The wrapper was called flan.dev.ctor, and that is a name Flan can reach:
(defn dev.ctor [] i32 7) mangles onto exactly it. The program compiles
and runs as a release build and fails a dev build with a redefinition
clang refuses -- loud, and only under LLVM with --dev, but mangle.ml's
own comment exists to make it impossible rather than loud. The name is
[Mangle.dev_ctor] now and starts with the dot no reader token can
produce, beside .init-globals and .init-data. The colliding program
builds and prints 7.
Two comments in survey.sh, both of them reasoning rather than
behaviour. The counts argument against a per-name -O0 list was no
argument: excluding moves the counts just as much. What actually
carries it is that dies_segv builds both programs at -O0 on both
backends and asserts more than this sweep would. And dev-segv's park
under --dev is a forever-list reason that happens to land on a program
this list already covers, not a second reason for this list.
FIX.org takes the sweep, and one thing the sweep cannot say: the two
heap cases of bytes-copy.flan leak 24 bytes through flan_bytes_dup,
measured with --leak-check=full, and both corpora are blind to it by
policy -- detect_leaks=0 on one side and --leak-check=no on the other.
The row proves the copy is in bounds and written. It says nothing about
who frees it, and a green sweep should not be read as though it did.
--dev --sanitize did not compile. Any program, at any optimisation
level: clang 20's AddressSanitizer module pass segfaults on the module,
and the message it leaves behind is its own crash backtrace rather than
anything about the program. Reduced here to five lines of IR, and the
trigger is narrow -- @llvm.global_ctors naming a function that the
module only *declares*. Both of ours are declarations, because both are
C in the runtime.
This predates the crash-handler lane and is not its doing: the one-entry
table, with flan_dev_reg_enable alone in it, crashes the same way, and
that entry has been emitted since the registry was armed from a
constructor. What the lane did was add a second declaration to a shape
that was already crashing, where nothing built the combination to
notice.
So the table names a local definition that calls the two, which is the
shape clang emits for its own constructors, and it costs a call once
before main. The ordering it fixes was unspecified before -- two entries
at one priority -- and arming the registry before installing the handler
is the order that was wanted.
What it unblocks is the reason to care. flan_dev_crash_enable yields to
ASan through a weak __asan_init so the two do not both own SIGSEGV, and
that line could not have run, because the build it guards would not
link. It does now: a dev build of dev-segv.flan at -O0 under ASan takes
the fault, ASan reports it with the frame, and the handler stays out of
the way instead of parking. No alias covers the combination, so that
check was made by hand.
Three defects, all from lifting every def initialiser, none of which the
suite caught:
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 new
global ever gets — the host's .init-globals never calls its initialiser —
and both backends chose that image with Tast.const_init, which a def's
lifted Call fails by construction. Emit.initial_image reads the constant
back out of the lifted body; the x86 twin had the same bug.
Changing a global between def and defonce was silently ineffective: the
guard lives in the startup function compiled into the host, which a reload
cannot republish. Session.compatible refuses both directions and says to
restart; editing the value stays allowed.
And global/<n> no longer leaks into the signature refusal when a def is
retyped — the global loop names the same fact in words a reader can act on.
flan check prints def, defonce or defconst off grerun; (defvar) with no
arguments names the shapes rather than offering (defonce ); the docs,
plan.org, runtime comments and valgrind.supp are swept; BUILT.md states
the release-build cost and the uninit caveat.
The trio the author decided on 2026-09-20 is now all built: def is CL's
defparameter — its initialiser runs on every daemon re-run, unguarded, so
an edited initialiser repaints the same storage on C-c C-c plus re-run —
defonce (Clojure's name for CL's defvar, per the author) initialises once
behind the .init~once. flag, and defconst stays the image.
One parse arm reads both forms; the difference is Ast.reinit, carried to
Tast.global's grerun. Emit.startup_plan gives a def no guard flag, and
Check.check_global lifts every def initialiser — zero and literal
included — into global/<n>, so the host's startup reaches it through the
function cell and a re-evaluated def swaps it (Session's def_inits;
Emit.redefinition declares the cell for a non-sibling target). The old
defvar spelling is refused with the rename and both compiling spellings,
and every program, test, doc and editor list is swept — except sand.flan,
the author's live WIP, whose seven defvar lines are flagged in FIX.org
and keep its three dependent tests red on this branch.
A fixed array does not decay to a slice at a call, so passing one to a
function over [$t] meant writing (slice a 0 (len a)) at every call site.
(slice a) is the whole of it now and (slice a n) is the tail from n, filled
in by 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. Neither backend grew an arity case. A
target that is not already a name goes through a slot first, so (slice (f x))
calls f once.
at and slice also reach a string, because (bytes s) was the only route to a
byte and it is about to start copying. (at s i) is the byte, bounds-checked;
(slice s ...) at all three arities answers a string viewing the same bytes,
not a [u8], which would be a writable-looking view of storage the program
does not own.
Neither is a place, and the refusal lives in [indexed] rather than in
check_place, which is the part that matters. There are three routes to a
Pindex and they share no code: check_place, the single-index set arm that
checks its own target, and addr. Asked in check_place, the question is
answered for two of them and missed for the one a person writes — a store
into a string literal compiled, and the backends disagreed about it. So
[indexed] takes a ~place location and asks at every dimension, because
(at g 0 0) over a [[2 string]] reaches the string only at the last step.
One message, and addr gets it too, so it reads as value-versus-place rather
than as a rule about assignment.
Slicing an array a call returned is refused at every arity. The view
outlives the temporary, both backends print whatever the frame reused, and
nothing traps — which was already true of (slice (mk) 0 3) and only
survivable while nobody wrote it. (slice (mk)) is short enough to become a
habit. An array literal is not this case and stays legal.
Two backend cases. emit.ml's element_addr grew the String arm beside the
Slice one. x86.ml's index_len had answered None for a string — correct while
nothing could index one, and a skipped bounds check the moment something
could — and now reads the length word, so both check the same thing.
- SA_NODEFER. sigaction without it 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: the
kernel forces the default action. Fault, park, eval something at the
break loop that faults, daemon gone, exactly the author's session one
level in. Measured both ways; flan_crash_entered is cleared before the
hook so each break-loop fault still gets its line, and the case is pinned
(trap_park ~refault:true), confirmed to fail without the flag.
- Scope the handler to the thread it was armed on. A disposition is per
process and a merged dev session is one process, so this was shadowing
OCaml's SIGSEGV handler — and Stack_overflow — for the daemon's whole
life. Other threads chain to what was installed before. Arming per run
would leave the parked prompt's evaluations unprotected, since those are
program code too; the comment says so. Also makes the per-thread
sigaltstack honest.
- Sweep dyn-view.flan and string-eq.flan, which dev-loop added after the
first sweep. string-eq:46 wanted the aliasing outright: its comment is
about two slices sharing a base pointer.
- A StorageExhausted row for bytes, asserting the retry copies once and
whole rather than re-evaluating its argument.
