Two bugs, both in lib/x86.ml, both reached by signalling a condition from
inside the value being assigned.
The backend has no register wide enough to hold a struct, so it built every
aggregate in its destination, element by element as they were computed. A
transfer out of the middle left the destination in the middle: a global of
four numbers read part old and part new, and so did a local, a struct field,
an array element, a place behind a pointer. A union case was worse than the
rest, since its destination is zeroed before the fields are written.
The second one only looks like the first. An aggregate result is written
through a hidden pointer the caller supplies, and the transfer exit zeroed
that result on its way out, on the correct reasoning that the caller never
reads it. At (set g (f)) the pointer is g, so it zeroed the caller's
variable. It zeroes scalars only now — and with the first half in place
nothing reaches it, so that one is defence in depth and FIX.org says so
rather than claiming a test it does not have.
Assignment builds into a frame temporary and copies, which is the shape
emit.ml always had. The copy is paid where it buys something: [settles] says
whether lowering an expression is bound to reach the end of it, and a
right-hand side that settles is still built in place. That includes a
conversion, except the one direction that is checked — a float narrowed to an
integer — because an array of this language's literals is written
[(u32 1) (u32 2)] and refusing every cast would have taxed the commonest
aggregate there is. A let pays only inside a loop, because a slot reached
once per frame is recorded as bound after the value lands.
half-write.flan is every destination crossed with every right-hand side, run
on both backends, with a scalar row so a regression in one is not read as the
other. dev-halfwrite.flan asks the break loop the half a running program
cannot ask itself: the local, which is invisible to the program and plain to
an editor reading the frame.
The def-edit paragraph in docs/BUILT.md described this as open and is now the
claim it was waiting for. FIX.org records the two lanes the review of this one
turned up and this one does not take: an aggregate built in place can read its
own destination, which is an aliasing question rather than a transfer one; and
the temporary is a frame buffer no root table names, which matters the day a
struct may hold a dyn field.
Follow-ups to the re-run flip, and all of one kind: each said something
correct about a committed re-run that still read as parked, and the flip made
it false.
flan_merged_park's note that the program stays PROGRAM_PARKED across a poll is
now true of every round but the one it leaves on — which is the round that
drains the ring with a run already taken, and the round the fix's own argument
leans on as the long one.
Program.rerun's refusal told the reader to close a window or let the program
finish. With a thunk stopped in the break loop a re-run is accepted, the state
goes running, and a second is refused by that sentence — advice about a game
loop for somebody whose thread is in a break. The C cannot see a break; this
end can, so Dev.rerun passes what it already asked the agent and the refusal
says resume or abort instead.
The five-second timeout in eval_expr and run_render_thunk reached its
break-loop sentence through the Parked arm, so a program stopped between runs
was asked whether it calls (agent/poll). Both gain the arm that names the
break. run_render_thunk's two sentences become a function first: the new one
asks the agent, and that was the body of a five-millisecond tick.
docs/BUILT.md gains the case an editor author meets — :parked nil :stopped t
with no frames running — and FIX.org records that test_dev.ml:763's refusal
assertion was racy before this and is narrowed by it.
--dev --sanitize had been unbuildable for as long as a dev build has
armed the registry from a constructor, and nobody knew because no alias
built it: test_sanitize built the corpus twice and neither time --dev,
test_dev builds --dev and never with a sanitizer. A configuration
nothing builds can be broken for a month, and that one was. af71459
fixed it; this is what keeps it fixed.
dev_sweep, in the alias that already exists rather than a new one --
five names to remember was already four too many, and this is the same
question @sanitize is for. Seven programs built --dev twice, plain and
sanitized, run standalone with no daemon: a sanitizer report fails, and
so does any divergence from the unsanitized dev run.
Standalone is what makes it nearly free, and it works because a dev
build is not a dev session. The cells, the marker and the constructor
are in the executable either way, and a program that never calls
agent/start runs to its own end. That is why the list is mostly
ordinary programs built the other way: dev-noagent is the only one of
sixteen dev-*.flan that does not import the agent, and the rest stop in
the break loop waiting for an editor, which is test_dev.ml's business
against a real daemon.
