the startup function's guard, compiled into the host. A redefinition republishes the initialiser and cannot republish that, so defonce→def kept the guard and never re-ran, and def→defonce kept re-running. [Session.compatible] refuses both ways now and says to restart. Editing the *value* is the workflow and stays allowed, which is the row beside it. - *Swapping in or out of defconst was silently accepted, and one direction did damage.* The first cut of the refusal above asked only about the two mutable forms, and claimed in its own comment that a defconst on either side was another arm's business. It was not: [defconst x] → [def x] at the same type fell past every arm, and [defonce x] → [defconst x] fell past them into the [consts] republish, which stores the declared value over the storage at the frame boundary — "edit the code, keep the sand" undone by a keyword. One refusal over [gconst] and [grerun] together now covers all six directions, which is right because it is one fact: the defining form is fixed at build time. - *[global/] leaked into a user-facing refusal.* Retyping a def hit the function-signature arm first, which answered about [global/paint] — a name nothing in the source mentions. The lifted initialiser is skipped there now; the global loop below says the same fact in the words a reader can act on. Also covered, having been reasoned rather than exercised: a def whose type changes between re-runs (the "changes type" refusal); a def initialiser that reads another global at run time and re-reads it on each re-run (dev-rerun.flan's [echo], which follows [counter] at 40, 41, 42, 43 where a captured first answer would print 40 four times); and the x86 half of the new-global image, which reload-v6.flan now *runs* rather than greps — a [(def dial i64 5)] the host was never built with, whose 5 shows up in the transcript's arithmetic. ** Red on this branch, for the merger sand.flan spells ~defvar~ at lines 15, 16, 24, 25, 26, 115 and 116 and was not touched — same situation as the raylib keywords above. The three sand-dependent tests (test_flan's parse pin, test_session's create, test_acceptance's "a package's main is not visible") are red here and turn green when those seven lines say ~defonce~ (or ~def~, where the author wants the initialiser to follow the source — ~colors~ was the motivating one). * dotimes counts, 2026-09-21 "Is there a way to do dotimes or a loop in reverse?" — the answer was a hand-written let plus set, which is the wrong answer for the commonest loop there is after counting up. Ruled: dotimes grows the start/stop/step arities, the way CL's loop and Clojure's range have them. (dotimes [i n]) ; 0 .. n-1, unchanged (dotimes [i start stop]) ; start .. stop-1 (dotimes [i start stop step]) ; start, start+step, ... while short of stop stop is exclusive in every arity, so (dotimes [i 0 n]) is (dotimes [i n]) — one rule, not two — and a negative step counts down, testing with > instead of <. (dotimes [i 9 -1 -1]) is 9 down to 0. The two edges, decided: a literal step of 0 is refused at compile time, being an infinite loop spelled as an accident; a step that is only a value cannot be refused there, and the sign test that picks the loop's direction leaves 0 with neither direction, so it runs no times at all. Terminating and deterministic, and it costs nothing — a literal step still emits the one comparison it always did. Still a special form desugaring in check.ml to a Let and a While, so neither backend learned anything. test/programs/dotimes-range.flan is the corpus program; docs/BUILT.md carries the convention. Four sites, all of them this feature and none of them a pre-existing bug: parse.ml takes a vector of two to four, check.ml desugars it, and load.ml's two walks — the Ast rename and the Form-level one at load.ml:503 — learn to walk more than one bound. The Form walk matched Vec [n; count] exactly, so it had to grow; before this, a three-bound dotimes was a parse error long before that walk could see it, so nothing was ever miscompiled by it. * 2026-09-21 — a restart that abandons the evaluation The report, in the author's words: I got an error evaluating the insertion-sort, but it killed the whole flan program, the "continue" restart didn't work, I kept pressing 0 and nothing would happen, there's a design problem here, likely because it's running on the same thread as the game loop? What's going on? It should just be able to ignore that whole call The last sentence is the requirement, and it was the one thing the break loop could not do. ** What was actually wrong Reproduced headless, both backends, on a running program: evaluate an expression that indexes past the end, and the break it lands in offers restarts () or, over a program whose own loop holds a [restart-case], a single