- Gate the flan_dev_crash_enable declare to dev builds, so this lane adds
no dev-only text to a release module. flan_bytes_dup stays ungated: a
release build really calls it.
- Guard the section for wasm32, which compiles this file and has no
signals.
The INSERTIONSORT crash, all three rulings (FIX.org 2026-09-20):
- (bytes s) allocates a writable copy through the allocator surface —
context or (bytes s a), StorageExhausted with retry, a registry note in
dev builds (flan_bytes_dup, lowered like vec-new). (bytes-view s) is the
old zero-cost reinterpret, renamed, read-only by convention; every
in-repo reader swept over to it. (string b) unchanged.
- String constants were already read-only on both backends at -O0; now
pinned — bytes-copy.flan rows on LLVM/-O0/--x86, and dies_segv rows
asserting the write-through-view trap on both backends.
- A dev build installs a SIGSEGV/SIGBUS handler by the same dev-only
constructor slot that arms the registry: one line naming the address and
the innermost frame, then the trap-hook park — stopped, not dead, the
daemon serving. No agent: message and re-raise. Release builds untouched.
Pinned by trap_park over dev-segv.flan.
CLHS 4.3.6's update protocol, minus the user hook, on the dyn side's
defclass. Redefining a class used to be silent: a class is sugar for a
constructor defn, so the edit replaced a body and the instances already in
the program kept their old keys for ever.
Three pieces. A registry in flan_dyn.c holding each class's current slot
list and a generation, made only of interned kw_entry pointers so the
collector has nothing to trace in it and no root to push for it. A uint32
generation on the instance, fitted into the padding kind and mark leave in
front of len's alignment — sizeof(flan_obj) is 48 with it and was 48
without, and flan_dyn_obj_size is there so a later field that moves it
fails a test. And a registration thunk per reload, run by the agent
through flan_reload_call after the module's bodies are published: it has
to be a thunk, because the case this exists for is a class redefined and
not constructed.
Migration is lazy, at want_map, len's map arm and dyn_equal's. Slots kept
by name, gained slots nil, dropped slots gone, identity preserved, entries
rebuilt in the class's order so a migrated instance is indistinguishable
from a fresh one. Equality migrates both operands first, so it is over the
class as it is now.
The session had to stop refusing the constructor's signature change, and
does so only for a defclass and only when no compiled caller is left
behind. The checker gets there first in practice; the walk in eval holds
the reason locally rather than inheriting it.
The registry is advisory: a class instance is an open map, so a key a raw
put wrote that the class never declared is dropped by the next migration.
FIX.org says that plainly rather than pretending enforcement.
The author's revision. The name says what it writes, and the pattern is the
program's to choose: (dead-beef) is DEADBEEF, (dead-beef 0xBAADF00D) is
BA AD F0 0D. One byte-order rule covers both — a pattern's ascending bytes
are its big-endian bytes, which is how the hex literal reads left to right —
so every candidate DISCUSS.org listed is now spellable without the compiler
naming any of them.
The bare form is not a case a backend knows about: the checker writes
Tast.dead_beef_default in where the argument would have been, so
(dead-beef) and (dead-beef 0xDEADBEEF) are the same node and an acceptance
row prints both to say so.
The operand is an ordinary u32 expression, which is what the byte arm
already accepts for its byte. A literal is byte-reversed at compile time and
still reaches the loop as an immediate; a computed one is reversed at run
time, by llvm.bswap.i32 on one backend and bswap on the other, after which
the tail shifts its bytes out of the word rather than folding them. The
program runs a computed pattern over lengths 6 and 7 deliberately: that is
the case a constant-only implementation would pass by accident.
filled is untouched, and so is the fill boundary.
DISCUSS.org's sentinel-fill idea, built as two builtins because the author
asked for both: a memset with a byte the program picks, and the fixed
DE AD BE EF pattern a hex dump reads as DEADBEEF.
Both are spelled the way (zeroed) is — the value of whatever type is
expected of them — so (set grid (filled 0xFF)) fills a place and there is
no second, place-taking form beside set.
What may be filled is numbers, and structs and fixed arrays built out of
them. Everything else is refused by name: a filled dyn is a collector root
pointing at nothing, a filled Vec header frees a wild address, a filled
slice length is a bounds check that passes, and a filled bool is an i1 to
LLVM and a whole byte to x86, which is the one divergence this feature
cannot have.
The byte fill is llvm.memset / rep stosb. The four-byte pattern cannot be
a memset on either side — the intrinsic takes one repeated i8 — so it is a
counted dword loop in emit.ml and rep stosd in x86.ml, with the pattern
bytes and their little-endian word living once, in Emit. A size that is
not a multiple of four ends on DE, DE AD, or DE AD BE.
The dyn arithmetic and ordering entry points printed their sentence with no
file, no line and no column, which in a dynamic-first language is the type
error arriving from nowhere. flan_rt.c's bounds and arithmetic traps have
taken an emitter-threaded (loc, loclen) pair since they were written, and
[flan_dyn_cast_kind] is the fresh precedent on the dyn side; this is the same
pair, threaded through [arith], [want_nums] and [order] to the five
arithmetic and four ordering entry points. [eq] never traps and takes none.
The three trap printers take the pair and print nothing for a NULL loc, so
every other call site in the file — and test/dyn_ops.c, which calls the
runtime directly and has no source position — keeps its sentence byte for
byte. [trap_oom] is left alone: it is reached from [gc_alloc], which has no
site to be given and would have had to grow one on every allocation path in
the file for no reader's benefit.
A let binds in sequence, so binding a method's names pairwise from the
generic's reads a name it has just bound. A generic [a b] with a method
[b a] -- a swap, which is what renaming parameters most often is -- was
handed its first argument twice and could not reach its second at all;
[b c] is the same bug one step shorter. Every argument is now copied
into a temp in the unspellable ~ namespace first and every method name
bound from a temp, uniformly rather than only for the pairs that
collide, because a rule that fires on the tangled case alone is one
nobody exercises. Both shapes are in dyn-class.flan, where the values
are what is wrong rather than the types, and across all three rows.
With it, two things the descriptor fix left behind. descriptors_asm
wrote the descriptors into .rodata and a descriptor holds the address of
its own offset table, so every one of them was a relocation in a
read-only section -- a DT_TEXTREL, which ld warns about in a PIE and
refuses in a shared object, and which was warning in the new daemon
case's own output. They go in .data.rel.ro now, in both the executable
and the reload module; readelf -d on a reload module from each backend
shows no TEXTREL. And FIX.org: the stale held line for item 6, the
fourth read site of the shape tag (say_render, not just print), the
warning that a class's qualifier is the importer's alias so a
hand-written :a/point is coupled to one import's name, and the gap
flagged for the next sweep -- marking through a descriptor an x86 reload
module emitted is still unexercised.
A defclass is a named dyn map with a shape tag, and a generic function
dispatches on it two ways: CLOS's, where the dispatch value is the class
of the first argument, and Clojure's, where a body computes it. They are
one mechanism and not two — a class dispatcher is (class-of arg0) as the
dispatch function, which is what lets a method written for the class
point and one written for the value :point be the same branch.