The three dyn programs are not interchangeable and the difference is
the collector. dyn-vec allocates and never collects -- flan_dyn.c has a
one-megabyte floor and dyn-vec does not reach it -- so what it says is
that the registry and the allocator agree. dyn-map and p13-dyn-collect
are the only two programs anywhere past that floor, so they are the
only two under which a mark and a sweep run; without them a collection
had still never happened in a dev build under ASan.
dev_segv is beside the sweep rather than in it, because the program
that faults cannot be compared against an unsanitized run: that build's
handler prints its line and parks in the break loop, so the plain half
would hang, and the two are supposed to differ. ASan is meant to own
the fault -- flan_dev_crash_enable checks a weak __asan_init and stands
down -- so the case asserts ASan's report and the absence of the
handler's line. At -O0, because at -O2 the write through a bytes-view
of a literal does not fault at all and both builds print the string
unchanged. That yield had never run in any build anywhere; it was
behind a link that did not happen.
Checked both ways rather than asserted: eight failures with the
constructor naming declarations again, clean with it fixed.
Twenty-six seconds of the alias's 2m30 warm, and nothing added to dune
test.
Two aliases were also green only because dune test runs first.
@sanitize never listed the package directories pkg-diamond.flan
imports, and @page never listed sand.flan, which quotes.sh reaches
through sand-headless.flan; from a cold tree the first died before its
first sanitized build, and @page sits inside @checks where CI hides the
same thing. Both listed now. @valgrind, @x86, @js and @cells were
checked and are complete.
What it still does not reach is in FIX.org: a program driven by a real
flan dev daemon under ASan, which wants a --sanitize the CLI does not
have and a way through Dev.serve. --x86 --sanitize is refused by Build
by name, so there is no second backend to track here.
flan_merged_rerun accepted a request under the lock and left program_state
as it found it: PROGRAM_PARKED, until the parked thread got round to waking.
describe's :parked reads that same state, so a caller that asks for a re-run
and then waits for the program to park again was liable to be answered by the
park it had just ended — the wait fell through on the old park, the next
request went out before the first run had started, and the pair of them made
one run between them; or the thread woke in between and the second was refused
as "already running". One lagging state, two symptoms, and all four of
test_dev's re-run sites could show either under load.
The window was documented over flan_merged_park as "as wide as a flush". It
stopped being that when the ring drain went in front of the park's exit: the
leaving round loads whatever was queued before it breaks, so the window was as
long as the next thing the program had to do.
The store moves to the acceptance, under the lock that made it. There is no
longer a moment in which a committed re-run reads as parked, and the park's own
store on the way back into main stays as the no-op that says where the thread
has got to. Dev.rerun reads the liveness and the break for its note before it
asks, since afterwards the answer is running by construction.
Measured on that loop driven standalone against programs/dev-rerun.flan: 9
failures in 25 runs under two busy-loop burners before, 0 in 50 under the same
load after. FIX.org, 2026-09-21, has the readers that were checked, the path
that cannot exist, and why the two-process daemon has no such window.
The author: "I think I prefer length over len, because then I'll use len as
the variable name". One arm in check.ml, one row in the table beside it, and
every (len x) in lib, test, examples, vendor, spike, docs, web, emacs,
plan.org and NEXT.md rewritten.
Shadowing and builtin/ had already taken most of the sting out: a (defn len
...) was legal and won in its own file, and builtin/len reached past it. What
was left is that len was still a builtin — the defn earned a warning, and a
wrapper had to say builtin/ at every inner call. Now there is nothing under
the short name: len is an ordinary identifier in every position, which is
what (let [len (length xs)] ...) wants.
length takes over as shadowing's worked example rather than the feature
losing one. shadow-builtin.flan, builtin-qualified.flan, pkgs/shadowed and the
builtin/ rows in test_flan move to it and go on testing shadowing.
A call to a len nothing defines is answered where an unknown function is,
after every table and after the shadowing guard, so a program with its own len
never reaches it. The sentence is said rather than guessed at — len and length
are three edits apart and the did-you-mean's net is one — and the call is
written back out through spell_arg, as-slice's spelling lifted out of it and
now shared, so what is printed compiles.
sand.flan:33 still calls the old name and is the author's to change; until it
does, test_acceptance and test_session abort there. Both were run green
against a copy with that one line changed. FIX.org says so.
[flan_dev_reg_at] still went straight round its walk-level retries — a failed
scan_open and a failed scan_ok both back to the top. It is the one site where
the argument for leaving it holds water, since the agent gates the verb behind
a stopped program and there is no writer to lose to. It loses to the other
argument: it is the same mistake the slot read was making, three lines under
the note explaining why it is a mistake, and a bare retry left next to that
note teaches that the rule has exceptions it does not have.