entry below the thunk boundary and marked unreachable. Nothing takeable either way. A bad index establishes no restart of its own — nothing a handler could do would make index 9 valid for a length-4 array — and the program's own [continue] is below [flan_reload_call], which holds its own transfer channel and drops it on return, so a transfer to it has nowhere to land. Which left [abort], and abort is [_exit(134)]: in a merged [flan dev] that is the compiler, the session and the game, over a mistyped index. So the floors were right and the list they produced was empty. Everything the agent knew how to say about that break was a refusal. ** Not the threading, and the question deserves a straight answer The thunk does run on the game thread. That is the design and not an accident: the break loop *is* the poll loop, which is the only reason C-x C-e works at the moment anyone wants it to, and [restart_floor] is documented game-thread- only for it. But it is not the cause. A thunk on a thread of its own would have had exactly the same empty list and exactly the same [abort]. What was missing was a restart, not a thread. ** The decision The agent establishes one restart of its own around every evaluation: 0. restart: abandon-evaluation (stop running the expression; the program carries on) It is a real frame on the real restart list, pushed by [flan_agent_poll] immediately after the floor is read — which is what puts it *above* the floor and makes it reachable, where pushing it first would have marked it as the program's and refused it. Taking it aims the transfer at that frame; nothing compares against it, so the unwind runs to the top of the thunk, [flan_reload_call] drops the channel it holds, and the poll returns to whatever called it. That is the same path a below-the-floor restart used to take by accident. The difference is that this one is what was asked for, and is reported as what happened. The frames live in flan_rt.c ([flan_restart_push_c]/[flan_restart_pop_c]), because the struct is declared there and two files each declaring it is how the two stop agreeing. A fixed array of sixteen, not malloc: this is pushed on the game thread at a frame boundary. No codegen. Both backends unwind by the same convention, and both were driven end to end. ** What it does not promise Abandoning drops the expression. It does not undo it. The thunk ran until it signalled, and every global it set and every byte it allocated on the way is still set and still allocated. Said in the agent's line, in the daemon's reply note, in the break buffer's row and in MANUAL.md, because an editor that said only "abandoned" would let someone believe the program is where it was before they pressed C-x C-e. ** The other half: "I kept pressing 0 and nothing would happen" A choice a reader makes has to do something or say why it cannot. [:unreachable] was already on the wire and the break buffer was not reading it: it drew every restart as an ordinary takeable row, and a digit on one sent it to the daemon to be refused. The row now loses its bracket, carries the reason beside it, and is refused *here*, out loud, with the sentence the daemon would have given. [:abandon] is new beside it — the position that abandons, [nil] when the break is not inside an evaluation — and it is a position rather than a name on purpose: a program is free to establish a restart called [abandon-evaluation] of its own, and matching on the name would offer the program's restart as the way out of an evaluation. The agent identifies it by frame address; the wire carries it as a third value of the flag [restarts] already had, [*] beside [+] and [-]. Point in the break buffer starts on that row, and [C-c C-M-b]'s prompt takes it as the default. The list is not reordered — the number beside a restart is the program's own index, and moving rows would make the numbers lie. [abort] stays last and stays not-the-default. ** What still cannot be abandoned, and correctly A trap has no transfer channel at all — [rt_trap] calls the hook with nothing to write a frame into — so at a trap every restart is refused, the boundary's included, and [:abandon] is [nil]. There is nothing to unwind through. The break is still a place to stand and read; fix and reload is the way out. That is the one case where "it should just ignore that whole call" cannot hold. ** Open: nothing counts abandonments An earlier draft had the agent count them and a [abandoned] verb to read the count, so a daemon waiting on a value could end its wait. It is not needed: the wait already ends the moment the thunk breaks (see "an evaluated expression that signals says so at once" above), and the restart's own reply says what taking it did. A third telling read by nobody is how a wire grows a verb whose answer drifts from what happened. ** Review follow-ups Five things the review found, and one it asked me to judge rather than take. *Two refusals, not one.