(defclass point [x y])
(point 3 4) ; the constructor, positional
(class-of p) ; :point, or nil for anything else
(defgeneric area [self] dyn)
(defmethod area point [p] (* (get p :x) (get p :y)))
(defmulti describe [x] dyn (get x :kind))
(defmethod describe :square [s] ...)
(defmethod describe :else [s] ...)
A slot is a key in the instance's own map, so get, put and has-key? are
how one is read and written and no operation was added for any of it.
What the class adds is the tag, and the tag lives in the object's header
rather than in a reserved entry — the queue's note said a reserved key
and this departs from it, because a key would be counted by len, walked
by the renderer and compared by equality, so every instance would answer
a length one larger than its slot count and print a key nobody wrote. A
header field cannot be reached by get or put at all, so no user key can
collide with it. It costs nothing: the map arm of flan_obj's union grows
to the size the view arm already had, and sizeof(flan_obj) is unchanged.
It needs no tracing either — the tag is an interned keyword entry, which
is immortal and is not a collector object.
The tag shows up in exactly three places: class-of answers it, equality
compares it (two instances of one class compare by their slots; an
instance and a plain map with the same entries do not, which is
Clojure's answer for a record beside a map), and both renderers print it
— #point{ :x 1 :y 2}, Clojure's own spelling.
None of the four forms reaches the checker. lib/classes.ml turns the
whole declaration list into ordinary defns at the top of build_program,
the way Shim.expand already turns a declare-c into a declare plus a
defn: 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. It is a pass and not a macro
because a macro sees one form and the generic's body is not decidable
until every method is in hand — a method may be written above its
generic, below it, or arrive at a reload an hour later.
That last case is why the method bodies are inlined rather than lifted.
A generic is exactly one top-level name, so adding a method to a running
program is the ordinary redefinition of one function, through the cell
every call site already goes through. session.ml names the generic
alongside the method's own declaration name for that reason. The cost,
recorded rather than hidden: a method is not separately callable and is
not a frame of its own.
A dispatch that finds no method signals NoMethod, a prelude struct
carrying the generic's name and the dispatch value that missed. A
condition and not a trap, because a miss is something a program can be
written to answer, and handler-case around the call is the shape. Its
value field is dyn, the first condition here with one; the per-type
descriptor an item-2 struct carries is what the collector reaches it by.
No restart is established at the miss, which is BoundsError's decision
taken for BoundsError's reason.
Both backends, identically: the two new runtime entry points are
declared in emit.ml and the x86 backend needs nothing, since a dyn call
is a dyn call there. Deferred and written down in FIX.org: inheritance,
multi-argument dispatch, :before/:after/:around, named-slot
construction, unknown-slot checking, and computed dispatch values.
The refusal moves to the checker: Emit.const refused a computed defconst by
name while the x86 backend ran it through the startup function behind an
.init~once. flag, like a defvar, so the two backends disagreed about the same
program. One refusal in Check.const_defconst_init ends that, and it is the only
place that can name the way through.
The accepted set is unchanged: Tast.const_init's, which is Emit.const's and the
x86 data_sym path's, plus the integer arithmetic collect's folding pass has
already turned into an Int before the initialiser is looked at.
Emit.const's two refusals become a failwith no program reaches; emit_global's
gconst || const_init loses its left half; x86 needed no edit, since it never
classified by the form. test_flan's infers probe asks Check.expression now that
a defconst can no longer wrap an arbitrary expression.
flan.abi.require was spelled by hand in both backends, which is the one
job Mangle has. Moved; emit and x86 produce byte-identical output on the
reload path either way.
Four comments in the dyn-cast code asserted things that are not true.
The warning's location prefix now reads like every other loc-bearing
runtime diagnostic instead of inventing a shape. widen's contract says
what cast_dyn actually does with it. The thread-safety note names the
torn {ptr,len} overread rather than a duplicated line, and says why no
lock. The site table's borrowed loc pointer names what keeps it valid.
The memory op's note claimed a completeness it does not have: dyn push
and put may allocate and are deliberately silent. Said so, in the note,
in the classifier, and in FIX.org where the decision belongs.
The documented flycheck form only matched warnings, so a real error
made it say the checker returned non-zero and found nothing.
flan-clear-memory cleared one buffer where the toggle clears all.
Two comments claimed test/dyn_ops.c calls every function flan_dyn.h
declares; six are declared and never called there.
flan_dyn_stub.c's deadness is written into FIX.org for the author to
decide on. Not deleted here.
The defconst divergence is dated from the history rather than asserted, and
the claim that it is the backends' only disagreement is gone — x86.ml has
unsupported paths of its own.
The guard flag was named .init-once.<global>, and . and - are ordinary
symbol constituents, so (defvar .init-once.x i64 7) beside a computed x
emitted the same symbol twice: the dev build died at the assembler on both
backends, and the flag's Bool was registered over the user's global in
Emit.globals so the store came out as an i1. It is .init~once.<global> now;
~ terminates a symbol in the reader, the same trick destructure~N uses.
test/programs/dev-rerun.flan carries such a global and no new printed line.
Three places said a defconst is the linker's image on one backend and a
constructor's stores on the other and a re-run reaches neither. Tast.const_init
splits on the initialiser and not on the form, so that holds only for a
constant initialiser; a computed defconst is guarded like a defvar on x86 and
refused outright by emit.ml's const. The sentences now say that, including
the divergence.
emit.ml also claimed Check.no_transfer_in_init made it impossible to leave the
guarded branch between the store and the flag. It is syntactic over the
written initialiser only: a callee can signal unhandled and take the call's
transfer edge out, leaving the flag false — which is what should happen, since
the next run retries. Read off the emitted IR for such a program.
The x86 float-Rem comment says why the dead movabs before fmod is kept, and
its mid-sentence line break is gone; math3.flan's first float-% line prints
six values, not four.
The %handler, %restart, %fninfo and %flanframe shapes were written twice:
as LLVM type strings in emit.ml and as hand-computed byte offsets in x86.ml,
with the two %fninfo initialisers spelled a third and fourth time. Emit.Rt
now holds one field list per struct and derives all four — the type string
and the getelementptr index for LLVM, the offset and the size for x86, and
the initialiser for both. The derived numbers were checked against every old
constant before the call sites moved.
The flan. prefixes were spelled in four files, including both backends
hand-writing "flan." ^ name for a DWARF linkage name instead of calling
their own helper. Mangle now holds them unquoted; each backend adds its own
sigil. The ABI markers stay apart on purpose: flan.abi.llvm and flan.abi.x86
differing is what makes the loader refuse a crossed pair.
The float-to-integer cast bounds and the division-check elision policy are
Emit.cast_range and Emit.div_checks. The second is a language decision and
had been byte-identical in both files; the first had drifted cosmetically.
emit and emit --x86 output for all 166 test/programs, at -O0 release, --dev,
--debug and --dev --debug, stdout and stderr, is byte-identical to the
pre-change compiler.
flan_merged_park called flan_dyn_root_reset, which emptied the collector's
root stack. The frames' roots had to go — main is left by longjmp, so they
name stack the next run overwrites — but the dyn globals' roots are on that
same stack, pushed once by the emitted main and never popped, and the park
took them with the frames.
