A C-x C-e that blew up took the session with it. The expression's break offered
either nothing at all — a bad index establishes no restart, and the program's
own are below the thunk boundary where a transfer has nowhere to land — or a
list on which every entry was refused. That left abort, and abort is _exit(134)
over a mistyped index.
So the boundary offers a restart of its own. The agent pushes a real frame
around every evaluation, after the floor is read so that it lands above it;
taking it unwinds to the thunk, flan_reload_call drops the channel it holds,
and the poll returns to the game loop. It abandons and does not undo, which is
said in the agent's line, the daemon's note, the buffer's row and the manual.
The other half was a silence. The break buffer drew every restart as takeable
and ignored the :unreachable the wire already carried, so a digit on one went
out to be refused and nothing came back. Those rows now carry the reason and
are refused where they are read, and :abandon names the position that drops the
evaluation — a position, because a program may establish a restart of that name
itself.
Not the threading, which is what the report suspected. The thunk does run on
the game thread; a thunk on a thread of its own would have had the same empty
list and the same abort.
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 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.
The break loop used to discard the pointer it was handed, so the buffer
could name a BoundsError's fields and never show 648. Now the snapshot
stashes it, flan_agent_condition hands it back on the stopped thread,
and a daemon-built thunk — locals pointed at the condition — renders
each field. Delivered at-stop, so a resume-and-restop cannot get the
old type read over the new pointer.
The trap sites publish their loc around the hook call, the snapshot
copies it, and break answers :site with the line's text as :source —
the frame lines say where each call was; this is the only record of
the indexing itself.
Compiler temps are hidden from the locals listing rather than refused
as s4; a shadowing rebind strips its ~N except where the outer binding
is on the same list, where both keep their raw spelling.
The dev runtime rendered a value twice over: [flan_dev_emit_{u64,i64,f64,str}]
into the result buffer an evaluation is read back from, and
[flan_dev_watch_emit_*] into the current watch slot, with the same four bodies
either side and the sink as the only difference. [flan_dev_result_end] and
[flan_dev_watch_end] were the same ellipsis-and-generation close, comment for
comment, over two buffers.
So the rendering takes the sink as a parameter and the eight entry points are
eight one-line calls into four statics. The exports stay eight: the compiler
emits four of them by name (Session.externs) and a program reaches the watch
four through declare-c. ABI does not collapse because the bodies did.
The escape table is now [flan_escape_char] in flan_rt.c, once: what one byte
reads as inside a quoted string, into a caller's four bytes. A table and not a
printer, because the framings are genuinely different — [flan_escape_bytes]
builds a capped slice to hand back and the dev pair streams into a buffer it
does not own the end of — and the framing is the part that is each caller's.
The dyn printer keeps its own copy, which is docs/SPIKE-DUPLICITY.md §9's one
defended repeat: it is inside the runtime that owns the storage it walks. Its
comment, and flan_rt.c's, no longer tell a reader to change the other two.
Same for the NaN rule, which was spelled four times: [flan_f64_format] is
flan_rt.c's [flan_f64_to_bytes] without the slice, and the REPL emitter and the
watch table call it rather than restating "%g, and nan unsigned".
Byte-identical, checked two ways. A session driven over the daemon's socket
before and after — every arm of the emit family, the escapes, and a string long
enough to reach the truncating close — diffs empty. And a harness linking both
trees' flan_rt.c + flan_dev.c compares 8173 renderings: every byte 0..255
through both string emitters and through flan_escape_bytes, every length across
both caps and the ellipsis either side of them, both NaN signs, both infinities,
i64 and u64 at their extremes. Identical.
Dead code, each verified by its own grep before removal. These are exported C
symbols, so a program could reach one through declare-c; the evidence is that
nothing in the tree does, including the docs that write the surface down.
flan_dev_watch_u64 (flan_dev.c) — one occurrence repo-wide, its own
definition. The i64/f64/str siblings are declare-c'd in
test/programs/dev-watch.flan and written down in emacs/MANUAL.md; this one
appears in neither, and in no other file.
flan_break_resume (flan_rt.c) — the only non-prose reference was a stale
extern in vendor/agent/flan_agent.c with no call under it. Both gone.
[flan_name_id] stays: the bounds and arithmetic conditions still hash through
it. [flan_restart_take]'s comment no longer points at a function that is not
there.
flan_dev_watch_enabled (flan_dev.c) — prototyped in flan_agent.c, never
called. [watch_on] is still read directly by the three sites that gate on it.
clang_stamp (lib/build.ml) — a [lazy] never forced; one occurrence.
marshal (lib/expand.ml) — no reference anywhere. [write], which it wrapped,
is called twice in [call], so the [let rec] group is demoted to keep it.
is_bytes (lib/js.ml) — dead within js.ml. Nothing else in that file is
touched: the JS backend is parked, not dead.
Kept on purpose: [Loc.forget_sources], documented in docs/BUILT.md as
deliberately retained, and [flan_dev_watch_num_f64], which emacs/MANUAL.md
declares as public surface.
Two comments in lib/dev.ml argued the orphan grace in terms of elisp symbols
from before the rename — [flan-dev--open], [flan-dev--connection],
[flan-dev-poll-interval], and a file called emacs/flan-dev.el. None of those
exist. Re-spelled as [flan--open], [flan--connection], [flan-poll-interval] and
emacs/flan.el, which is where they are; the reasoning is load-bearing and is
unchanged.
dune test: exit 0. 59 lines of code out, 24 lines net of the prose that says
why.
The [At] arm of [permanent_root] recursed through any indexed target, so an
element of a global SLICE answered permanent the way an element of a global
ARRAY does. An array's elements are inside the global's storage; a slice's
are ptr+len pointing wherever, which can be a frame already returned — the
program that stashes (slice local 0 2) in a global slice and views an element
compiled and segfaulted with no diagnostic. The arm now recurses only when
the target's own type is an Array.