* At a trap nothing on the list can be taken — the break has no transfer channel at all — and the daemon was folding that into the same [:unreachable] it uses for "below the evaluation this break is inside". The break buffer then captioned a segfault's restarts with a sentence about an evaluation that was not there, and offered no way out of one. The terminal listing had always said the two apart; the wire had not, which is exactly the divergence the [restarts] comment says must never happen. The trap now rides on the break reply as [:trap], and both the caption and the refusal branch on it. It is a bare [!] line ahead of the entries rather than a fourth flag value, because it is a fact about the *break*: a trap with an empty restart list — dev-trap-null-alloc is one — has no entry to carry a flag, and that is the case that has to be able to say so. It is *not* inferred from [:abandon] being nil: a break the program took on its own has a nil there too, and so does a truncated list. *The escape hatch survives truncation.* [snap_push] walks innermost first and stops at SNAP_MAX or SNAP_NAMES, so the outermost entries are what truncation drops — and the boundary is the outermost entry of an evaluation, which made it the first casualty. A thunk establishing 64 restarts of its own reproduced the original bug exactly. One slot and one name's worth of bytes are now kept back and the boundary is placed in them when the walk does not reach it. The cost is one listed restart out of sixty-four while an evaluation is in progress. *[flan_break_resume] is gone.* Nothing has called it since the break loop started choosing by position instead of by name; NEXT.md already said there was no such function. Two ways to resolve a restart that can only ever disagree is one too many. *[eval_boundary] is cleared between runs.* [flan_agent_run_reset], called beside [flan_condition_stacks_reset] and [flan_dev_frames_reset] from the park. Harmless today — a program's restart frames are allocas and can never compare equal to a stale one — and the floors go with it, because emptying two thirds of the same state is stranger than emptying none. *Nested boundaries are tested rather than reasoned about.* Two evaluations, the second run from inside the first one's break, on one list: six restarts, the inner boundary at 2 and takeable, the outer one at 5 with the frames it belongs to below the floor. Abandoning the inner leaves the outer with its three restarts and its own boundary still on offer. That is the claim the save-and- restore around [j.call] exists for. *The round trip, judged and removed.* [choose_at] and [choose] each asked [restarts] before sending, only to word their note — doubling the traffic of the verb somebody is actually waiting on, to learn something the other end had in front of it. The agent now answers [ok abandon] for the boundary and [ok] otherwise. It could not simply be read off the [break] reply the client had: the daemon words the note and the daemon had not seen that reply. Saying it on the acceptance also closes the window — after a take the stopped thread resumes and the snapshot it was resolved against is popped, so there is nothing left to ask. * The enum prefix goes uniform, 2026-09-21 ** The ruling, author's words "I think the prefix reads better, keep it." So it stays, and it stops being a thing two enums have: two prefixed out of eleven was the inconsistency, not the prefix. This closes the survey left open under "Enum keyword prefixes, 2026-09-20" — every enum on that list now has a ruling. ** The table, as applied | Key | KEY_ | ~key-~ | | MouseButton | MOUSE_BUTTON_ | ~mouse-~ | | TraceLogLevel | LOG_ | ~log-~ | | CameraProjection | CAMERA_ | ~projection-~ | | CameraMode | CAMERA_ | ~camera-~ | | GamepadButton | GAMEPAD_BUTTON_ | ~button-~ | | GamepadAxis | GAMEPAD_AXIS_ | ~axis-~ | | Gesture | GESTURE_ | ~gesture-~ | | MouseCursor | MOUSE_CURSOR_ | ~cursor-~ | | TextureFilter | TEXTURE_FILTER_ | ~filter-~ | | PixelFormat | PIXELFORMAT_ | ~pixel-~ | Two of those are judgement rather than transcription, and both were checked against the real member lists before being taken: - CameraProjection and CameraMode share raylib's CAMERA_ and do *not* share a Flan prefix. They are two different questions asked of the same struct, and ~:projection-perspective~ beside ~:camera-orbital~ says which one is being answered where a shared ~camera-~ would have left the reader to work it out. - GamepadButton and GamepadAxis take ~button-~ and ~axis-~ rather than a shared ~gamepad-~ stem. The two are never in the same position, and the shorter prefix is what keeps ~:button-left-face-up~ and ~:axis-left-trigger~ readable — ~gamepad-~ on both would have said the part the surrounding call already says. MouseButton keeping ~mouse-~ is the same call from the other side: a mouse button and a pad button are different sets, and the prefix is where a reader is told which. ~log-~ rather than ~trace-~ for TraceLogLevel: the C names are LOG_, ~trace~ is itself a member, and ~:log-warning~ is what the call reads as. ** It is a reading choice, not a collision fix Worth writing down because the next reader will otherwise assume it was necessary. A keyword at a call site resolves against the expected type and against nothing else (lib/check.ml, the ~enums~ table), so two enums may share a member spelling with no consequence at all — ~:point~ at a TextureFilter site could never have meant anything else. What the prefix buys is the call site read on its own: ~(rl/set-texture-filter t :filter-bilinear)~ says which closed set the name came out of, where ~:bilinear~ asked the reader to know the signature first. docs/BUILT.md says so in the bindings section. ** The round trip, actually run ~flan generate-c vendor/raylib~ is green against raylib-5.5.h with all eleven third columns in place: 267 declarations, and every defstruct, hand-written declare-c and mapped constant agrees. The check was confirmed non-vacuous by breaking it on purpose — ~filter-trilinear~ spelled ~filter-trilinearr~ was reported as "the header has no constant named TEXTURE_FILTER_TRILINEARR", which is the prefix being stripped and reapplied rather than a name passing unexamined. The three ~constant~ exception lines are keyed on the member's full Flan spelling, so they moved with it: ~Gesture/gesture-double-tap~, ~PixelFormat/pixel-compressed-astc-4x4-rgba~ and its 8x8 twin. test/test_flan.ml pins one member of each of the eleven against the C name the rule reaches, read out of the real vendor/raylib/bindings, plus the claim that every mapped enum declares a prefix at all. ** sand.flan, and the alias that stood in for it — removed at the merge The lane could not edit sand.flan, whose line 121 was ~(rl/set-trace-log-level :warning)~, so it left ~warning 4~ beside ~log-warning 4~ in the TraceLogLevel defenum with a ~constant TraceLogLevel/warning LOG_WARNING~ line to match. The review found the alias was not inert: ~lib/render.ml~ folds members so the last-declared wins, so a TraceLogLevel of 4 read back as ~:warning~ in the break loop, the did-you-mean suggested it, and every TraceLogLevel error listed it among the members. So it is gone, with the call respelled, at the merge: sand.flan:121 says ~:log-warning~, the ~warning 4~ member and its paragraph are out of raylib.flan, and the ~constant~ line is out of bindings. Every member of every mapped enum now carries its prefix, with no exception. * One slice, and the warning moved to the push — 2026-09-21 The ruling, in the author's words: #+begin_quote merge them into one slice. as-slice goes away. #+end_quote ** Why a second name was the wrong shape [as-slice] existed as a warning. check.ml said so beside it: a view of a Vec is a borrow from storage a push, a put or a reserve may reallocate out from under you — the explicit Zig/Odin contract spec-memory.md chose instead of a borrow checker — and a different word at the call site was how a reader was meant to be told. It does not work, for two reasons and the second is the one that decides it. The input type already determines the semantics completely. A Vec can only be borrowed; a fixed array, a slice or a string can only be viewed. There is no call site anywhere at which a reader would want to pick between the two behaviours for one input, so the second name expressed no choice. It was a label, not an operation. And it was a label in the wrong place. It warns at the moment the view is taken, which is the one moment nothing is wrong: the view is correct when it is made. The danger arrives later, at the push. A warning stapled to the safe end of the story is a warning nobody reads at the unsafe end. ** What landed One [slice], over a fixed array, a slice, a string and now a Vec, at all three arities. The Vec's half is [vec_slice] in check.ml; everything the previous lane built — the backwards-literal refusal, the static out-of-range refusal where a length is known, the runtime trap, single evaluation of a non-trivial target, the zero-cost implicit length on a fixed array — is untouched, and a Vec reaches none of the static ones because it has no static length to reach them with. The merge is entirely in the checker. Neither backend has an arity case, a type case, or a line about this: the Vec path builds the same [flan_vec_as_slice] call [as-slice] built, and the C symbol keeps its name. *(slice v lo) was free.