The park is not a quiet state. It services evaluated thunks, a thunk
allocates, and an allocation collects. So a program with (defvar config dyn)
answered (get config :s) with its string before any thunk ran and with nil
after one that allocated past the heap's floor — a read of memory the sweep
had freed, answering nil by luck of what the freed words decoded as.
The emitted main now brackets its global pushes: flan_dyn_root_globals_begin
empties the stack, the pushes go on, flan_dyn_root_globals_end records how
many of them there are, and the park resets to that line instead of to zero.
Nothing between the two allocates, which is what keeps the globals from being
swept in the window where they are unrooted — and [begin] emptying the stack
rather than adding to it is what makes a re-entered main re-root the same
globals rather than push a second copy of each, which also closes the other
half: a re-run used to re-push roots over slots left dangling by the park.
Both emitters, because the dev loop's default backend is x86 and a fix in one
lowering is not a fix. A program with no dyn globals emits neither call and
its root stack still resets to empty, which is what an empty push list should
leave behind.
flan_dyn_root_pop now clamps at the globals rather than at zero. An
over-popping frame eating the globals is the one way that clamp could turn a
miscount into this same use-after-free.
Covered twice. test/dyn_ops.c's park mode is the runtime's half — a run, a
park with a collecting thunk in it, and another run, three times over,
asserting both that the global survives and that the frame's five hundred
objects do not. Under ASan the old reset reports heap-use-after-free in
flan_dyn_tag with the free in gc_sweep; under memcheck it reports 24 errors
and still prints the right answer, which is the shape of the bug. test_dev.ml
drives the whole daemon over its socket on both backends against
programs/dev-dyn-global.flan.
Not touched, and it wants a decision rather than a patch: a re-run re-enters
flan_program_main, which re-runs the lifted startup function, so every global
with a computed initialiser is reset by a re-run. That contradicts dev.ml's
own note and FIX.org item 1. It is independent of this — the roots are right
whether or not the values are re-initialised.
Nor is this the reload path. A defvar added by an evaluation gets its storage
from flan_dev_global (emit.ml's new_globals, x86.ml's counterpart) and there
is no flan_dyn_root_push anywhere on that path in either backend, so a dyn
global added to a live session is unrooted. That is a separate defect with a
separate fix, and nothing here makes it better or worse.
A (Vec T), a slice or a fixed array crossing into dyn no longer refuses; it
is a view, one word in the box, over the container's own storage. Reads box
the element on the way out; writes tag-check the dyn value's tag against the
element type on the way in and trap, by name, on a mismatch, never coercing
or silently storing.
The open question the decision left — whether the descriptor points at the
container or snapshots pointer and length beside it — is settled by kind. A
Vec view holds the address of the Vec's own header (flan_rt.c's flan_vec,
restated in flan_dyn.c under the file's standing "if either table changes,
change both" rule) and reads ptr and len live on every operation, so a push
that reallocates cannot leave it stale: flan_vec_grow overwrites that same
header in place, and there is nothing captured at the crossing for the
growth to invalidate. A slice and a fixed array cannot grow, so a flat view
snapshots data and length once; pointing it at the value's own slot instead
would be worse, since a slot's lifetime is not the slice's.
The element set is i64, f64 and bool, not everything box already handles
typed-to-dyn. A string element's dyn form is a pointer into the collector's
heap, and a typed container's storage is arena or stack memory the collector
never scans — a wider set would let a write plant a live reference nothing
ever traces, which no care at the write site closes. (Vec string) and a
typed (Map K V) keep the "does not cross into dyn yet" refusal, now for that
reason.
flan_dyn.c gains a fourth object kind, OBJ_VIEW, and flan_dyn_len/at/set_at/
push and the printer each grow one branch for it beside the existing vec
one. A view's own stale-container check is the runtime's own spelling
(flan_trap, park-and-inspect) rather than flan_rt.c's rt_die, per the
duplicity doctrine; growing a Vec through a view calls flan_rt.c's own
flan_vec_push rather than re-implementing doubling and allocator adoption a
second time. (set (at target i) x) against a dyn target — a plain dyn vec or
a view alike — was a hole in the base dyn milestone rather than something
item 3 introduced; it is wired to flan_dyn_set_at here because a view's
writes needed it to exist at all.
Both backends: emit.ml and x86.ml both already passed a Vec or a Map to a
runtime call by address rather than by value; a fixed array crossing into a
view needed the same arm added in both, for the same reason — a copy would
view the copy and never see a write to the caller's own array.
test/dyn_ops.c drives the runtime directly with a hand-built Vec header and
a plain C array, ahead of any compiler involvement: reads, writes on both
element kinds, the tag-check refusal on every element kind, the range
refusal, and the push that grows and moves a hand-built header out from
under the view watching it. test_flan.ml turns the old "does not cross into
dyn yet" refusal into acceptances for Vec/slice/array, keeps it for a string
element and for Map, and adds the element-restriction refusal by name.
test/programs/dyn-view.flan is the compiler-level survey: a Vec view mutated
through both sides including the grow-and-move case, a fixed array's and a
slice's views, a bool Vec's view, and its own two trapping modes for the
acceptance rows to run against. test_sanitize.ml carries the survey's happy
path; test_dyn.ml's new refusals are the runtime's own.
A dyn scrutinee is no longer required to already be a bool: it is tested
for truthiness, Clojure's rule, not C's or Python's — nil and false are
the only falsey values, and everything else, including 0, "", an empty
vec, an empty map and a keyword, is truthy. A typed scrutinee is
unchanged and keeps needing a strict bool.
The runtime side is one new entry point, flan_dyn_truthy
(runtime/flan_dyn.c/.h), reading the tag directly rather than unboxing —
it never traps, unlike flan_dyn_need_bool. Both backends reach it the
same generic way flan_dyn_need_bool already did: check.ml emits an
ordinary Rt call plus the existing i32-to-bool Cast, so emit.ml only
needed the LLVM declare added and x86.ml needed nothing at all.
check.ml's check_truthy is the one funnel every boolean position in the
language goes through: if's own condition, while's, and not's argument.
when and cond reach it for free because they desugar to Ast.If in
parse.ml, and so does and's condition; or's condition does too, but its
answer position is a separate story — its short-circuit sentinel is the
then arm of its own if, which check_if types before anything else, so a
non-bool dyn value reaching that position still meets the strict bool
boundary. and's sentinel sits in the else arm instead, so the real
value's type wins and and hands back the actual last operand,
Clojure-style; or does not get that for the reason above, and reordering
it is a decision for another day, not this one. shortcircuit in parse.ml
carries the note.
check_truthy checks the scrutinee with no expectation first, so a dyn
value takes the truthy path and everything else takes the strict one. A
refusal on that second path is re-checked with the old want:Bool rather
than reported from the bare check, because a bare integer or float
literal, or a bare None, answers "what type is this" differently than
"is this a bool" — check.ml's own arms only give the nicer sentence
("expected bool, found the integer literal 5", "expected bool, found
None") when asked the second way, and that sentence is preserved exactly,
letter for letter, against what a typed if already said.
test/programs/dyn-if-truthy.flan surveys every falsey and truthy case —
nil, false, true, 0, a nonzero number, an empty and nonempty string, an
empty and nonempty vec, an empty and nonempty map, a keyword — through
if, when, cond, and, or, not and while, with real output pinned in
test_acceptance.ml across LLVM, -O0 and --x86. test_flan.ml covers the
checker side directly: a typed if still takes a bare bool and still
refuses a non-bool scrutinee and a bare None with their original
messages, a dyn if/not/while/when/cond/and/or all accept a non-bool dyn
condition. test/dyn_ops.c gets a matching set of direct calls to
flan_dyn_truthy, keeping the header's own contract with the C side.