With it, the refusal/acceptance pair in test_flan.ml (one word apart) and a
view over an element of a global array in dyn-view.flan's mode 0.
The element check now runs before the lifetime check in all three container
arms: a local (Vec string) was told to make it a global, and a global
(Vec string) is refused anyway, so the advice was a dead end.
And the four strings that claimed more than the code does. flan_dyn.h
already had the honest version — a view is exactly as stale-safe as the
thing it is a view of — so the refusal message, box's comment and FIX.org
now say that instead of promising a dyn value can never dangle; a global
[i64] cut from a dead frame still passes and still reads it (ASan:
stack-use-after-scope in view_box). The element message no longer tells a
(Vec string) that string is not the case the restriction exists for.
dyn_ops.c's hand_vec comment no longer says flan_rt.c is unlinked when it
calls two of its functions; flan_rt.c said the same thing and is fixed too.
FIX.org's arena paragraph now separates the header's lifetime (compile time,
already covered) from releasing the arena under a live view: free-all traps
cleanly on the epoch, arena-destroy is a heap-use-after-free in
view_vec_check, the same gap flan_vec_check has on the typed side.
Relocation was proved sound and stayed sound — a Vec view holding the
header's own address survives a push that grows and moves it, because
there is no snapshot to invalidate. That was never the whole of the hazard.
Refusing every container into dyn outright, before this lane, meant a
dangling view was unreachable; the moment box stopped refusing, three
routes opened at once — a view returned from the function whose frame the
Vec lived in, one stashed in a dyn global and read after that frame is
gone, and one left behind when a condition transfer unwinds it. All three
are stack-use-after-return, reachable for the first time.
The rule: a typed container crosses into dyn as a view only when its own
storage is permanent — a global's. On the dynamic side Flan follows Clojure
and Common Lisp, where holding a value can never hand you garbage; treating
a view as a bare pointer and calling the lifetime the programmer's problem
is the Odin answer, and it is the wrong trade on this side of the language.
check.ml's permanent_root walks the checked expression back to its root: a
global is permanent, a field or an array element of one is permanent at the
same fixed offset, and a slice cut directly from one at the call site
inherits it — the trace is what a slice carries, and it is lost the moment
the slice is bound to a name first, so that case is refused too rather than
guessed at. Everything else answers false: a local, a parameter, a
temporary, and anything reached through a (Ptr T), because a heap-durable
pointer and a frame's own are the same type and the checker cannot tell
them apart — admitting one admits the other, which is the whole hazard this
closes. An arena-held header turns out not to be a separate case at all: an
arena changes where a Vec's elements live, never where its own header — the
binding — lives, so it is already covered by the storage-class check above.
Both directions of the F1 escape were reproduced before the fix (a genuine
ASan stack-use-after-return, reproduced by building the pre-fix tree) and
confirmed refused at check time after it, for all three routes.
Three more findings, all in the runtime rather than the boundary:
view_vec_check, on finding a stale container, rendered the very view it had
just declared unsafe to read — which called back into the same check,
unconditionally, an infinite recursion rather than the intended trap. Fixed
by never rendering the container in the stale message at all; the sentence
names the two epochs and nothing else, which is everything a reader needs
and the one thing that was safe to read.
dyn_equal's VEC arm read x->len and x->u.v.items regardless of kind, which
for a view answers 0 and the union's other member reinterpreted as dyn
words: two views with different contents compared equal, a view and an
equal heap vec compared unequal, and a map keyed by any view collided with
every other view, silently. vecish_len and vecish_at read either shape
correctly and the arm now goes through them. obj_words gets the same
explicit OBJ_VIEW case on the same reasoning, unreachable today only
because mark_push's own gate already excludes the kind — this is the belt
next to that brace.
The three restatements of flan_vec's layout — flan_rt.c's real struct,
flan_dyn.c's mirror, and dyn_ops.c's hand-built one — had a comment
claiming a reorder would not compile or link, which was never true of a
void*-typed forward declaration. flan_vec_layout and
flan_dyn_vec_hdr_layout each report their struct's size and field offsets;
dyn_ops.c's new "layout" mode compares both against offsetof on its own
hand_vec, so a disagreement is a FAIL line in dune test instead of a
silent corruption at whichever view reads through the wrong offset next.
Also: the survey program's comment excusing a by-value parameter's view as
"value semantics, not a hole" was wrong on its own terms — a write through
such a view does reach the caller's storage, only growth diverges — but the
question is moot now: every container the program views is a global, and
the file was rewritten around that rather than patched. And an i32 element
does not cross into a view either, but the refusal used to say why in words
that were true only of a string element; it now says what i32 actually is
and what the restriction is actually for.
Rebased onto dev-loop's item-4 landing (221df5a).
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.
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.
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.
Two things a type provider needs and neither of which a macro could do.
A package macro could not call its own package's functions. Load already
renamed the body so that (next c) reads (edn/next c) — the intent was written
down — and the module was then compiled from the prelude and the defmacros
alone, so the call arrived at the checker as "the call edn/next into an
imported package". The declarations now travel beside the macros in
Parse.imported_decls, trimmed in Macro.compile to what the macro bodies
actually reach. raylib's five with-* are pure quasiquote, so nothing of raylib
is reachable and its module is the one it always was — which matters, because
raylib's declarations are declares against a library a macro module has no
linker argument for.
And a macro had no way to resolve a path. (embed "assets/x.edn") resolves
against the directory of the source file the form is written in; a macro knows
the path it was handed and not what it is relative to, because a Form carries
no location. So the compiler pokes the call site's directory into two C
symbols before every expansion and (macro-slurp "...") joins the two. C data
and not a Flan global: the module is emitted with hidden visibility and only
the flan.macro.* thunks stay exported.