* The runtime already reads a [hi] of -1 as "to the end", which is what the one-argument form passes, so the tail form passes the caller's [lo] and the same -1. No slot, no length read, no second evaluation of the target, nothing computed that was not computed before. The Vec had no two-argument spelling only because the name it had was not the name that grew the arities. *A Vec a call returned is accepted*, where an array a call returned is refused. This lane first refused it, the review pushed back, and the author ruled: #+begin_quote we're purposely doing manual memory management for the static side, so whatever #+end_quote [(slice (mk))] over an array dangles: the view outlives a temporary the frame reuses, and the dangle is the whole reason that refusal exists. [(slice (make-vec))] does not dangle — the storage a returned Vec owns lives until its allocator's free-all or destroy, so the view reads what it says it reads. What a returned Vec loses is the *owner*, and losing an owner is a leak, which this language has already ruled is defined behaviour: spec-memory.md on overwriting a global Vec says it "overwrites the first block and leaks it; there is no drop", and programs/strings.flan says "leaking is defined behaviour" out loud. So the refusal singled out one of three operations that lose the same owner. [(len (mk))] and [(at (mk) 0)] compile and leak the identical block, and refusing only the third would have been a rule about a spelling rather than about a hazard. It also broke code [as-slice] accepted, including the case where there is nothing to leak at all: [(with-allocator context/temp (println (len (slice (mk)))))] — the arena takes the block back whatever anyone does with the header. Dropped, and check.ml says why beside the array refusal it sits next to, so that the asymmetry reads as deliberate rather than as an oversight. *The array refusal stays, and the line between the two is the point.* They look alike and they are not. A view into a returned array points at bytes the frame has already handed to something else, so it answers a number that was never in the array — a wrong answer, silently, on both backends, with nothing to trap on. A view into a returned Vec answers exactly the elements it says it does; the cost is a block nobody can free. Wrong answers are the compiler's business and leaks are the program's, which is the whole of why one refusal is kept and the other is gone. BUILT.md and spec-memory.md both say it, because a reader meeting one of the two forms will assume the other behaves the same way. The refusal for the name itself is in [ordinary_call], after every table, so a program that defines an [as-slice] of its own still reaches its own. It reads for somebody who has never heard of the old name — "there is no as-slice" — and writes the call back out with the arguments the reader wrote, spelling any argument that is a name or a number and standing in for one that is not, so the suggestion is always a form that compiles. ** The warning, moved docs/BUILT.md gains a section next to the Vec surface table, and the [push] row points at it: a view of a Vec is invalidated by [push], [put] or [reserve], nothing checks it, and the rule is to take the view again afterwards. spec-memory.md's "Borrowing" says the same in its own register and drops the old two-spelling line. ** Investigated and NOT built: a live view at the push The brief asked whether a [push] with a live view of the same Vec in scope is detectable cheaply, and said to build it only if the obvious case is catchable with no false positives. It is not, and the reason is not analysis cost. The decisive case is one line of *correct* code: #+begin_src flan (reserve v 100) (let [s (slice v)] (push v 1) (println (at s 0))) #+end_src The reserve is exactly how a program says "this push will not reallocate", and under the contract the spec chose that promise is the program's to make. Any flag on this — error or warning — is a false positive by the language's own semantics, not by an approximation the check settled for. The bar the brief set therefore cannot be met by a cheaper check, because the obstacle is not precision. The syntactic sketch is worth writing down so nobody re-derives it. To avoid flagging the common and harmless [(let [s (slice v)] (println (len s)) (push v 1))] — where the view is dead by the push — the check must find a use of the view *after* the push, which is liveness. Textual order is not execution order across an [if] or a loop; a [set] of the view's binding or a shadowing of either name breaks it; and narrowing it to one straight-line statement list to make the order real shrinks it to almost nothing. Meanwhile static flow tracking was deliberately repealed on 2026-09-18, and this is a borrow checker's question wearing a smaller