(Some nil) at an already-(Option T) want reported expect's bare-T
sentence instead of its own: checking the argument against inner's
element type routed a literal nil through expect's "wrap the type in
Option" refusal before Some's own is_nil_lit guard ever ran, and the
advice was nonsense there — the type already is one. The argument is
now checked with no want when it is syntactically nil, which is what a
bare nil resolves against on its own, so it arrives at Some's own
check still dyn and still nil.
no_fallback_slots cannot see the slot unbox_option mints: %dx/%ax are
the pool-ran-dry fallback for a temporary root_plan counted, and a
named local root_plan never counted emits neither mark. The comment
where nil-option.flan and some-nil.flan were added to that list said
otherwise; corrected to say what the check does and does not cover,
and to record that the slot was verified by reading the IR directly
instead — flan.unbox-opt's dyn slot is pushed, flan.as-dyn's is a
plain alloca correctly, since its element is always scalar there.
dyn_offsets falls through Option/Vec/Map with no arm of its own,
correct today only because Check.hidden_dyn refuses a dyn inside any
of them at every storage site first. Commented at the fallthrough,
naming hidden_dyn as the gate and the typed-container view (M2 item 3,
in review now) as the kind of change that could relax it for Vec/Map
without anything here pointing back.
Both directions of the boundary go through expect, the way every other
dyn crossing does. A dyn's tag decides which case an (Option T) becomes
on the way in; an Option's own tag decides nil or a boxed payload on the
way out. box_option/unbox_option build the same If-over-a-tag shape get
and map-remove already build for the same reason, reading an Option's
tag and payload with the raw Field access Render's structural printer
already uses — nothing new for either backend to lower. A literal
Some/None skips the runtime check entirely, since the checker already
knows which case it is.
A bare T has no None to become. The literal nil the checker can see is
refused right there, at compile time, in expect itself — the author's
decision to do both halves rather than settle for the runtime trap
alone. Everything one step removed from the syntax — a dyn that only
turns out to be nil once the program runs — reaches flan_dyn_need_i64's
existing DynType trap, unchanged; there is no dataflow in this checker
for it to be otherwise (see "Ownership tracking repealed").
(Some nil) is refused the same way: the literal at compile time, with a
message saying why nil and None would collide; a dyn that turns out to
be nil only at run time through the new flan_dyn_need_not_nil, which
traps by the same route flan_dyn_need_i64 does.
(Option (Option T)) does not cross either direction — boxing Some of an
inner None would box it as nil, indistinguishable from the outer None,
the same ambiguity (Some nil) is refused for. The type itself stays
legal on the typed side; only the crossing does not exist for it.
(Option dyn) needs no case of its own in the boundary code — the
payload is already dyn, so box_option/unbox_option treat it as the
identity — but it is not yet a value a program can hold anywhere. The
per-type-descriptor pass (M2 item 2) refuses it at every storage site
today, the same way it refuses (Vec dyn), because a struct's dyn fields
are marked by byte offsets and (Option dyn)'s payload has none. Item 4
does not lift that gate; it only makes the boundary already correct for
the day items 2/3 do.
expect grew a ctx parameter to build the fresh slot the two new
crossings need — every call site threaded through, one context
mismatch caught and fixed in check_fn's tail-expression case along the
way. var's None case grew a direct Dyn arm: None at a dyn want is nil
outright, with nothing to build.
nil-option.flan carries the crossings that succeed and ends on the
bare-T trap; some-nil.flan is (Some nil)'s run-time half, kept in its
own file the way dyn-boundary.flan is one trap per program. Both are
in no_fallback_slots and test_sanitize.ml: the new dyn temporary
unbox_option's tag test mints is rooted, and reads its Option's tag and
payload through ASan clean, --sanitize matching the unsanitized run
byte for byte.
A descriptor's symbol was the type's printed form with every character an
assembler would refuse replaced by a dot, and the table was keyed by that.
The mangle is many-to-one — a Flan name may hold -, +, *, ? and / — so row-a
and row+a were one entry, the second of them was pushed with the first's
descriptor, and the collector read at another type's offsets: past the end of
the object when the first was the larger, and never where the second's dyn
actually sat. ASan named it, a stack-buffer-overflow inside gc_mark_all. It
is the same corruption root_plan pools its temporaries to avoid, arriving
through the name rather than through the supply, which is a lesson about where
identity lives: the table is keyed by Types.to_string now, which is an
identity, and the symbol carries a counter so two types cannot collide however
they mangle. dyn-struct.flan grows the pair, held live across the churn, and
an acceptance assertion asks the emitter directly how many descriptors it
wrote under that label — two, or the two are sharing one. That assertion is
the half with teeth: whether an overread off the end of a frame slot lands on
anything is luck, and the run's own output was not red under the defect.
The cap on a flattened array's offsets was bypassable by the thing it was
meant to stop. [4611686018427387904 S] wrapped the multiplication negative,
so the test read as under the cap, the declaration was accepted, and the
emitter then sat building the offset list until something killed it. A
refusal that overflows into an acceptance is worse than no refusal. The count
saturates at one past the cap now and the message says more-than rather than a
figure that came out of a wrap.
dyn_ops.c's second assertion had no teeth: a marker never writes through a
root, so "the word at a non-dyn offset is untouched" passed under any marker
at all. What discriminates offset-driven from word-driven is a dyn word the
descriptor leaves out, holding five hundred objects, that must NOT survive —
and it is checked by adding its offset to the table and watching the line go
red.
dyn_anywhere descended through Ptr and Slice, so (Vec (Ptr Cond)) was refused
with a sentence about a dyn inside a type whose storage contains none. A
vector of pointers to condition structs is an ordinary thing to write. It
stops at a pointer now, which is the line hidden_dyn already took for a bare
(Ptr S) and the line the whole argument rests on: a pointer is a view of
storage something else roots.