None rather than a condition, which is why this is not slurp: a condition
signalled inside an expansion goes through the module's own copy of the
runtime, and that is the failure Build.macro_module's hidden note measured.
The !-means-mutates convention distinguished nothing — there is no
immutable counterpart to contrast with — so every mutating name drops
the mark: sort, sort-by, sort-bytes, swap, reverse, append, append-i64,
append-f64, encode-rune, split-next, map-remove, map-next, and the test
helpers beside them. Two could not simply shed it: map! is map-in-place,
because map is the into transform's word and means the non-mutating
thing; put! is put-at, because put is the Map builtin. The ?-means-asks
convention stays. Dated records keep the old spellings; watch.clj's
reset-spies! and the other Clojure names are not ours to rename.
Six refusals in the runtime called _exit(134) where every other error had
learned to park: no restart by that name, a restart taken with the wrong
arguments or with none, a defer that invoked one, a null allocator, and
free-all on something with no region. Under a merged flan dev the compiler is
in that process, so a program that named a restart nobody established took the
session down with it, which is the one thing the break loop exists to prevent.
They park now. Not through flan_break_hook, which is what bounds and
arithmetic use: that hook may answer by aiming a transfer channel, and these
six are called by emitted code that falls off the end with no channel anywhere
in the call, so a restart chosen against one would be accepted and dropped.
flan_trap_hook says the other thing instead — stop here, let everything be
read, and refuse the resume with a reason.
All six park, for two reasons rather than one. Four are guards that fire
before the operation they guard, so nothing is half done and the frame reads
like any other. The other two fire mid-transfer, with the frame's defers
possibly half run, and they park only to be looked at: stopping on a torn
unwind is strictly more than exiting before anyone can ask what tore it.
The break loop grew a per-snapshot resumable flag for it. Restarts are still
listed and still numbered, the terminal marks them untakeable and the socket
reports the same positions as unreachable, and the listener refuses a choice
with the trap's own sentence rather than the thunk-boundary one.
Standalone builds die exactly as they did: nothing installs the hook in a
program that did not import the agent, and the acceptance case for free-all
still wants exit 134 and the same message.
The review entry that asked for this named flan_exit_hook, which is normal
termination and not this at all; it is struck out with the correction.
dev-chatty.flan outlives the surveys' twenty seconds by design, and unlike
dev-repl it prints while it does -- so the two backends stop at different
lines and the diff reports on scheduling rather than on lowering. It joins
dev-loop and dev-watch in the excluded-by-name list in both sweeps, with the
distinction written down.
rt_flush_out is guarded on __wasm__: the pipe it is careful about belongs to a
merged flan dev, which is only ever a native host, and wasm32 need not answer
for a descriptor mode its runtime may model differently.
And three comments that went false with the _exit: the atexit registration in
the merged entry point is no longer there for rt_die, which unlinks the socket
for itself now, so both places that said so say what it is actually left
covering.
(/ 0.0 0.0) printed nan through LLVM, which folds it at compile time to
the positive quiet NaN, and -nan through x86, where divsd computes the
negative one. Put the operands in globals so nothing folds and both say
-nan, so the divergence is the folding path and not the arithmetic.
The sign bit of a NaN is not a property of the number and IEEE 754 does
not specify it, so the print site is where this is answered.
flan_f64_to_bytes renders any NaN as nan, and the two dev emitters do
the same. That is not a new rule: format-f64 in the prelude has always
answered nan for this value, so a build where (print x) said -nan and
(show x 2) said nan was contradicting itself inside one backend. An
infinity still prints signed.
format.flan prints the three non-finite values through print as well as
through show. It is in the survey corpus, so the one program pins the
printed form under dune test and the agreement between backends under
the survey.
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.
rt_die began with fflush(stdout) and ended with exit(134), and under a merged
flan dev both could hang. The flush waits on a 64K pipe whose reader is busy;
exit runs the atexit chain and the ELF destructors, which want the loader lock
a dlopening listener thread may be holding, and in that build the chain also
holds OCaml's shutdown. A bounds failure that hangs is worse than one that
kills the process, because nothing is printed and nothing exits.
So the flush every trap does first goes through rt_flush_out, which puts fd 1
into non-blocking mode and accepts a truncated tail, and rt_die takes _exit
and unlinks FLAN_DEV_SOCK by hand -- the same shape as die_now in
flan_agent.c, which argued all of this first and is quoted rather than
diverged from. On a terminal, a file, or a pipe with room, O_NONBLOCK changes
nothing, and the acceptance corpus diffs that output.
One consequence worth knowing: _exit skips ASan's exit-time leak report, so a
trapping program under @sanitize no longer reports leaks.
Closing the window of a printing program left the pipe full, and the flushes
on the way out blocked on a compiler thread that was busy answering the very
request asking to run it again. program_state still said RUNNING, so rerun
refused a finished program as "the program is already running".
Two flushes moved. flan_exit no longer flushes before the hook -- exit(3)
flushes for itself, so that call only ever ran on the merged path, and there
it was the first thing to block. flan_merged_park flips the state under the
lock first and flushes after, because a state flip is two stores and cannot
wait on anything.
What widens is the window in which the program is parked and not yet on the
condvar. Nothing is lost there: program_asked is the fact and a signal
delivered to nobody is discarded. Two re-runs in that window are both
answered ok for one run, which is the trade against a refusal that was false.
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.
Five more: file-exists?, file-size, delete-file, rename-file and
make-directory. The interesting thing is not the list, it is the line drawn
through it.
file-exists? and file-size answer a value -- a bool and an (Option i64) -- and
are prelude functions over one declare that the compiler knows nothing about.
Absence is the reply to those two questions and not a fault, so a condition
would make the ordinary case pay for a handler search, and there is no restart
a handler could take that would turn "it is not there" into a different
answer.
delete-file, rename-file and make-directory answer () and signal FileError,
and they are check.ml builtins for the one thing a declare cannot do: they go
through file_guard, so each failure arrives under retry and use-value. Those
are restarts a handler really can take -- make the parent directory and retry,
or supply another path -- which is exactly the case a bool return throws away.
op continues the prelude's numbering as 2, 3 and 4.
