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bigmerge 3fcc36c2f1 runtime: transduction is a language concern, so move it into the language
El SDK CI - dev / build-and-test (pull_request) Failing after 14m58s
#141 let signal enter as geometry and it worked, but it was placed at the
CONSUMER and said so in its own commit message. This is the correction.

Three defects, all of them placement:

1. It sat in the engram. Ingest is a LANGUAGE concern — every el program
   touching any modality needs it, and the engram is merely one el program
   that happens to hold a graph. The geometry surface is now defined in
   el_runtime.c immediately ABOVE the engram section and depends on nothing
   inside it. Delete the entire engram and geometry still enters el.

2. It marshalled the vector as a hex STRING, because el had no first-class
   geometry value — which reintroduced text as the TRANSPORT medium one layer
   below the problem being fixed. Geometry is now an el value: a magic-tagged
   heap object carried in el_val_t, same discipline as List/Map. Hex survives
   only as an adapter at the edge, which is all an encoding should ever be.

3. It needed an arbitrary `dim <= 8192` bound purely to size an allocation
   from a caller's CLAIM about a string's length. A value carries its own
   width, so the width is derived and never asserted. The bound is gone, not
   raised — there is nothing left to validate.

Language surface, none of it engram-prefixed: geometry_new / _dim / _is /
_get / _set / _norm / _free, geometry_from_f32le_hex + geometry_to_f32le_hex
as the wire adapters, realizer_register(modality, fn_name), realizer_has, and
transduce(signal, modality) -> Geometry.

REALIZERS ARE DECLARABLE IN EL. This is the part that makes the move real
rather than nominal: registration resolves a name with dlsym against the
running binary, the identical mechanism http_set_handler already relies on,
because every el `fn name(...)` compiles to a global C symbol with that exact
name. So an ordinary el function IS a realizer and a new modality needs no
runtime patch. Verified end to end in lang/examples/transduce.el: an el-defined
tone_realizer is registered by name, transduce dispatches to it, and the
signal demonstrably reaches it (distinct signals produce distinct geometry).

A modality with no realizer transduces to NOTHING. There is deliberately no
built-in realizer, not even for text — silently embedding a description of a
signal and calling that perception is the exact defect this ends.

engram/src/server.el is migrated: POST /api/nodes decodes "emb" hex exactly
once, at the edge, into a Geometry, and everything below that line moves
geometry. The wire is unchanged because production clients speak it. "dim" is
now an ASSERTION about the vector, not the source of its width; disagreement
is a rejected ingest, not a silent reinterpretation.

#141's engram_node_set_emb becomes a DEPRECATED WRAPPER over
geometry_from_f32le_hex + node_attach_geometry — kept only because the runtime
ships as an SDK asset and a downstream binary may link the symbol. Its exact
contract, negative cases included, is preserved and re-verified.

ingest.el's `fn transduce` is renamed transduce_manifold. Mechanically it had
to yield the name (duplicate C symbol, a hard compile error, measured). But it
was never signal->geometry: it chunks already-extracted content into a node+edge
manifold, one layer up, and had taken the name belonging to the primitive
underneath it. Behaviour unchanged.

PROPERTIES FROM #141 PRESERVED, each re-measured on a scratch engram (:8971,
never prod :8742):
  - off-dimension vectors stored but NOT indexed — the HNSW build loop still
    filters on n->emb_dim == dim at four sites, so a 64-dim voice vector is
    durable and addressable without perturbing the 768-dim canonical index
  - geometry makes a node ineligible for embed_backfill: after backfill the
    64-dim voice node was still 64-dim while the text control acquired 768
  - the create response reports whether geometry landed, and the node document
    always emits emb_dim and embedded

Read-back with control and negatives, all verified against a PID-confirmed
fresh binary: geometry node emb_dim=64 embedded=true / emb_set=1; text-only
control emb_dim=0 embedded=false / emb_set=0; malformed hex, ragged length,
and dim-disagreement each emb_set=0.