Which leaves the one honest hole, and it is named at the boundary where it
opens rather than left in a comment. Storage C hands back was never rooted
and never will be, so a (Ptr S) crossing a declare with a dyn anywhere under S
is refused by name — the same sentence a bare dyn already gets there, one
level down.
dune test --force: green, 0 failures. dyn-struct.flan clean under ASan and
UBSan and identical at -O2, -O0 and --x86.
The crux was never where to put a descriptor; it was how an instance finds
one. A bare struct on the stack has no header to hang a pointer off, and
giving it one would change the layout C interop agrees on, change the stride
of an array and change what embedding a struct in another costs. So it has
none. The instance never carries a pointer to its type and the collector
never derives one from the bytes: the pairing of an address with a descriptor
is made at the *push*, by the code that put the value there and therefore
knows its static type. That is the same trick the shadow stack has always
used, and it makes the stack case the easy one rather than the impossible one.
A descriptor is the size of an instance, a count, and a table of byte offsets,
emitted once per type as private static data. Flattened, not a graph — a
struct held by value contributes its offsets shifted by where it sits, and a
fixed array contributes its element's once per element — so nesting costs
nothing at run time and there is no recursion in the marker. The offsets of a
big array would be a big table, and that is capped with a sentence rather than
half of the repeat form item 3 will bring.
Four places a value of such a type can live, and all four are rooted: a frame
slot, a global, the temporary a call's by-value return is spilled into, and
the slot a condition that is not a place is evaluated into. The last two are
new and are the ones that were not obvious. A callee roots its dyn words and
pops them in its epilogue, so between the return and the caller's store the
only copy is a register, which a collector that finds its roots by address
cannot see; the same hole was open for a Flan call answering a bare dyn and is
closed here too. And a condition crosses as a pointer into the signalling
frame while a handler allocates, which is exactly what the original refusal
said could not be made safe.
dyn_roots grows into root_plan and both backends read it, which is what the
older note about one counter deciding both ends was always for. The aggregate
temporaries are pooled by type rather than handed out in mint order: a
positional supply that drifted would pair an address with another type's
descriptor, and marking arbitrary offsets off a base is corruption where a
missed root is only a bug. Pooled, the worst a drift can do is run out.
What is still refused is a dyn no static offset can reach — inside a typed
container, in a data type's payload or a union's members where the cases
overlay, or under an Option where the payload exists only beneath the tag.
A (Ptr S) and a [S] are deliberately not on that list: neither owns storage,
and the only storage this compiler hands out for such a type is a frame slot,
a global or a fixed array in one, all of them already rooted. That is what
lets a handler clause take its (Ptr Cond) and read a dyn payload.
test/programs/dyn-struct.flan is the evidence. It runs forty thousand rows
past flan_dyn.c's one-megabyte floor, so marks and sweeps really happen, and
it holds live values through them in all four places at once. It has teeth:
with the descriptor walk stubbed out of the marker, the kept vector's length
comes back 24 instead of 628 and its first element is a stale word. Clean
under ASan and UBSan, same output at -O2, -O0 and --x86. dyn_ops.c grows an
aggregate-root mode so the runtime half can be wrong on its own, with a
header word holding a bit pattern that looks boxed and is not a dyn slot.
--no-gc still refuses, and had to be told how: a struct with a dyn field is a
collected value even when no expression in the program ever has the type dyn,
because a zeroed one still has a word the collector is asked to mark.
dune test --force: green, 0 failures across every suite.
Types.is_equatable splits from is_comparable: a string answers equal?
now, bytewise, but still answers no to ordered? — there is no collation
the language has picked, so < and friends keep the refusal they had.
The comparison itself is one new runtime entry point, flan_str_eq
(runtime/flan_rt.c), length-mismatch and same-pointer fast paths ahead
of the memcmp, called identically from both backends: emit.ml pulls a
string's ptr and length out of the %slice SSA value and calls it
directly in the Eq/Ne arm; x86.ml adds an arm ahead of the generic
scalar comparison that reaches it through call_native, flipping the
answer for != the same way Not already flips a bool.
test_flan.ml covers the checker side directly and through a generic
instantiated at string, including the two different ways ordered? and
equal? fail at that type. test/programs/string-eq.flan is the survey
program — same pointer, differing lengths, equal content at distinct
addresses (a literal against a fresh heap string), a difference in the
last byte, and the empty-string cases — with acceptance rows for LLVM,
-O0 and --x86 in test_acceptance.ml.
The dyn runtime gets a map object and an interned keyword, alongside the
vec it already had. {:a 1 :b s} is a map literal wherever a struct
literal isn't — the parser tells the two apart by whether the first form
in the braces is a .field symbol — and a bracket literal builds the
runtime's own vec rather than a typed array wherever a dyn is wanted, which
is what lets a map literal's values nest arrays and maps freely. get, put,
len and has-key? all learn a dyn-map arm alongside the typed-map one they
already had, and (keyword s) builds the same interned value a :foo literal
does, for a name that only exists at run time. nil is now a literal, the
dyn absence value that get answers for a key a map does not hold.
On the runtime side, flan_dyn.c gets an OBJ_MAP that shares the vec's
storage arm and doubles its accounting, a linear-scan intern table for
keywords that makes equality an identity compare, and structural map
equality by lookup rather than position. The marker traces a map's
interleaved keys and values the same way it already traced a vec.
edn/read and its callers move off the old (Option Value) union entirely:
a document is plain dyn now, sets are dyn maps to true, and arena-edn.flan
is retired along with the union it demonstrated. The acceptance suite's
edn-read and json rows were recaptured against the new shape, and a new
dyn-map.flan program exercises the map and keyword operations end to end,
including a 200k-iteration churn loop against a rooted map that runs
GC for real, across the LLVM, -O0 and x86 rows, and under the sanitizer.
Keywords are dyn everywhere an enum isn't expected, which changed what a
couple of existing checker tests actually see refused; both were updated
to the sentence the checker gives now rather than the one it used to.
(defn compute [] i64 (handler-bind [...] (risky))) printed 0 through LLVM
and 2 through --x86, and neither was the restart's answer. The divergence
was real and the cause was in neither backend: check_handler_bind wrote
[ignore want] and typed the form Unit, so a unit in value position was
never checked against the expectation that would have refused it. Both
lowerings then answered a caller that had no business asking -- emit.ml a
literal zeroinitializer, x86.ml whatever the body's last form had left in
the destination slot. One of those looked like a value.
Unit was the wrong answer anyway. Every use of handler-bind in value
position in this repository -- restarts.flan, cleanup.flan,
p6-transfer.flan, p10-defer-transfer.flan -- writes it as a restart-case
body, where §3 requires the body and the clauses to agree in type; making
the form unit refuses all four. So it takes with-allocator's shape, which
is the same shape for the same reason: the body's last form is the value,
threaded through [expect] like any other. handler-case, whose value is the
handler's rather than the body's, is untouched and still refused by name in
parse.ml -- that difference is the whole of what separates the two, and it
is not this one.
emit.ml returns [last] with no phi and no slot: the pad terminates at
current_pad and never at the join, so the join has one predecessor and the
body's value dominates it. x86.ml needed no change at all -- it had been
passing dst and the type through to the body all along.
p12-handler-value.flan is the shape the survey could not see, plus the
neighbours a divergence usually travels with: a clause parameter, nested
restart-cases, a defer between the signal and the restart-case, and f64
and string across the transfer. All six already agreed; the handler-bind
value was alone. @x86 MATCH 128 -> 129, DIFFER 0.