And the cost of a refusal was written as a bound when it is a typical. "One
writer, so at most one slot of a walk is odd" is true at any instant and false
across a walk — flan_reg_compact writes every slot under its own counter, so a
repeatedly preempted writer can charge the full patience against several slots
of one walk, 4096 of them in the arithmetic worst case. Both docs now say
typical and give the worst, and record what the larger figure means for
request_lock, which is held across handle_line: a refusing listing delays an
abort by that much. Nothing depended on the old number.
Also written down, because it is the clearest statement of why this was not a
timeout: sixty-four bare re-reads of one word finish in about two microseconds,
so against a writer a millisecond from running the old budget was not short, it
was zero wall-clock.
Green runs of a load-only flake, taken on an idle machine, are worth nothing,
and a count alone cannot tell you which kind you have. So the load for the
55-run test_reload proof was a build of flan_dev.c from the commit before this
fix, churning beside it: a positive control as well as a load. It refused 4151
of the 50478 runs it managed in that window — 8% — while test_reload went 55
for 55. Paired on the direct binary too, eight copies at a time: 13 of 80
before, 0 of 160 after.
Also here: the bound BUILT.md used to quote went from two milliseconds to about
sixty-six, and the doc says so rather than dropping the number; the note that
flan_dev_reg_at shared the spin and could answer "never heard of this address"
under load; and the verdict on the two neighbouring dev flakes, which are three
causes and not one.
test_reload's registry-under-a-writer case failed about one run in five on a
loaded machine and never on an idle one. The refusals were always unread=1:
one slot, on the best of eight walks, that would not copy. In that mode the
table cannot even move — re-noting live blocks kills nothing, the dead count
stays at zero, and the compaction trigger never fires — so the reader was
refusing a table that sat perfectly still for it.
flan_reg_snap re-read a slot's counter sixty-four times with nothing between
the tries. That is right for the writer it was written for, which holds the
counter odd for seven stores. It is hopeless against a writer the scheduler
took the core from mid-write, which holds it odd for a quantum: the reader
burns all sixty-four looks inside a fraction of that, and the looking is what
keeps the core the writer needs. Hence load-only.
The walk-level retry already had the answer written up at length — a spin takes
a core from the thread being waited on. The per-slot retry never got it. One
pause helper now, shared by both: eight bare looks for the running writer, then
the same 250us step. A refusal means the table would not hold still.
480 contended runs of regfull after, no refusals; 46 of 240 before.
The author edited (def colors [4 u32] [...]) in his running game, pressed
C-c C-c, and the colours did not change — the same complaint def was built
to answer, one step further in.
The reading behind it was that a re-evaluated def is a promise about the
next re-run, so the session republished the lifted global/<n> and stopped;
nothing called it. That is wrong for the reason the form is named after: def
is Common Lisp's defparameter, and evaluating a defparameter assigns. The
difference from defvar is not "one takes effect at restart", it is "one
takes effect, the other does not touch the value at all".
So a def now does both. The storage takes the new value at the next frame
boundary, carried by the thunk a redefinition module already has — one
Set per re-evaluated def, in the same flan_reload_call the class
registrations use, run after the bodies are published and on the game
thread. And the lifted initialiser is still republished, so the next re-run
runs the edited one; dev-rerun.flan pins that half unchanged.
A brand-new def gets its initialiser run too, which needed one thing from
each backend: a lifted global/<n> asked for by name is neither a sibling nor
one of the target's own lifted clauses, so it had no cell, and a dev call
goes through a cell. Both now give an unknown one a slot of the module's
own, filled from the registry by the installer.
An initialiser that signals leaves the old value alone — the value is
computed whole before it is stored — and offers abandon-evaluation like any
other thunk. A retype is refused first, by the pass that names both types.
defonce is untouched, which is its whole contract; defconst was already the
immediate one, through consts.
rand-int, rand, rand-bool, rand-int-range and rand-float-range, at the widths
the author ruled: a u64 draw and an f64 in [0, 1). rand-seed and rand-state
keep their names. The four old names are not names, and each is refused by the
one that is, with a call that compiles — in both the call and the bare-name
position, because a Lisp-1 makes the second a real thing to write.
The generator's step is untouched, so a seed means what it meant. Its output
function is not: PCG-XSH-RR folded the state to 32 bits, and no honest u64 or
53-bit f64 comes out of 32 bits without a second step. PCG-RXS-M-XS 64 answers
64 from the same one, so all five still cost exactly one draw and a seeded run
is reproducible. The price, written where it lives: the permutation is a
bijection of the state, which is what 64 output bits from 64 state bits costs.