One C function behind the two questions rather than two, because they are one
question: stat answers whether the path resolves and how big it is in the same
breath. It is stat and not flan_file_size's fopen-plus-ftell, which is shaped
by slurp being about to read the file and is wrong as a general size -- fopen
on a directory succeeds on Linux and ftell then answers a number that is not a
file size. The two coexist and answer different questions.
rename holds the source in the guard's path slot, so a use-value renames a
different file to the same destination. Both readings are plausible until
somebody says which, so check.ml says which.
The errno mapping is not extended. Its three buckets are what a handler can
act on; EEXIST and ENOTEMPTY land in io with everything else, and that is
honest until conditions have a hierarchy to hang a fourth reason off.
All three carry barf's decision 2 unchanged: they change the filesystem, so on
the web they signal rather than succeeding quietly into a filesystem the page
throws away.
Not here, and not half-parsed either: a directory listing, which needs an
allocating builtin and a Vec of owned strings, and streaming IO. Neither has
a name to trip over.
programs/files.flan makes and removes its own tree and takes both restarts on
operations that write. The runtime additions continue the block at the end of
flan_rt.c.
Nothing in it could. A game got a clock from raylib and a program without a
window had none at all, so "how long did that take" was unanswerable in the
half of daily use that is a tool rather than a game.
Two clocks, because the mistake a single one invites is using it for the other
job. monotonic-ns measures: it never goes backwards, nothing adjusts it, and
its zero is arbitrary, so it is meaningless alone and correct as a difference.
unix-ns dates: nanoseconds since 1970, which is what goes in a save file, and
which jumps in either direction when somebody sets the system clock. The names
are picked so that reaching for the wrong one reads wrong.
This is Odin's shape, from core/time/time.odin and core/time/time_linux.odin:
Tick against Time, both an i64 of nanoseconds, over MONOTONIC and REALTIME,
with the seconds-valued face derived rather than a second syscall. Three C
functions here and six Flan names over them, which is the rule flan_rt.c's own
header states -- a primitive is the only thing implemented twice.
The monotonic origin is the first read of the clock in the process, not boot,
and that is the one decision worth arguing. CLOCK_MONOTONIC counts from boot,
so on a machine up a hundred days the raw value is past 2^53 nanoseconds and
monotonic-seconds would lose sub-microsecond resolution depending on the
machine's uptime rather than on anything the program did. Latched to first
read it stays integer-exact for a hundred days of process life, and it also
matches what a game already has: raylib's GetTime is seconds since
InitWindow, so the two numbers now mix without a conversion at every site.
sleep-ns loops on EINTR, because otherwise a signal cuts the wait short and a
frame loop wobbles for reasons nothing in the program explains. It is
documented as at-least and not as a frame limiter; the shape that actually
paces a loop is a deadline recomputed from monotonic-ns each turn, and the
comment says so where somebody will read it.
getenv answers an (Option [u8]) viewing the process environment, which needs
no allocator and no free and is safe precisely because nothing in this
language can call setenv or spawn a process. The absent case rides in the
length rather than in the pointer: there is no null test to write, since a
(Ptr T) here always addresses something, so flan_getenv answers -1 and a
pointer at a valid empty string and the Flan side tests arithmetic.
The runtime additions are a single block at the end of flan_rt.c, with
<time.h> inside it for the reason <errno.h> sits beside the file section.
programs/time.flan asserts invariants and never a reading -- t2 >= t1, a sleep
that did not return early, a date after 2020 and before 2100 -- because the
same file is in the corpus @x86 builds twice and diffs, so a timestamp would
fail a correct compiler on its second run.
Every size the containers compute is a product of a capacity the program chose
and an element size the checker did, and a product that wraps leaves a block
that fits beside a capacity that does not. The next write goes past the end of
an allocation a sanitizer was told to expect, which is the one corruption
nothing in the suite could have found.
The Vec's growth, the Pool's two blocks and their sum, the map's five runs and
the budget check now go through checked arithmetic. A size with no
representation reports along the path an out-of-memory already takes, with the
largest number the condition's field can hold, since the true one has none.
The test pins the case the guard exists for: an element of 2^33 + 1 bytes at a
capacity of 2^31 wraps to 2 GiB, which a heap allocator answers.
A (Vec Value) where a Value may itself hold a (Vec Value) — the recursive
dynamic value an EDN reader has to answer with when nobody hands it a target
struct type — was refused five different ways, and every one of the five gave
the same reason: the container runtime is type-erased, so it copies and
releases slots bytewise and cannot reach inside a slot. A free would release
the slots and leave every block they point at stranded.
That reason is about teardown, and it does not hold for a region. free-all
never releases an individual slot; it takes the whole arena, and every block
the elements own is in it, because they came out of it. The refusals were
over-broad, and what they were guarding was never ownership — ownership
tracking is untouched here, moves are still moves, and Types.is_move_only is
the same function it was.
So the question moved rather than disappeared. It could not stay at the type,
because can-free is a capability on an allocator value and with-allocator
rebinds a dynamic variable: which tier a (vec-new) will meet is not a property
of the place its type is written. What is decided at compile time is only
whether to ask, which is a property of the element type; the answer is a
run-time branch on the allocator, one per container and never per element,
because the alternative is a walk at release and a walk at release is the
registry of destructors the frame tier's reset exists to not have. It is
emitted at every growth and not only at the construction, because ZII means a
container can exist without ever passing through (vec-new) — a case field left
out of a literal, a global that starts zeroed — and those adopt the context on
their first push.
free on such a container is refused rather than made quietly shallow. It cannot
recurse, which is the whole premise, and releasing the outer block alone would
be "I freed it" written over a program that stranded everything inside; this
runtime refuses that collapse everywhere else. The message names free-all,
which is reachable by construction. clone stays refused for a reason the region
does not dissolve, and the old message had bundled the two failures under one
sentence: what disqualifies clone is not that it copies a header — so do at and
get, and they are fine, because they promise nothing — it is that clone
allocates a new block and promises independence, and a bytewise copy hands back
elements still pointing into the original's region.