hat. Two reasons to stop, and the first one is sufficient on its own. What was built instead is the sentence, in the two places a reader meets the operation that breaks the view. The independent review sharpened the argument and reached the same place. The reserve witness kills the cheap per-push flag. The refined version — flag a push only when no reserve on *that* Vec came between — has to know which Vec a view was taken from and what happened to it in between, across calls and control flow, which is the static flow tracking repealed on 2026-09-18. Witness kills the cheap check; repeal kills the sound one. ** Two forks closed on review, and one refusal dropped Found by the independent review of this branch and fixed here. *The -1 sentinel was reachable from user syntax.* [(slice v 0 -1)] answered the whole Vec and [(slice v 1 -1)] the tail, on both backends, while [(slice a 0 -1)] over an array was refused as a negative bound — the same builtin giving the same literal opposite meanings. The refusal now runs on the bounds the reader *wrote*, before the implicit hi is built, which is the only order that works: the sentinel is itself a -1, so a check on the finished pair would refuse [(slice v)] itself. [(slice v -1)] is a compile error now, in the same words an array gets. The backwards-pair check moved into the branch where both ends are bounds somebody wrote, so it no longer has to step around a value nobody wrote. *The bounds fork is closed toward [index_expr].* The array path expected an i32 outright and the Vec path used [index_expr], so with a u32 in hand [(slice v c)] compiled and [(slice a c)] did not. The tiebreaker is not which half is older but what every other subscript in the language does: [indexed] and [vec_at] both take their index through [index_expr], so [(at a c)] compiled where [(slice a c)] did not — the fork was between [slice] and [at] as much as between two targets. A bound is a subscript; it takes the subscript rule. Nothing is loosened that the bounds check does not still catch, and i64 and u64 are still refused by name on both paths. *The returned-Vec refusal is dropped*, as above. ** Swept Every spelling in the repo: lib/ (check.ml, prelude.ml, render.ml, shim.ml), runtime/flan_rt.c comments, test/ (test_flan.ml, test_acceptance.ml, test_valgrind.ml and fifteen programs), vendor/edn and vendor/json, web, docs/BUILT.md, docs/overview.md, docs/SPIKE-DYNAMIC.md, spec-memory.md, NEXT.md and syntax-sketch.flan. sand.flan never used it. * A conversion under a bound, 2026-09-21 ** The report ~(defn total [xs [$t]] i32 {:where [(integer? $t)]} ... (i32 (at xs i)) ...)~ was refused with "i32 converts a number, found t". The bound says every type the body is copied at is an integer, an integer is a number, and the conversion is exactly what the bound exists to license. ** The root cause, and it is narrower than "predicates are not consulted" Arithmetic, comparison, min/max, the bitwise fold and the shifts all ask the bound — each pairs an ~unconstrained ... ~needs:~ call with an ~|| generic_ty~ escape, and the shifts had already been taught ~integer?~. The conversions were the family nobody had gone back to. Three arms in lib/check.ml, all in the cast block: 1. ~is_cast~ (a machine type in head position) asked ~Types.is_numeric~ of the operand and nothing else, so a variable — which has no type yet — fell through to the refusal. This is the reported bug. 2. The enum target asked ~Types.Int _~ of the operand, the same way, so ~(K n)~ inside a generic body was refused however the variable was bounded. 3. The *variable* target — ~(t x)~ — had the opposite defect. It asked the bound of the target and then accepted any ~generic_ty~ operand, so a second variable declared only ~ordered?~ passed the abstract pass on the strength of a sentence about a different variable. That one was an acceptance, not a refusal, and tightening it is part of this entry. It was not reachable, and saying so is the honest version. ~ordered?~ is ~Types.is_comparable~, which admits numbers and enums and nothing else, and every one of those converts at the concrete arm; a string is refused at the instantiation before any of this. So no wrong program was ever compiled through it. What it was is a hole that opens the day ~ordered?~ admits a type that does not convert — which is the same future the rule below refuses to bet against, and the best evidence for it: a check keyed to the set a predicate denotes today is correct today and silently wrong later, where one keyed to what the predicate claims stays correct across the widening. ** The rule A conversion is legal at a bounded variable exactly when it is legal at every type the bound admits, which is the repo rule that generic and concrete code compute the same thing, applied to a set instead of a type. Read off the concrete arm, that gives one predicate per target: - A machine-type target needs ~numeric?