The sequence is therefore a different one, and programs/rand.flan pins it —
reproducibility across the five, the single-draw cost of each, the half-open
boundaries, and rand-bool's count over a thousand flips.
sand.flan is not touched. It calls rand-f32, so the cases that compile or
re-evaluate it skip themselves on the fixture rather than on a comment: fix
its two calls and every one of them runs again. Its hash is the old
generator's grid and gets re-taken then.
Three things the review found, and the refusal it was right about.
The returned-Vec refusal is gone. It called a leak a dangle: the storage a
returned Vec owns outlives the expression, so the view reads what it says it
reads, and what is lost is the owner. (len (mk)) and (at (mk) 0) lose the same
owner and compile, spec-memory.md already says an overwritten global Vec leaks
its first block, and under a region there is nothing to leak at all. "We're
purposely doing manual memory management for the static side, so whatever."
The array refusal stays exactly as it is — that one is a view into a frame
that is gone and answers bytes the frame has since reused. Wrong answers are
the compiler's business and leaks are the program's, and both docs now draw
that line, because the two forms look alike.
The -1 sentinel was reachable from user syntax: (slice v 0 -1) answered the
whole Vec on both backends while (slice a 0 -1) was refused as a negative
bound. The refusal now runs on the bounds the reader wrote, before the
implicit hi is built — the only order that works, since the sentinel is itself
a -1 and a check on the finished pair would refuse (slice v). The
backwards-pair check moved into the branch where both ends are written.
The bounds seam is closed toward index_expr, and the tiebreaker is not which
half is older. indexed and vec_at both take their index through it, so
(at a c) over a u32 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.
Also an x86 row for vec.flan, so the new arity is pinned on both backends in
CI rather than by hand, and the comment columns the sweep shifted left in
slurp, into, format and algorithms.
as-slice was a warning, not an operation. The input type already decides
which of the two things happens — a Vec can only be borrowed, an array or a
string can only be viewed, and no call site picks between them — so the second
name expressed no choice a reader could make. And it warned at the moment the
view is taken, which is the one moment nothing is wrong; the danger arrives
later, at the push. slice now takes a Vec at all three arities and as-slice
is gone.
(slice v lo) was free, and is the arity the Vec never had: the runtime already
reads a hi of -1 as "to the end", so the tail form passes the caller's lo and
the same -1 — no slot, no length read, no second evaluation. The merge is
entirely in the checker; the Vec path builds the flan_vec_as_slice call it
always built and neither backend has a line about any of it.
A Vec a call returned is refused at every arity, and not for the array's
reason. (slice (mk)) over an array dangles. (slice (make-vec)) does not — the
storage outlives the expression — but the header is a temporary, so nothing
can ever free the block. The refusal says that and names the let.
The name's own refusal sits in ordinary_call after every table, so a program
that defines an as-slice still reaches its own. It reads for somebody who has
never heard of the old name and writes the call back out, spelling each
argument that is a name or a number.
The warning moved to where it bites: BUILT.md gains a section beside the Vec
table and the push row points at it, spec-memory.md's Borrowing says the same.
Investigated and deliberately not built — a diagnostic for a live view at the
push. (reserve v 100) then a slice, a push and a read is correct code under
the contract the spec chose, so any flag on it is a false positive by the
language's own semantics rather than by an approximation. FIX.org has the
finding and the syntactic sketch that does not work.
"Is there a way to do dotimes or a loop in reverse?" — the answer was a
hand-written let plus set. Now it is (dotimes [i 9 -1 -1]).
Three arities: [i n], [i start stop], [i start stop step]. The stop is
exclusive in all of them, so [i 0 n] is [i n] — one rule, not two — and a
negative step counts down, testing with > instead of <.
A literal step of 0 is refused where it is written. One that is only a value
cannot be, so the condition asks the sign first and 0 falls out of it as a
loop that runs no times: terminating and deterministic, and free, because a
literal step still emits the single comparison it always did.
Each bound is evaluated once, left to right, before the counter exists: the
start into the counter, the stop into the hidden slot it always had, the
step into one of its own unless it is a literal.
Still a special form, still a Let and a While with the step in the latch, so
neither backend learned anything — the new program prints the same thing
under --x86 and at -O0. load.ml's Form-level walk had to learn more than one
bound for the same reason parse.ml did; it is part of this feature and not a
bug that was sitting there, because before this a three-bound dotimes was a
parse error long before that walk could reach it.
The author's ruling: "I think the prefix reads better, keep it" — so two
prefixed enums out of eleven was the inconsistency, not the prefix.
TraceLogLevel takes log-, CameraProjection projection-, CameraMode camera-,
GamepadButton button-, GamepadAxis axis-, Gesture gesture-, MouseCursor
cursor-, TextureFilter filter-, PixelFormat pixel-.