A defer is in the typed IR twice -- spliced into the body for the normal path,
and again in fdefers for the path a transfer leaves through -- so a dyn
temporary inside one is emitted twice. dyn_roots counted only the body's, and
the second copy went into slots nothing had rooted.
Nothing failed, and that is the whole reason this is worth a commit of its own.
dyn_tmp falls back to a plain slot rather than unbalancing the stack, so the
pushes and the pops still matched, the program ran and printed the right answer,
and the values were simply invisible. Against a stub that never collects there is
no symptom to find -- no leak, no crash, no wrong number. It would have become a
symptom the week the real collector landed, in a defer reached only on a handled
condition, which is close to the worst place to start looking.
What found it was the IR: a rooted slot is spelled %dr and the fallback %dx, and
the assertion is that no dyn program in the corpus emits one of the latter. That
is now a test over all five dyn programs, and it is the only check in the lane
that can see a missing root while there is still nothing to lose one by. When
the collector arrives it is the thing to extend rather than replace.
Also checked, both clean: flan dev --llvm builds and runs a dyn program, which
is the route the x86 refusal sends people to and would have been a link error in
the worst possible place; and the daemon's own refusal already names the flag.
A precise collector has to be told where the live dyn words are, and the shadow
stack next door is the precedent for where that goes: set up in the entry block,
undone in ret, which is the one funnel all five exits pass through -- the tail,
both returns, the none arm of (some x), and the landing block a handled
condition unwinds through. A pop written only on the normal path would leave a
frame's roots on the stack after every handled error.
It differs from the shadow stack in two ways, and both are forced. It is not
gated on dev: a backtrace is a convenience and a collector that cannot find its
roots frees live values. And it is a count rather than a saved head pointer,
because the ABI offers root_pop(n) and no way to read the stack's height -- so
the number has to be known before the body is emitted, since ret runs during
emission and a tally accumulated as roots were discovered would be short at
every early return. dyn_roots works it out up front by walking the same nodes
the emission will visit, the slots are minted from that count at entry, and
dyn_tmp only hands them out. The pushes and the pops balance by construction
rather than by two walks agreeing.
Every dyn-producing call is spilled into a rooted slot the moment it exists. An
SSA value is invisible to a collector that finds roots by address, and the next
allocation could be the one that frees what it holds. Rooting all of them rather
than only those that outlive a call is conservative and is the only thing
available here: this file has no liveness and no lexical scope, the checker
having resolved both into flat slot indices long before. The cost is a stack
slot and a store per dyn value at every optimisation level, because a rooted
alloca has its address escape and mem2reg cannot promote it. That is the price
of an address-registration ABI rather than stack maps.
A function with no dyn emits nothing at all -- no push, no pop, not a pop of
zero -- which is what makes an annotated program's IR identical to what it was
before any of this existed.
Globals are rooted in main, before the startup function that fills them and
before any other push, because every pop takes the top of the stack and these
are the ones that must never be at the top. They are never popped, which is what
a global's extent means. A dyn global needed no new machinery otherwise: a call
is not a constant, so it is a computed global, and that already existed.
(vec-new dyn) is not a (Vec dyn). At milestone 1 the heterogeneous container is
the dyn runtime's own object and its type is dyn like everything else the
runtime hands back, which is what lets push, at and len on it be the dyn
operations instead of a type-erased Vec over eight-byte elements. It takes no
allocator, and the refusal says why: the storage has to be storage the collector
already knows about, where a Flan Vec's block would hold roots inside memory the
collector does not own.
len answers an i32 and at answers a dyn. The asymmetry is deliberate -- a length
is what an index loop compares against, and handing back a boxed number would
make (< i (len xs)) a dyn comparison and two allocations an iteration.
The operand-order bug, which the first test could not see because both its
operands were dyn: (+ n x) over a typed n and a dyn x threaded i64 into the
second check, expect did what an annotation site had asked for and unboxed, and
the result was a machine add of a value the runtime was never asked about -- the
program trapping on a float instead of promoting it, with nothing in the source
to say why. (+ x n) boxed correctly, so it was visible in one operand order
only. binary now takes dyn_ok from the operators that have a dyn lowering and
checks both operands on their own terms, which is safe exactly when neither
needs an expectation to check -- a literal still takes the other's type, and a
keyword still gets one, since :lo has no meaning without it.
Cast had no bool arms, so the bool boundary failed to emit; reachability hid it,
because the program that used it dropped the function. dyn does not cross to C:
it is one word and would have passed as an integer, and C has no way to ask what
the word means. A condition may not carry one either, nor hold one in a field --
a payload crosses a handler boundary and has to stay rooted across the transfer,
which is the collector's question and milestone 2's.
The boundary and the operators, which are the two halves of dyn being a type
rather than a word the checker tolerates.
Typed to dyn is implicit and dyn to typed is not, and the asymmetry is the
design: boxing loses nothing and can happen wherever a dyn is wanted, while
unboxing can fail at run time on a value the compiler cannot inspect, so it
happens only where somebody wrote a type. Both go through expect, because
expect is already the one place a wanted type meets a produced one, and every
annotating site already calls it.
Literals take their width from the dyn, not from the default. (defvar x dyn 5)
holds an i64 five: the ABI carries one integer width, so the defaulting question
never arises, and the literal is built at i64 rather than boxed after defaulting
to i32 -- which also means 3000000000 is a dyn integer.
An operator with one dyn operand is the runtime's. binary has already checked
the second operand against the first, so a mixed pair arrives with the typed
side boxed and the fold only has to call flan_dyn_add instead of adding. The
comparisons answer bool and not a dyn holding one, because a comparison is
almost always the test of an if; a program that wants it as a value boxes it
again for free at that boundary. = and != never trap -- two values of unrelated
types are unequal, not an error -- and the orderings do.
Types.equal had no Dyn case, so dyn was equal to nothing including itself.
print hands the whole value to the runtime rather than walking it: every other
arm of the structural printer exists because a Flan value carries no header and
only the compiler knows what it is, and a dyn is the exact reverse.
The compiler carries the dyn runtime the way it already carries flan_rt.c, with
the header pasted in front of the stub so there is one self-contained
translation unit and one contract.
The type itself, the ABI its operations call into, and the one decision the
feature could not avoid: (defn f [x y]) is one parameter or two, and which one
depends on whether y names a type.
Parse does not decide it. That lookup is the one its defn comment records being
removed for being wrong twice in one day -- the set of type names is incomplete
at parse time by construction, and macros generating definitions is what
widened the failure. So the vector is carried undecided, as Ast.pitems, and
paired in Check, after every file is loaded, every macro expanded and every
header imported. The set is complete there. It is not complete across time, and
the comment says so: a defstruct written later changes a signature with no edit
to the function.