Two compiler landmines found by reading the generated C rather than trusting a
successful build, both documented at their sites: elc lowers `a == b` to
str_eq unless both operand NAMES are in the per-function int-name set (which
does NOT propagate into nested if-expression blocks — the first cut would have
strcmp'd two integers as pointers on the first geometry-bearing request), and
`+` lowers to string concat when either operand is a user-defined call.
2026-08-16 11:37:27 -05:00
will.anderson a6cef4b983 runtime: publish the vector index instead of guarding it (#143)
El SDK CI - dev / build-and-test (push) Failing after 10m29s
2026-08-16 16:33:28 +00:00
Neuron 8e9d88fc01 runtime: publish the vector index instead of guarding it
El SDK CI - dev / build-and-test (pull_request) Failing after 10m59s
The crash (SIGTRAP in engram_activate -> eg_vindex_sync -> vindex_insert ->
_realloc) had three read paths mutating five process-global statics.
engram_activate, eg_knn_for_node (whose own comment says "No writes.") and
engram_geo_reify_run_json all called eg_vindex_sync, which frees the index,
reallocs the seen-map and inserts — on a read.

Three moves, in decreasing order of how much they dissolve:

1. Misfiled scratch is not shared state. visited/visit_epoch/visited_cap
   were never owned by the index; they are one traversal's local, hoisted
   into struct VIndex as an allocation optimisation. They want neither a
   lock nor a capability nor a pool — just to go back in the call frame.
   Two concurrent READS stomped each other purely because of this.

2. const IS the capability. Once the scratch leaves the struct, search
   reads and nothing else, so vindex_search takes a const VIndex*. That is
   exactly what a capability-pointer ABI would have bought — a read path
   physically cannot call vindex_insert, enforced by the compiler on every
   future caller — for one qualifier instead of an ABI swept across
   hundreds of builtins.

3. What survives is publication, not ownership. HNSW insert is NOT an
   append: it rewires the neighbour links of already-existing elements and
   reallocs elems[], so the store's append-only property does not transfer
   to the index derived from it. eg_vindex_sync therefore splits into
   eg_vindex_maintain (exclusive, sole mutator) and eg_vindex_view (shared,
   returns const VIndex*). A read path may demand that a current snapshot
   exist — a request to the owner, not a mutation by the reader.

Write-side owner: eg_vindex_note_embedded hooks the embedding-ASSIGNMENT
sites rather than the append sites, because a node with no embedding cannot
be in a vector index — embedding assignment is the event that owns index
membership. One O(log n) insert, no O(node_count) presence scan. This also
retires the "STALENESS (honest tradeoff)" note where a lazily-embedded
older node stayed invisible to route_nearest/autoconnect until a full
rebuild (the embed-gap #20 shape).

Evidence. The existing harness conflated two hazards, which is why fixing
half of it read as failure. Split into four:

  single (3000 vec, ASan+UBSan)          clean  ->  clean
  readers (4 readers, no writer, TSan)   RACE   ->  clean
  unsynchronized (writer+reader, bare)   race   ->  race, expected forever
  published (owner + 4 readers)          n/a    ->  clean, 3000/3000 landed

RESULT: PASS. recall@10 = 0.9365 at ef_search=128 (gate >= 0.90);
determinism byte-identical across two independent builds.

The unsynchronized half is now permanently expected to race, deliberately:
it is the executable proof that the boundary must live above the data
structure, not inside it.

fb32d15's guard is KEPT, correcting this design's own section 5. Measured,
it guards TWO structures and only one was converted here: g->nodes/g->edges
are realloc'd in place (el_runtime.c:7618,7629) and engram_activate_inner's
embed-backfill writes n->emb through exactly such a borrowed pointer.
Deleting the guard reintroduces a measured 11171->9579 edge loss. Its
comment is narrowed to the RAM graph and the deletion precondition named.

That corrects the ordering claim too: the residual is not one ABI that
dissolves everything at once, it is a PROPERTY applied per structure.
Residues evaporate in the order the property is applied, and a residue
whose structure has not been converted must be left standing.
2026-08-16 11:29:17 -05:00
bigmerge e99a4640e2 test: regression harness for the vindex concurrency crash
Promotes the two throwaway sanitizer harnesses used to diagnose the
2026-08-16 soul crash into engram/test/ so the bug cannot silently regress.

The harness has two halves and the PAIR is the point — it is what localises
the defect to concurrency rather than to HNSW logic:

  single      3000 clustered vectors, one thread, ASan+UBSan. The CONTROL.
              Must always be clean. During diagnosis this cleared all 13,820
              real dim-768 vectors from the live store, which DISPROVED an
              inspection-derived hypothesis about an out-of-bounds
              reverse-link write at engram_vindex.c:340.

  concurrent  writer + reader on one shared index, TSan. Currently reports a
              race at engram_vindex.c:195 (visited_reset) reached from both
              vindex_search and vindex_insert, because VIndex still owns its
              visited[]/visit_epoch scratch — so even two concurrent READS
              corrupt each other's traversal.