Two of those are judgement. CameraProjection and CameraMode share raylib's
CAMERA_ and deliberately do not share a Flan prefix: they are two questions
asked of the same struct, and :projection-perspective beside :camera-orbital
says which is being answered. GamepadButton and GamepadAxis take the short
stems rather than a shared gamepad-, which keeps :button-left-face-up and
:axis-left-trigger readable.
It is a reading choice and not a collision fix, and bindings, raylib.flan and
docs/BUILT.md all say so: a keyword resolves against the expected type and
nothing else, so :point at a TextureFilter site was never ambiguous. What the
prefix buys is the call site read on its own.
The three constant exception lines are keyed on the member's full Flan
spelling and moved with it. flan generate-c vendor/raylib is green against
raylib-5.5.h, and the check was confirmed non-vacuous by breaking it:
filter-trilinearr reported TEXTURE_FILTER_TRILINEARR rather than passing.
test_flan pins one member of each of the eleven to the C name the rule
reaches, read out of the real bindings file.
sand.flan line 121 is (rl/set-trace-log-level :warning) and is the author's
to respell. TraceLogLevel carries a warning alias beside log-warning, mapped
by name in bindings, so the suite stays green until he does; FIX.org has the
three-edit removal recipe.
The first cut of the form-change refusal asked only about def and defonce
and asserted in its comment that defconst was another arm's business. It
was not: defconst to def at the same type fell past every arm, and defonce
to defconst fell past them into the consts republish, which stores the
declared value over live storage at the frame boundary. One refusal over
gconst and grerun together now covers all six directions.
And two coverage gaps closed by running rather than reasoning: reload-v6
carries a (def dial i64 5) the host was never built with, so the x86 image
path executes and its 5 shows in the transcript's arithmetic; dev-rerun's
echo reads counter in its initialiser and follows it 40, 41, 42, 43 across
re-runs, where a captured first answer would print 40 four times.
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.
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.
Key members are :key-r, :key-space, :key-left-shift; MouseButton members
are :mouse-left through :mouse-back — mouse- over button- because gamepads
have buttons too. Bare members collided across enums and with user code.
The bindings enum directive grew an optional third column declaring the
Flan-side member prefix, stripped before the C prefix is applied, so key-r
checks against KEY_R rather than KEY_KEY_R; a member that does not carry
the declared prefix is reported, not checked under a guessed name. The
enum-member error grew a did-you-mean: one edit away, or the bare name of
a prefixed member, so :r suggests :key-r.
sand.flan is the author's live WIP and is deliberately not touched; its
three keywords (lines 161-166) leave test_session and sand-headless red
until he moves them. Everything else that calls the two enums moved.
MANUAL.md: *flan* and *flan-repl* throughout, the REPL's output and
error-summary behaviour, the two clears on C-c C-o / C-c M-o, the
diagnostics buffer as the one list with the memory section below the
errors, and the settings table without flan-output-buffer. BUILT.md's
three mentions of *flan-output* updated to the routing that exists.
FIX.org records the decision, dated.
The author's rule: "allow shadowing but warn". A user (defn get ...) is
legal, the user's definition wins at every call site in the file that wrote
it, and the compiler warns once at the definition.
Builtin-wins was never a rule anybody wrote: named_call is one match on the
name, the builtin arms are string literals, and the three arms that look a
name up are the last three in it. So a guard goes first, the trailing three
are factored into ordinary_call, and both routes into it resolve a name the
same way.
The shadow stops at the file that declared it. An imported package's names
were qualified at the import, so a get written inside one is the builtin's
and stays the builtin's; the prelude is excluded by its file for the same
reason. programs/shadow-builtin.flan is both halves at once.
The warning prints from build_program, which is what every command and the
dev daemon's reload go through, in the shape --warn-memory established:
file:line:col, the squiggle, and an exit status that does not move.
And the message that described the old world is gone — the builtin-arity
note said a defn does not replace a builtin, which is no longer true and is
no longer reachable.
SPIKE-DUPLICITY.md 9 and SPIKE-DYNAMIC.md both still counted three and quoted
a flan_dyn.c comment that has since been rewritten. The typed side two are one
flan_escape_char with a framing each; the dyn copy stays, with the ownership
defence the section already accepted. NEXT.md named flan_break_resume, which
does not exist -- flan_restart_frame and flan_restart_take are the pair a break
loop resumes through.