The return slot stays mandatory and dyn is written out in it. The ambiguity
there has no syntactic resolution at all -- a capitalised head in a list is both
a type application and a struct literal -- so the third state the parameters
needed does not exist for the return type, and ret = None goes on meaning Unit.
What the feature costs, and what is taken back: a slot with no type used to be a
syntax error, so a mistyped type now reads as an extra parameter with no
diagnostic. A name within one edit of a type's gets the resolver's own
did-you-mean, and an unknown capitalised name is reported as the unknown type it
is -- not one parameter in the corpus is capitalised. A lowercase name
resembling no type is the feature working, and is the residual.
The x86 backend refuses dyn by name; both callers already name --llvm, and the
daemon takes that backend by default, so this is the first thing a user of dyn
sees. The JS dialect refuses it too, for the opposite reason -- every value
there is already dynamic and what is missing is only the lowering.
runtime/flan_dyn.h is the fixed ABI. flan_dyn_stub.c stands in until the real
collector lands and says in its header that it verifies nothing about roots.
The x86 backend ran initialisers from .init_array and the LLVM one refused
them by name, so (defvar frame Allocator (arena-new 262144)) — which the
author kept writing — was a program on one backend and an error on the other.
A rule that holds on one backend and not the other is not a rule.
The checker lifts a computed initialiser into a function of its own and the
global's initialiser becomes the call. That is what gives it a frame, which is
the bug underneath the feature: a `let` or a `match` in an initialiser indexed
a slot array of length zero and took the x86 emitter down with an uncaught
Invalid_argument.
Both backends call the lifted initialisers from main, after flan_rt_init and
before a line of the program's own code — Odin's __$startup_runtime shape, not
a constructor, so the runtime is up and the order is the compiler's to choose.
x86 keeps .init_array for one thing only, and it is named: writing the
constant image this backend has no folder for, which is standing in for the
other backend's object image rather than for a program.
The computed globals are sorted by what they read, transitively through the
functions they call, so a global written above the one it reads works and a
ring is refused with every name in it. A reload still re-runs nothing: a new
global with a computed initialiser starts as ZII on both backends.
The refusal that lived in x86.ml is now the checker's and is narrower. Nothing
can escape an initialiser — the handler and restart stacks are empty and every
frame it pushes it also pops — so what is refused is a signal or an
invoke-restart with no handler-bind or restart-case around it, which is inert
by construction. A restart-case inside one is ordinary code, which is what
makes (defvar data (Vec u8) (slurp "level.edn")) an ordinary program.
Three refusals go with the premise they rested on: a container global with a
computed initialiser, a union member in a defvar, and a data type case in one.
A defconst is untouched and keeps all three.
One change here is not about any of that. sand.flan carried an unfinished
line — (defvar game-data (embed (with-allocator frame ))), which parses as a
declaration whose type is (embed ...) — so the checker refused the file and
`dune test` was red at the tip of dev-loop before a line of this landed,
verified by stashing this work and rebuilding. It is commented out rather than
guessed at: the arena above it is the half that works, and what the global
should read is the author's to decide.
The lo <= hi test in check_slice and slice-from-ptr's n >= 0 sat behind
--no-bounds-checks in both backends, while the comment beside each said
they could not be dropped. They are not bounds checks: hi <= len asks
whether a range fits inside a length, and lo <= hi asks whether the word
about to be written into a %slice's length field is a count at all. The
first stays behind the flag, the second is now emitted everywhere, the
way flan_vec_as_slice has always validated its own l > h in plain C.
emit.ml emits two signal blocks rather than one and i1, so an unchecked
build carries one compare. x86.ml keeps all three frame temporaries
stored outside the flag and gates only the second compare, because the
third is the length the message prints.
The IR assertion in test_acceptance now says the two slice calls are
present under --no-bounds-checks rather than absent, and the same build
is run: case 2 and case -2 of bounds.flan must still die.
Every number-to-text conversion wrote into one file-static in the runtime and
answered a slice over it, and nothing copied. Two of them in one expression
printed the second number twice — no crash, no diagnostic, and nothing a
sanitizer could find, because every byte read was inside an object that was
alive. The wrong object.
The buffer is now the caller's, one frame slot per call site. The slot is
allocated in the checker rather than in either backend: a slot is a
function-lifetime location in both of them, where an x86 backend temporary is
bump-allocated and reclaimed at the end of the expression that made it — which
is the one lifetime a returned slice must outlive. Each backend gains one
pointer argument and no reasoning of its own, which is what keeps them
symmetric.
The static is gone rather than left unused, since a buffer with nothing but a
comment beside it is a loaded gun. What remains is the ordinary lifetime a
pointer into a frame has: storing one of these slices in a container that
outlives the frame, or returning it, is still a copy the caller has to make.
NEXT.md's sharp edge now says that instead of what it used to say.
(map-remove! m k) answers the value that was there, or None, which is the
answer get already gives and for the same reason: a key that is not in the map
is an answer, not a failure. Handing the value back rather than dropping it
makes "take this out and use it" one call instead of two that hash the key
twice.
The removal shifts the probe run back over the hole. A Robin Hood lookup stops
at the first empty slot, so a hole left in the middle of a run hides every
entry after it — and the hidden ones are precisely what a test that only asks
after what it removed never looks at, which is why the program removes a
thousand of two thousand keys and then asks for the other thousand.
Odin was read rather than recalled here, and it does the opposite: its erase
marks a tombstone and its insert carries the repair loop. Staying tombstone-
free keeps the shape the rest of the file already assumed, and the lookups —
which outnumber the removals — pay nothing for it. The note in the runtime and
the two in BUILT.md that said Odin deletes by backward shift were describing
Odin's insert, and now say which is which.
It allocates nothing and releases nothing, so there is no guard around it and
it means the same thing on a map in an arena as on one in the heap: a key and a
value live inside the one block the map allocated, and there was never anything
per entry to hand back.
The argument vector's malloc was unchecked, and a failure there would have
published a null pointer with a length beside it. It now dies naming what it
was building, because argv has no allocation site for a condition to hang on.
flan_slurp_into read a capacity of elements as a capacity of bytes and skipped
the epoch check every other container operation runs. The element size is now
a parameter and the length it publishes counts whole elements, so the day slurp
answers something other than (Vec u8) it does not answer with bytes nobody
wrote.
A string with a NUL in it is refused at the C boundary, which is the policy
flan_path_cstr has always had for a path: C reads to the first NUL, so what
crosses is a prefix of what was passed, and a window title is no different from
a filename in that respect. The refusal names the declare-c, which is the name
the program's author wrote.
The runtime's two translation units are compiled with -Wall -Wextra. They were
already clean under both; the flag is there so the next one is caught rather
than read.
The generation word keeps its place and loses its "yet": a reader for it is a
third word on every slice in the language, which is a spec amendment rather
than a runtime patch, and the comment now says so where someone deciding to
trust the word would read it.