A struct or union field is admitted only where the field's container holds
owning elements, because that container can only have been built against a
region. A field holding a plain (Vec u8) stays refused: nothing would force
that one into a region, and two copies of the aggregate would be two headers
over one heap block. vec-in-struct.flan still pins that.
The epoch already covered use after free-all, including the case this makes
reachable — an inner header copied out of an arena-held element into a local
still traps, because an Allocator is a pointer and a copied-by-value one would
carry its own epoch.
arena-value.flan builds the value by hand; arena-edn.flan reads a real document
through the tokenizer, and its reader takes no allocator and names none,
because spec-memory.md already puts the allocator in the calling convention.
arena-region.flan is the branch itself: run 0 is the (Vec (Vec i32)) control
that must not trap, and runs 1 and 2 are the two ways this dies.
You run a program under flan dev, it opens a raylib window, you close the
window, main returns — and there is no way to get another window short of
flan-dev-restart-program, which throws away the build, the session and every
global with it. In Common Lisp or Clojure the image outlives main, so you call
it again. The process here already outlived main: the exit hook flushed, closed
stdout and sat in for (;;) pause(). Nothing could wake it.
So main() is a loop. The hook records the status and longjmps back into a
setjmp in main() — there is no return available, since flan_exit is reached
from wherever the program happened to be — and the thread waits on a condition
variable until the new rerun op signals it. The main thread is the one that
runs main again: a window belongs to the thread that opened it, and on macOS to
the first thread of the process. A longjmp pops no frame, so the park first
empties the handler stack, the restart stack and the shadow frame chain, each
of which was a chain of allocas in stack the next run is about to write over.
Nothing else is reset; the second run reads whatever the first left in the
globals, which is the semantics that was asked for.
Closing stdout had to go with it. That was how the compiler learned the program
was done, but a pipe delivers EOF once, so the signal and the program's output
were the same resource and spending it left the second run with nowhere to
print. The descriptor hazard the old code reopened /dev/null for goes away with
the close that caused it. Liveness is asked for instead, through a weak symbol
in the same style as the agent's, and is now three states rather than two: Live,
Parked and Gone. Every guard branches on that before consulting the break
state, because the agent's listener answers "running" while the program is
parked and telling somebody whose program has finished that it is running is
worse than saying nothing. Only eval accepts a parked program — it queues and
waits for nothing, and the queued module installs at the first frame boundary
of the next run, so a body can be fixed while parked and the re-run executes
it. Everything else needs a frame boundary or a stopped stack, has neither, and
says which, naming the command that gets the program back.
A re-run while the program is running is refused rather than queued: the test
and the signal happen under one mutex, so two mains writing the same globals at
once never starts.
:parked rides on every reply beside :stopped, for the reason :stopped does —
finishing is as unannounced as stopping, more so when the way it happens is a
mouse click on a title bar. Emacs shows flan:parked in the modeline and binds
flan-rerun to C-c C-M-x.
Three arithmetic situations had no defined behaviour and the two backends
disagreed about all three: a divide or remainder by zero, which was a raw
SIGFPE with no message and no location; (/ min -1), whose quotient is one past
the top of the type; and a float to integer cast whose value does not fit,
which LLVM called undefined and would fold to anything.
They now signal ArithError with `error`, exactly as a bad index signals
BoundsError, and die with a sentence naming the file, the line and the operands
only if nothing answered. The guards ride the same --checks flag as the bounds
check and are elided with it.
No restart is established at the failing operation. The sketch this started
from asked for use-value, and the implementation ruled it out: a restart frame
is allocated by the restart-case that offers it, on its own stack, so the
runtime cannot hold one on a program's behalf and use-value here would mean an
alloca and a restart frame at every division in every checked build. That is
the cost already refused for indexing, buying a silently different answer.
The x86 backend is unchanged and is the next commit.
Two loose ends from NEXT.md.
slice-from-ptr's run-time refusal borrowed @flan_slice_error and reported a
range and a length the caller never wrote. It has flan_slice_promise_error
now: signals BoundsError, walks the handlers, offers the break loop, falls
through to a message and a status like the two beside it. The sentence names
what was promised and what was passed, and a second line says what is not
checked. The condition fields stay (0, n, 0) — the violated condition as a
range, and not (0, n, n), which reads as in bounds.
And a session now holds the buffer's own defmacros: seeded in Session.create
from the same read that produced decls, and added by Session.eval so a
defmacro typed at the editor joins the set the way a defn does. Not a re-read
of the file, which would put unsaved-versus-saved skew inside expansion. The
commit stays below the checker. Macro.program dedupes the ambient set against
the forms being parsed, left-wins, because unqualified names can now collide.
Two loose ends.
The arena was invisible to memcheck. free-all is retain-capacity, so from
malloc's point of view nothing died and round two of a reset arena could read
a byte it never wrote, print round one's value, and draw no report.
flan_arena_proc now issues memcheck's MAKE_MEM_UNDEFINED over the whole
capacity beside its registry call. Measured on the same machine: the control
produced ERROR SUMMARY 0 before and 6 errors from 4 contexts after, with
--track-origins naming the client request. It is a control in
test_valgrind.ml now rather than a printed note.
The macro is vendored, not included, and the argument is measurement: the
machine that runs the sweep has valgrind and not valgrind-devel, so a guarded
#include would compile to nothing exactly where it matters and the control
would go quiet with no diagnostic. There is also nowhere to put an -I --
flan_rt.c is cat'd into an OCaml string literal and handed to clang in a
scratch directory. The __x86_64__ guard is load-bearing: the same runtime is
built for wasm32-wasi and emscripten.