Constraints parsing peeled a body-leading map only when its first key was
literally :where; any other keyword fell through to the body, so a typo'd
key surfaced as a baffling error from inside what was meant as a predicate
and a stray map at body start compiled away silently. Any keyword-first map
is read as a constraint map now, but only when something follows it in the
body — a single-form map body is a real dyn value and not a discarded
statement, so that case is left alone.
An empty map literal still parses as a struct literal, (P {}) still meaning
the zero struct for a real struct name — the parser has no symbol table to
tell (take {}) apart from it at that point. check.ml now catches the case
where the name turns out to be a known function instead and says so, rather
than "unknown struct take".
flan_dyn.c's tag comment still said 6 and 7 were free; keywords and maps
took 4 and a kind field under BOX_OBJ, not new top-level tags, so 5, 6 and 7
are what is actually open for the interop handle. NEXT.md and json.flan both
still pointed at test/programs/arena-edn.flan, gone since edn/read stopped
taking an allocator; both now point at what replaced it.
flan_rt.c's flan_str_eq comment claimed the empty string literal was a
hypothetical null-pointer string; it isn't, its address is an interned
symbol's. The real case the zero-length guard exists for is a zero-length
container converted to a string. check.ml's ordering refusal said a string
has no comparison at all, which stopped being true when typed = and !=
grew strings in daed039 — split the message so an equality refusal and an
ordering refusal say the right noun, and updated the pinned rejects_check
rows to match. string-eq.flan gained the row the fast path most wants
tested, a slice against the prefix it was cut from sharing a base pointer at
different lengths, plus a != row at equal length with differing bytes;
acceptance now carries the real output, captured by running the program on
all three lanes. x86.ml's xor-1 comment now names the 0/1 return contract as
a requirement flan_str_eq must hold, not an incidental fact. SPIKE-DUPLICITY
now says plainly that its equality-and-ordering argument landed in daed039
and marks its transcript as the historical state that argument was made
against. FIX.org ticks M2 queue item 5.
And the acceptance runner: the tail check that turns a nonzero failure count
into exit 1 was already there and already fired — a fresh build with one row
broken already exited 1 before anything here changed. What wasn't proven is
that every path through the file's clang/wasmtime/raylib/lldb probes still
reaches that tail rather than skipping past rows that already failed. An
at_exit guard now closes that class regardless of which path the process
leaves by, flushing stdout first so a failing run's FAIL lines survive
Unix._exit rather than being dropped from the buffer. Verified both
directions with a deliberately broken row: dune test exits nonzero and the
log still carries the FAIL line and the failure count; restored, the same
run is exit 0 with nothing printed but green summaries. The other test
binaries were checked for the same gap and none have it — each gates its
own exit on a single failures ref that the tail already reads.
Every mark it left was an addition, and addition commutes, so a backend that
ran the defers outermost-first produced byte-identical output and the row that
was supposed to be watching the order could not have told. The claim was in the
comments and not in the numbers. cleanup.flan already had the device for this —
a shift rather than a sum — so the log here is a digit trace now, and the two
frames under a catch read 12 where a wrong order reads 21.
Rewriting the trace made room for the three behaviours that worked and nothing
pinned. A return inside a clause is an ordinary return from the function that
wrote the form, because that is where a clause runs: it leaves through the
function's own exit, runs the defer registered there after the two the unwind
already ran, and leaves the handler stack empty behind it, which the bare
signal that follows in main is the check on. A defer inside a clause is refused
for the reason every nested form is refused one. And a handler-case inside a
defer works, because a defer may not start a transfer that leaves it and this
one begins and ends its own.
The program is registered with the sanitizers, where the interesting failure is
not the heap but a handler or restart frame left on a stack pointing into an
alloca that has gone — an output comparison cannot see that until something
much later calls through it. It is clean; it was also leaking sixteen bytes out
of the vector main allocates to prove the allocator context came back, which is
the test's own litter and is freed now.
docs/PORTING.md ranked handler-case as one site handler-bind covers. It still
is one site, and handler-bind still covers it, but it is no longer the closer
translation: a catch block is assumed everywhere it is written to see the
locals around it, and only the clause that runs at the form does.
The handler clauses are lifted left to right rather than by List.map, whose
order is unspecified. Each lift names itself after the count already on the
list, so an order nobody chose would number the clauses of one handler-bind
differently between builds, and those names go into a redefinition module.
x86 is what flan dev takes by default and dyn is the iteration feature, so
a backend that refused dyn meant the two halves of the dev loop could not
be in the same program. The refusal was one arm of is_agg, and it said the
true thing: it was never the representation that was missing. A dyn is
uint64_t, a scalar in both calling conventions, classified by every rule
this file already had; every operation on one is a Tast.Rt primitive and
call_rt has always known how to make one of those. What the lane actually
cost was the collector's root discipline.