~. Every type it admits converts to every numeric target today. - An enum target needs ~integer?~. ~numeric?~ admits f32 and f64, and the concrete arm refuses a float to an enum — sub-decision 3 of the cast block. - ~ordered?~, ~equal?~ and ~hashable?~ admit nothing. And per predicate: - Under ~integer?~ every conversion is legal, the float targets included. ~(f64 x)~ at an unknown-width integer is *not* value-preserving — i64 to f64 rounds above 2^53 — and it is allowed anyway, because the written ~(f64 i64-x)~ is allowed and a conversion has never claimed the value survives. Refusing it at the variable would make the generic stricter than the code it is copied into, which is the fork the rule forbids. - Under ~numeric?~ every conversion to a number is legal, ~(i32 x)~ included, and it may truncate a float. Same reasoning from the other side: ~(i32 f64-x)~ truncates towards zero where the type is written, so the bound cannot refuse what the copy would accept. The enum target is the one thing ~numeric?~ does not buy. - Under ~ordered?~ or ~equal?~ alone, refused. That last one is the only place the "legal at every admitted type" test does not decide it, and it is worth naming rather than hiding. ~Types.is_comparable~ admits numbers and enums and nothing else today, so every type ~ordered?~ currently admits does in fact convert — the test taken literally would allow it. It is still refused, because the predicate is a claim about ordering and not about numbers: the day ~ordered?~ admits strings by a chosen collation (plan.org, Types leaves that open), a conversion keyed to it would silently start meaning something else. Predicates gate operations by what they say, not by the set they happen to denote this week. ~hashable?~ makes the point without any argument at all: it admits strings and structs now. ** The diagnostics The old line named the variable by its bare spelling, said only what was wanted, and said nothing about the clause the reader would have to edit — "i32 converts a number, found t" against a body whose signature says ~$t~. The refusal now says what the variable is known to be and what to write: i32 converts a number. The where clause says t is ordered?, and that does not make it a number — add (numeric? $t) to the where clause i32 converts a number. Nothing here says t is a number — write {:where (numeric? $t)} at the head of the body K converts an integer to an enum. The where clause says t is numeric?, and that does not make it an integer — add (integer? $t) to the where clause Both spellings compile as written, and the clause is spelled the way ~unconstrained~ already spells it so the family says it one way: a body with no clause is handed the whole clause, a body that already has one is told which predicate to add rather than a clause that would drop the predicates it has. ** Tests test/test_flan.ml pins each conversion generic and concrete side by side — the narrowing i32, the widening f64, an unsigned target, and the enum direction — and each refusal against its whole message. test/programs/int-generic.flan runs the reported program and its concrete twin at -O2 and -O0. No x86 row was added: the checker decides more programs are legal without changing what any of them emits, and the Cast they emit is the one widening.flan already pins on x86. ** Left alone, found while here - ~(total v)~ where v is ~[3 i32]~ and the parameter is ~[$t]~ is refused, and a written ~[i32]~ parameter refuses the same array with the same reasoning. Not a fork; an array is not a slice, and the slice/as-slice lane owns whatever changes there. - ~i64->bytes~ takes its argument at ~~want:(Types.Int Types.I64)~, so a written i32 or u8 is *accepted* — implicit widening reaches it — while a ~$t~ under ~integer?~ is refused. That is not a fork either, and the reason is the rule rather than symmetry: ~u64~ is refused concretely ("neither widens into the other, so the conversion has to be written"), so ~integer?~ admits a type at which the conversion is illegal, and a bound that admits one such type cannot license the operation. ~bytes->i64~ has no argument type to disagree about. Untouched. - ~print~/~println~ over a bounded variable already defers to the instantiation and needed nothing. ** Open: there is now no generic enum → integer conversion Worth recording as a loss rather than leaving the next reader to find it. None of the five predicates admits enums while licensing a cast — ~numeric?~ excludes them, and ~ordered?~ and ~equal?~ admit them but no longer convert. Before this entry the one spelling that worked was ~(t x)~ with the *target* bounded ~ordered?