Cost outside valgrind: 23 instructions on the free-all path only, about 1ns
per reset over fifty million of them, against a run-to-run spread wider than
the effect. Nothing on alloc, resize or free. valgrind.supp still holds no
suppressions; the corpus stayed clean across the change, which is its own
finding.
merged_serve's warning path deserved a test and has one. The discriminating
fact is not the log line but the policy: two_process kills its child and
fails where merged_serve warns and serves anyway, and nothing held that
second answer in place. dev-noagent.flan plus the last block of test_dev.ml
assert the session still answers describe after the wait runs out. Verified
by reverting the policy: the block reports rather than passing. It costs the
full ten seconds and there is no way to spend less. HANDOFF-f1.md is deleted.
The table, and the half of the wiring that needs no type name. A struct is its
C layout with no header and no tag word, so nothing at run time can say what is
at an address — and adding a tag would break the FFI. The registry sidesteps it:
the compiler knows the type at the moment memory is asked for, so the insert is
emitted, and the dead-marking is not, because an address needs no type.
Entries are blocks rather than values and lookup is containment, which is not an
optimisation: every heap pointer a program can hold is interior. (at v i) is
v->ptr + i*size and (resolve p h) is an item in the middle of a pool. Exact hits
would answer nothing anyone can ask.
Dead entries stay until the allocator hands the address out again, which is when
the old answer stops being true. An arena's free-all marks its whole range dead
— the release memcheck is never told about. That does not make memcheck report
it; it makes the inspector able to.
(Handle T) and (Pool T) land as types and as a runtime. A handle is one
int64_t — slot index low, generation high — so it copies, zeroes and
compares like the integer it is and owns nothing. A live slot's generation
is odd, which makes a zeroed handle resolve to nothing rather than to slot
zero, and makes iteration free. Wrapping retires the slot rather than
reissuing it: 2^31 reuses is rare, and rare is not an answer when the
failure is the silent wrong one the type exists to prevent.
No surface yet — the checker still has no names for any of it.
`flan dev` now builds one binary that is the compiled Flan program and holds
the whole OCaml compiler, and execs it. The program keeps main() — macOS needs
the window there — and caml_startup happens on a pthread beside it, next to the
listener flan_agent.c already starts. The editor's socket and the wire protocol
are untouched: Emacs cannot tell the difference.
Two rules are written into lib/dev.ml rather than discovered later. The game
thread must never call into OCaml, because a native thread has no safe points
and so can never be stopped by the collector — which is exactly why a frame is
never paused, and exactly what one convenient direct call would undo. And no
OCaml value may be stored in Flan memory without caml_register_global_root,
which is the way the spike's "the GC does not touch the arenas" measurement
stops being true.
The link is spelled in dev.ml out of Build's existing public pieces rather than
as a mode of Build.executable: lib/build.ml belongs to another lane this week.
It should collapse into Build once that lands.
A Flan main does not return — Emit ends it with flan_exit and an unreachable —
so in one process that call would take the compiler down with a program that
merely finished. flan_rt.c grows a hook, null in every other build, that the
merged entry point uses to flush, close stdout and park. The compiler then
learns the program is done the same way the daemon did: the pipe reads EOF.
--two-process keeps the old shape for a machine that cannot build the compiler
object, and nothing has been deleted.
Measured rather than guessed, and the guesses were wrong twice: the
per-slot cell division and the block-size divisions were each replaced
first, and neither moved the number. A profile named the four that did.
The hash was FNV one byte at a time, a serial multiply chain per byte
and a quarter of the operation. It is eight bytes at a time now, and a
key that is one machine word — every integer, every enum, every bool,
so very nearly every key — is one load and one mix with no loop at all.
This is where "the hash is compiled concretely per key type" stops
describing the arrangement and starts being the reason it is quick.
Equality on eight bytes was a call into libc's vectorised memcmp, an
eighth of the operation, and copying a value out was a call into
memmove. Both are a load and a compare now for the sizes that are one
word.
The block geometry was recomputed five times over inside one function,
and that function ran twice per lookup — once in the probe and once
again in get. It is one struct built once and handed back. The seed was
a five-multiply avalanche on the critical path of every probe, for
mixing the hasher does again immediately afterwards; one multiply is
all it has to do. And 64/size is a table, which is Odin's Map_Cell_Info
by another route — Odin precomputes it per type because the probe loop
must not divide, and the sizes reach this runtime as plain arguments.
Numbers, on this machine, i64 to i64, against CPython 3.13's dict on
the same workload. Cache-resident, 10k entries, 10M lookups: 21ns
against 132ns, so about six times quicker. That is the answer to "is
this another Python dict", and it is the one the design predicted.
At a million entries it loses, 1.41s to 1.16s, and that is worth
writing down rather than leaving out. Both are waiting on memory there,
and this layout waits longer: keys, values and hashes are three
separate runs, so a lookup that misses everything takes three cache
misses where a compact dict takes two, and the hash run is a full eight
bytes a slot. The layout buys probe locality, which is a win while the
hash run is resident and a loss once nothing is.
The checker half. {K V} and (Map K V) resolve, and map-new, put, get,
has-key?, len, reserve, clone and free are named calls over the
type-erased runtime, with the two sizes and the key's hash and equality
pair produced at the site because the site is where the concrete types
are known. len, reserve, clone and free were extended rather than given
map-shaped names of their own, which is what at and len already did for
Vec: one question, one word.