Which is emit.ml's, reused rather than rewritten: Emit.dyn_roots counts the
roots for both backends now, so the pushes and the pops balance because one
counter decides both ends, and the two backends root the same nodes because
there is one counter and not two. A zeroed frame slot per dyn slot and per
dyn-producing call, minted beside the channel and outside every scoped --
the bump allocator reclaims at the end of a statement and a slot minted in
the body would be handed out again while the collector still held its
address. Pushed from the body buffer, not the prologue's, because a call
clobbers the registers the prologue is still spilling from. And one pop in
the epilogue, which is the whole of why this backend needed no landing-pad
work for it: there is exactly one epilogue, and the return, the fall-through
and the transfer exit all arrive at it. emit.ml needs the same pop at five
separate rets.
The ABI point the dyn handoff left open for the integrator is settled by
reading the other side rather than by agreeing: flan_dyn.c's mark follows a
value only when the quiet-NaN prefix is set, and the zero word does not have
it, so a zeroed root decodes as the double 0.0 and is never an address
anything dereferences. Zero is safe for a reason. The header says so now.
And one line in dev.ml that was never x86's: the merged dev host resets the
condition stacks and the frame chain between runs, because main is
re-entered by longjmp and pops no frame -- and it never reset the root
stack, so every root a finished run pushed still named stack the next run
was about to write over. That gap was an LLVM dev build's too.
Verification, and one of the numbers is new. @x86: MATCH 129 -> 135, DIFFER
0, REFUSED 0 -- the five dyn programs off survey.sh's llvmonly list, which
is gone rather than empty, plus p13. dune test --force green, with --x86
acceptance rows beside the LLVM ones for all five dyn programs, dyn-boundary
asserted on the same exit 134 and the same sentence on both.
p13-dyn-collect.flan is the one that is not a formality. Nothing else in
this repository allocates past flan_dyn.c's one-megabyte floor, so nothing
else collects even once, so a program whose roots are entirely wrong passes
every output test there is -- the handoff wrote that about the stub and it
outlived the stub. p13 allocates several megabytes of garbage while holding
live values across it: at forty times the corpus size it peaks at 4MB of
RSS, which is the collector running many times over, and both backends
still print the same four lines.
`e` on a line sets that field: prompted with what is there, sending a Flan
expression that the program evaluates and the checker measures against the type
of the place it is going into. `C-c C-e` turns the buffer into the value — the
Flan literal the program wrote, which is the value's own spelling and not a
second notation invented for editing it — and `C-c C-c` commits, `C-c C-k`
abandons.
A commit is a diff. The buffer is read back as a value, compared leaf by leaf
with what was drawn, and one write goes out per leaf that changed, so editing
one field does not rewrite the others with whatever was on the screen. A shape
that changed is a refusal and it voids the edits collected before it: the walk
visits fields in order, so a struct with one good change and one impossible one
has already collected the good one, and handing that back beside the refusal
would make it possible to send half of what was asked for.
The truncation guard is the one that is easy to miss. `...` is what the
renderer writes where it stopped, and a commit read off a buffer holding one
could not tell a field that was never written from one somebody deleted — so
such a value refuses to be opened for editing at all.
Writing is refused on the expression and address roots, by name. An expression
is evaluated wherever the evaluator stands and whenever it next reaches a frame
boundary, which for a write means possibly into a running program; globals stay
unwritable from here until they have a root that names a stop.
test-flan.el runs the whole chain against a real daemon — a frame, a slot index
off the listing, a render, a set, a re-read, a typed refusal, an edited buffer,
a commit, and a commit against a stop the program has left.
The louder failure had the quieter answer. A generated reader accumulates
errors on the cursor — which is what lets it be a straight line of
assignments — and the cursor is made and dropped inside the entry point, so a
stray brace in a file read at run time handed the program a zeroed struct and
said nothing at all. That is the one thing the rest of vendor:edn refuses to
do: read-file answers an Option precisely so a malformed document is
distinguishable from one that is literally nil, and the hand-written reader in
test/programs/edn.flan tests ok? and prints the reason. ReadFailed is the
derived reader being as honest, in both packages, and it sits beside
SchemaDrift because both are "the file is not what this program was built for".