~, through the arm item 3 above closes, so the loss is real and removing it is still right: it worked by not asking about the operand at all. ~enum?~ is the eventual answer and it is not a one-liner, which is why it is written here rather than done here. It entails ~ordered?~ and ~equal?~ — enums compare and are equal — and it does *not* entail ~numeric?~, because arithmetic on an enum is refused where the type is written. So the cast rule stops being one predicate per target and becomes a disjunction, ~numeric?~ or ~enum?~ for a machine-type target, and the refusal has to name whichever one the reader meant. A cast *to* a variable bounded ~enum?~ is a second question with its own answer. Each of those is a decision, not a fill-in, and the author has not been asked. * Generic allocation, 2026-09-21 — the sigil, not the feature Reported as "generic code cannot allocate a container of its own element type": (vec-new $t) inside a generic body was refused with "nothing here says what (vec-new) is a Vec of". The feature was already there. [type_named] and the cast arm asked [List.mem n env.tyvars] / [List.mem_assoc n env.subst] of the name as *written*, and those two tables are keyed on the *bare* name — [signature_tyvars] strips the sigil when it records a variable, and [resolve_name] strips it again when it answers one. So [(vec-new t)] worked and had worked since generics landed — generics.flan's [one-of] and [bump] are written that way — and [(vec-new $t)] fell past the guard into the no-element-type message, which then described a missing annotation for a body that had written one. Three membership tests, one helper: [tyvar_bare] and [tyvar_in_scope] near [resolve_name], used by [type_named] (which fronts vec-new and map-new) and by the cast arm. [resolve_name] uses [tyvar_bare] for its own strip, so there is one place that knows what the character means. A sigil on a name nothing binds now reaches [resolve_name] too, so [(vec-new $u)] says the variable has no binding site rather than blaming the element type. Already fine, both spellings: [(array n $t)], [(zeroed)], [(Some x)], [(Option $t)], [(Ptr $t)], a [(Vec $t)] return, a [(Map $t i32)] parameter — every type *position* goes through [resolve], which has always stripped. A local declared [(Vec $t)] is not a thing in the language: parse gives a let binding no type slot. Broken and fixed: [(vec-new $t)], [(vec-new $t a)], [(map-new $k $v)], [(map-new $k $v a)], [($t x)]. Size and alignment come from the copy: the i32 instantiation of [sorted] emits flan_vec_init with 4/4 and the f64 one with 8/8, and flan_dev_reg_note_vec with 4 and 8. The abstract pass holds [Var t] and is never emitted — emit.ml has no layout for a Var and would die if it were. The dyn question does not arise: a generic is not instantiated at dyn at all any more, and the refusal says to reach for the dyn side instead. So no copy of one of these bodies can reach the dyn container, and the branch in vec-new that picks it is unreachable from here. test/programs/generic-alloc.flan is the motivating program end to end; x86 matches LLVM on it. docs/SPIKE-GENERICS.md already specified this — "Both spellings are accepted at a use" — so the doc was right and check.ml was the divergence. No doc change; the tests are what now hold the claim up. Two diagnostics came with it, because the fix left the same mistake wearing two faces. [($u x)] was an unknown function where [(vec-new $u)] in the same body was an unbound variable, so the cast arm took the sigil clause too. And the unbound-sigil message said "write the concrete type here" in a signature that introduces one: it names the variables that *are* bound now, read from [tyvars] abstractly and from [subst] inside an instantiation, so one run does not answer the same mistake two ways. Where none is in scope — a struct field, a global — it is still the rule, because there is no answer to give. Found while widening the cast arm and left alone: a *declared name* may carry the sigil. [(defn $foo [x i32] i32 ...)] is accepted and [($foo 3)] calls it; so is [(defstruct $S [a i32])], and [($S 3)] constructs one — though the type [$S] cannot be written anywhere, so nothing can hold the result but a let. The character is reserved in every type position and in no name, so the cast arm declines a name a binding, a struct or a defn already claims rather than assume it is a type. That is one decline per table a name can be declared in, and the arm sits above every one of them: [ordinary_call] and, last in [named_call], [positional_struct]. Refusing the sigil in a declared name would close it properly; that is a decision about the spelling and not this lane's to make. Left: docs/SPIKE-GENERICS.md still lists map-new, zeroed and the casts under "Mechanical" as remaining work. They landed.