The key's pair is resolved per key type and mostly is not emitted at
all. Every integer, enum, bool and fixed array of those is compared
bytewise and served by one runtime pair over (pointer, size). A string
is not, because its bytes are elsewhere and two equal strings at
different addresses must hash alike. A struct is not, because its
padding bytes are indeterminate — two structs equal field by field can
differ bytewise — and because it may hold a string. So a struct gets a
pair emitted for it, walking its fields in declaration order and
addressing nothing but fields, and that is the only case that does. Two
maps with the same key type share one pair, and a struct reached twice
through two fields emits one.
get returns (Option V) and builds it here rather than in the runtime,
which has no idea what an Option's layout is — keeping it that way is
what lets one entry point serve every value type. put is upsert
returning Unit. Both bind their arguments to slots before the guard, so
a retry re-attempts the allocation and not the expressions that produced
the key and the value.
Refusals, each by name: a float key has no usable equality at all, which
is not a milestone question; a Ptr, slice, Vec or Map key would hash an
address rather than what it points at; a move-only value would have its
header duplicated by clone, which is the refusal (Vec (Vec T)) already
carries; Unit as a value has no bytes to store, and it is the natural
spelling of a set, so it is refused by name rather than by dividing a
cache line by zero.
Work in progress: it builds and the runtime is exercised and green, but
no Flan program can reach it yet — the checker half is not written, so
(Map K V) is still refused where it is resolved.
runtime/flan_rt.c is Odin's map, followed deliberately: open-addressed
Robin Hood hashing at a 75% load factor, cache-line cell packing so no
key or value straddles a line, and the probe loop kept to pointer-width
integers. One type-erased runtime over (key size, value size) plus a
hash and equality pair, the same arrangement the Vec runtime has over
(size, align).
Two departures from Odin, both deliberate and both commented where they
are made. There are no tombstones, because removal is deferred by
spec-memory.md, and that deletes the backward-shift loop entirely — it is
the single largest reason this is shorter than the original. And the
header does not stuff log2cap into the low bits of the data pointer:
Odin does that because Raw_Map must be three words, whereas this header
already carries an allocator, a generation and an epoch, so the tagging
would buy nothing, cost a mask on every access, and make correctness
depend on the block being 64-byte aligned rather than merely faster
when it is.
The scaffolding around it: a Map is 48 bytes and six words like a Vec,
it crosses to the runtime by address because it is move-only and must be
mutated in place, and it has a DWARF type showing all six fields.
Tast.FnAddr is new — the address of a function, either one this compiler
emitted or a runtime C symbol. It is not a function value: nothing in
the surface language can produce one, name its type or call through it.
Odin's Map_Info reaches its hash and equality pair exactly this way.
reach.ml learns that edge, because a function reached only by address is
invisible to the reachability walk otherwise, which is the same hazard
handler-bind clauses already had.
The hash and equality pair carries the transfer channel as its last
parameter, because a pair emitted for a struct key is an ordinary Flan
function and every Flan function's signature ends with one.
Decision 1. Odin's #load and #load_directory are the model, spelled as
ordinary named calls — an s-expression language already has a head
position and does not need Odin's `#`. (embed "p") is a [u8], (embed "p"
string) is a string, and (embed-dir "d") is a [n EmbedFile] sorted by
name.
Two spellings rather than one that changes type with its context. Odin
threads a type_hint everywhere and can afford it; with structural
equality and no implicit widening, the same text meaning two types here
would be a wart. The path is a literal and resolves relative to the file
the form is written in, both of which are Odin's rules and for Odin's
reasons: the bytes must be in hand before any value exists, and a
package's assets must not depend on where flan was invoked from.
The bytes reach the program as a [Str] node typed [u8], not as a [Bytes]
prim over a string. [Bytes] is identity — emit.ml lowers String and
Slice _ to the same %slice — and wrapping the literal in a prim would
make the node non-constant, so an (embed-dir) bound with defconst could
not be an LLVM constant. Both string emitters take the bytes and ignore
the node's type, so it is the same constant either way and one a global
can hold. emit.ml's escape is byte-exact, so a PNG survives the .ll.
The directory lookup is a linear scan in the prelude over a slice of
EmbedFile. A directory embed is tens of entries out of cache-warm
.rodata, and a compile-time perfect hash would be a build-time map with
its own failure modes that nothing has asked for. Sorted because readdir
order is filesystem-dependent and an unsorted embed would make two
builds of identical sources emit different .ll.
The slice points into .rodata, so a store through it segfaults at -O0
and is deleted at -O2 — the same measured trap the prelude's ASCII-case
note describes for (bytes "Hi"). Inherited, not widened; clone into a
Vec for a mutable copy.
The debug-info arm and the structural printer are each a separate path from
everything the suite was exercising: `outputs ~dev:true` goes through the cells,
not through DWARF, and no program printed a Vec or an allocator. That is
NEXT.md's landed item 2 exactly — field_addr took only Types.Named, so the
printer's Option arm had never run and would have died on the first (Option T)
pointed at it. Both arms work; both are now reached, and the DWARF row asserts
the composite's size as well as its name, because an element count that
disagreed with `lay` would print plausible values for the wrong fields.
Printing a Vec did not work: `println` checked its argument as an ordinary read,
so it moved, and every printing of a Vec would have been its last. Printing is a
borrow — the walk goes over the value and keeps nothing.
And `vec-new` with an explicitly named null allocator no longer substitutes the
heap for it. Adopting the context for a *zeroed* Vec is the documented rule;
quietly substituting for an allocator the program named is the same "released
the region / never made one" collapse free-all already traps for, except silent
and found later as a leak. The no-allocator-named case never arrives as null —
the checker passes flan_context_allocator(), which always answers one.
Two element types, one runtime, and the element type appears nowhere below
the call site: size_of and align_of are produced where the concrete type is
known, which without generics is simply the concrete call site. That is
Odin's arrangement and it is what spec-memory.md specifies. `at` and `len`
were already the names for a fixed array and a slice, so a Vec extends them
rather than adding a parallel pair — the asymmetry `nth` was removed for —
and the value form and the place form go through one helper so they cannot
drift apart.