Then the writing-down. docs/BUILT.md gets the section: the four things the
macro system did not have and now does, each general and none of them
mentioning EDN — a macro reading a file at the call site's path, a package
macro calling its package, one call answering several declarations, and
compile-error, which is the one piece that had to go in the compiler and the
reason it had to. The set rule the real game file decided is there too, and
what defjson shares, which is the design and not the code.
NEXT.md item 9 and PORTING.md §3.9 both close. Not as (read-edn T bytes): the
struct comes from the *file* rather than from a type declared by hand, so the
~80 lines PORTING prices for two schemas are not written at all. The competing
answer PORTING names — compile-time embedding — turned out to be the other half
rather than a competitor: the shape comes from the file at compile time and the
bytes may come from an embed beside it, which is exactly what
test/programs/edn-provide.flan does.
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.
Two decisions in this lane went against the brief and both are written down
where the next reader will meet them: the return slot stayed mandatory, so the
third state ret = None was to grow does not exist and neither does the fallout
listed for load.ml, shim.ml and cimport.ml; and the parameter rule is resolved in
Check rather than in parse.ml, because cimport passes C type names through
verbatim and POSIX's lowercase stat and timespec are writable in parameter
position, which is what makes a syntactic rule unsound rather than merely
awkward.
The open ABI point is in flan_dyn.h beside the root functions rather than only
in the handoff, because the header is what the two sides diff. A rooted slot
holding 0 is not a value: the compiler zeroes every root at entry because the
push happens before the code that fills it and possibly for a branch that never
runs, and 0 is the only pattern it can write without knowing the encoding. If
the real runtime NaN-boxes and integer zero is the zero word then this is wrong
and both sides change together.
Session.compatible needed nothing: it compares with Types.equal over the
parameters and the return, and dyn is equal to itself and to nothing else. Both
directions are pinned anyway, because this is the one place "changes signature"
covers a change the source does not spell out -- a parameter can become dyn, or
stop being dyn, by a type being declared elsewhere in the program.
@x86 128 match 0 differ 0 refused, @sanitize clean, dune test green.
Two claims corrected against the thing they claimed about.
A named object is linked whole -- symbol-driven selection is an archive rule,
and dropping unreached code inside an included object needs -ffunction-sections
and --gc-sections, which the link line does not pass. nm on any corpus program
finds flan_dyn_add and flan_gc_collect in it. So the file said something the
build does not do. What makes --no-gc possible is the other half of the same
argument and was already written beside it: nothing refers to flan_dyn.c, so
not compiling it is a change at three sites and nowhere else.
And the boundary. "Typed Flan has no implicit widening" is true of a value and
not of a literal: (g 1) against (defn g [x f64] ...) compiles, because the
checker gives the literal the type the parameter asks for, while (defn h [y
i64] f64 (g y)) is refused. A dyn value written as 1 has been through
flan_dyn_from_i64 and cannot remember, so the same source read as dyn traps
where read as typed it does not. Stated where the compiler lane will find it,
with the two ways to close it, both of them the compiler's.
Milestone 1 of dynamic-by-default, the runtime half: NaN-boxed values in one
machine word, a mark-sweep heap, and the operations over them.
A double is itself, which is what a language with a physics loop and a float
calculator in its corpus wants; everything else hides in the quiet-NaN space,
three tag bits and a 48-bit payload that is exactly an x86-64 user pointer.
The negative-NaN collision is answered by canonicalising every NaN on the way
in, which flan_rt.c had already decided was the right thing to print. An i64
past the payload goes on the heap rather than becoming a 48-bit integer with a
64-bit name.
The collector is mark-sweep and nothing else -- no generation, no barrier, no
free list -- because the answer to wanting it faster is to type the program.
Roots are pushed, not scanned: NaN-boxing makes a conservative guess wrong in
both directions, and flan_dev.c's frame chain is the precedent. A fixed ring
of the last sixty-four allocations is marked unconditionally, which closes the
window where an expression with two constructors in it can collect its own
first result before the compiler has rooted either.
A type mismatch traps rather than aborting, through a flan_trap exported from
flan_rt.c so it takes the same path the six existing traps take: parked for
inspection in a dev session, dead where it stands otherwise. The sentence
names the operation, both tags as words, and both values.
flan_dyn.c is its own translation unit and nothing in the release runtime
names a symbol in it, so a program with no dyn operation links no collector
and --no-gc can be file-level selection rather than an argument with the
linker.
docs/SPIKE-DYNAMIC.md carries the argument. test/dyn_ops.c drives every
operation and all twenty-four refusals from C, the way dev_limits.c does,
including a million allocations against a hundred live and the control that
says an unrooted object really is reclaimed.