StorageExhausted lands with step 2 rather than after it, because the
signatures depend on it: `push` and `reserve` are Unit, `clone` is the
container, and nothing grows a Result. It is built out of nodes that already
existed — a while, a restart-case and an error — so the backend learned
nothing about allocation. The restart is established at the failing
allocation, which spec-memory.md names as the exception to "restarts go at
the resync point, once", and the element a push was given is bound to a slot
before the loop so a retry re-attempts the allocation and not the expression.
Move-only is a dead set on the checker context, and it is flow-sensitive at
an `if`: both arms start from the same set and the union survives the join,
so `(if c (free v) (free v))` is legal and a one-armed free still kills the
binding. The case a dead set cannot answer is a move inside a loop — merged
once at the end of the body it counts one move, not two — so that is a rule,
refused with its reason.
Four decisions the spec did not settle:
The Vec header is six words in every build, not four in release. A layout
that changes with a build flag can disagree across the reload boundary
silently: a redefinition module is built by llc and ld against a host built
separately, and nothing makes the two agree on a struct size. The 32-byte
release layout is deferred on that.
A zeroed Vec has a null allocator, and the first operation needing storage
adopts the context allocator. Odin's behaviour. The alternative was refusing a
Vec-typed struct field until drop lands; shipping the null was a null deref on
the first push.
A Vec's length and index are i32, like every other length here. Widening
indices is one change across all the containers, not a Vec question.
`let` has no type annotation, so a local Vec has nowhere to say what it holds
and the element type is written at the call: `(vec-new i32)`. This is not the
explicit instantiation syntax the generics section rules out — nothing here is
generic and the name resolves as an ordinary type. Where the context says, it
may be left out.
The allocator grew a budget: a ceiling on live bytes, 0 for none. The retry
restart is only answerable by a handler that can make the *same* request
succeed, and for a fixed backing store the handler that works is the one that
raises the ceiling — releasing the region a container lives in invalidates
the container, which is what the epoch check catches. The spec's "grows the
arena and then invokes retry" needed something to grow.
The generation word is bumped on every reallocation and read by nothing. The
stale-slice trap it is for needs a slice that can carry the Vec's identity,
and a slice is ptr+len. Said plainly rather than implied by the word's
presence.
spec-memory.md defines an allocator as a procedure plus an opaque data
pointer, which reads as a function value, which check.ml refuses four ways.
None of the four is anywhere near this: `Allocator` is a `Types.t` case with
no user-writable constructor, the way `string` is a builtin ptr+len, its
procedure is a C symbol the emitter names, and every operation is an ordinary
named call that `check_call` already routes through `named_call`. The one
thing that really does need milestone 5 is a *user-written* allocator — it
wants a defn's name in value position — and that is refused by name with that
reason rather than left to come back as an unknown function.
An `Allocator` value is a pointer to the runtime's struct and never a copy of
one. That is forced, not chosen: the capability set has to be readable from
wherever a container landed, and `free-all` bumps an epoch every container
made from the allocator has to observe. A copy would give each its own epoch
and the dev trap would never fire.
Two decisions the spec left to be made here, both announced in BUILT.md:
`free-all` is retain-capacity — offset = 0, the pages stay — and handing the
pages back is `arena-destroy`, a separate operation. Zig's reset takes a mode;
Odin's arena_free_all is already retain-capacity in effect. Taking the mode
would have grown the operation table the spec froze at four. The epoch is
bumped either way, because the pages being the same does not make a container
made before the reset valid.
`context/allocator` and `context/temp` are dynamic variables with save and
restore, not extra parameters. The spec calls the allocator part of the
calling convention; the literal reading touches every signature, the FFI shim,
the dev trampolines and the reload ABI for the same observable behaviour.
`with-allocator` is its own IR node rather than a let and two calls, because
the restore has to happen on the transfer path too. A body that errors leaves
through the landing pad, and a context allocator left pointing into a region
nobody outside the body has heard of would be wrong in the break loop, which
is exactly where something is about to allocate to render a condition. The
acceptance program asserts that path by taking a restart out of a body.
The backend grew one prim, `Rt of string`: a call into the runtime's C named
by symbol, with argument and result types read off the expression nodes. The
container runtime is type-erased and therefore *is* a list of C entry points,
so one arm covers all of them rather than one arm each.
spec-conditions.md §3's remaining half: a clause binds parameters, an
invoke-restart supplies them, and what a restart takes is compared at run
time because a restart is found by name on a dynamic stack — neither end
of the transfer can see the other.
The parameters live in a buffer the restart-case owns, not the invoker's
frame. A clause runs after every frame between the two has returned (§5),
so anything on the invoking side is gone by then; the invoker stores into
the target frame while both are still alive, which is the one moment they
are.
The frame carries the parameter count and a hash of how the types are
spelled, and every frame carries them whether it takes parameters or not:
a clause taking none has to refuse arguments as loudly as one taking two
of the wrong type. The count is not redundant with the hash — it is what
makes a 32-bit collision between two different signatures harmless — and
the spelling itself rides along so that a mismatch can say what was
wanted and what was given, which neither end alone knows.
The arguments are evaluated into slots before the invoke node rather than
hanging off it. An argument that transfers on its own is then guarded
before anything aims the channel, and a call written in an argument is on
the ordinary walk Reach and Load already do — a node they treat as a leaf
would have dropped the function and failed to link.
The other way a transfer starts is the break loop, which chooses by
position and has nothing to fill parameters in with. It reaches a clause
through the same channel, so nothing downstream could tell the two apart:
the frame is pushed with the buffer marked unfilled and a clause with
parameters checks that mark before reading it. Refused with the reason
rather than run on values no one supplied.
runtime/flan_rt.c gains two message functions and nothing else; the
restart frame's first four fields, which are the ones C declares, do not
move.