Verified: half 1 passes, half 2 reproduces the race.

Gated on EXPECT_RACE, default 1, so the concurrent half documents the known
defect without failing the suite today. When the visited set moves to a
per-query checkout pool (hnswlib VisitedListPool style — NOT thread_local,
since http_worker is a thread per connection and a __thread buffer would leak
~55KB per connection), flip EXPECT_RACE=0 and it becomes a real gate.
2026-08-16 11:29:17 -05:00
bigmerge bdc1f99fb9 runtime: guard engram activation against the unsynchronized awareness thread
The soul daemon had two engram callers and only one of them locked.
soul.el:729 starts the HTTP server via http_serve_async (spawning
http_worker threads); soul.el:731 then runs awareness_run() on the MAIN
thread. awareness.el's perceive() -> engram_activate_json() ->
engram_activate() -> eg_vindex_sync() -> vindex_insert() mutates the same
g->nodes/g->edges and the process-global _eg_vindex HNSW index that the
workers touch. g_engram_req_lock existed to serialize exactly this, but it
was only ever taken inside http_worker: engram_req_lock/engram_req_unlock
appear in ZERO .el sources, so the awareness loop ran lock-free beside the
workers on every tick (SOUL_TICK_MS=1000).

Result was a crash-loop under launchd KeepAlive: five crashes in ~4 minutes
on 2026-08-16 with varying faulting frames -- search_layer<-vindex_insert
<-eg_vindex_sync, engram_activate, abort, and one inside xzm_realloc's own
freelist. Varying sites plus a fault in allocator metadata means heap
corruption. The SIGSEGV address 0x65646f4e6d617267 is little-endian ASCII
"gramNode": string bytes dereferenced as an Elem vector pointer.

Diagnosed by bisection rather than inspection:
  - Replaying all 13,820 real dim-768 vectors harvested from the live store
    through the index single-threaded under ASan is 100% clean, which rules
    out an HNSW logic/bounds bug.
  - Two threads on one index trip ThreadSanitizer immediately at
    engram_vindex.c:195 (visited_reset), reached from both vindex_search and
    vindex_insert. VIndex keeps a SHARED visited-epoch scratch buffer, so
    even two concurrent READS corrupt each other's traversal and walk bogus
    element indices.
So this is purely a concurrency defect, not an HNSW logic error. (An
inspection-derived hypothesis about an out-of-bounds reverse-link write at
engram_vindex.c:340 was disproved by the single-threaded run.)

Fix: a thread-local ownership depth (_eg_req_depth) lets engram entry points
self-guard. engram_activate() becomes a wrapper over engram_activate_inner()
that acquires g_engram_req_lock when called with depth 0 (the awareness
thread) and passes through when depth > 0 (nested inside an http_worker that
already holds it), so the non-recursive mutex cannot self-deadlock. The depth
is a plain counter, never a recursive-mutex count, preserving
engram_self_reify_beat_json's contract of genuinely releasing the lock
mid-beat.
2026-08-16 11:29:17 -05:00
will.anderson 44b621e551 runtime: anchor the think read, so Neuron can think at all (#142)
El SDK CI - dev / build-and-test (push) Failing after 13m0s
2026-08-16 16:26:00 +00:00
Neuron ded6ca546f runtime: anchor the think read, so Neuron can think at all
El SDK CI - dev / build-and-test (pull_request) Failing after 13m24s
engram_think_json passed NULL as the anchor. NULL is not "no opinion":
engram_think re-origins at `anchor ? anchor : region->centroid`, so NULL
means "read from the centroid" — and the centroid is the one point where
the gradient is zero by construction. r = x - centroid = 0, so every axis
projection is 0, grad is 0, and direction takes the "at rest" branch at
engram_cognition.c:137.

Measured consequence: EVERY faculty returned an identical null result,
differing only in its label —
  {"direction":[0,0,0,0,0,0,0,0],"spread":0,"magnitude":1,"confidence":0.5}
magnitude 1 is membership evaluated at the centroid, spread 0 is its
distance to itself, confidence 0.5 is the stance fallback. The geometry was
never at fault: /api/drift computes real values (centroid_sep 0.104,
core_disp 0.045) over the very same 87 members. Neuron could not think
because the read was always taken from the region's own centre.

The seeds choose WHICH region; they must also supply the VANTAGE. Anchor at
the first resolvable embedded seed — the same seed eg_geo_build_desc infers
dim from, so the two can never disagree. One seed still yields a real
gradient because the descriptor expands to that seed's neighbourhood, so
the seed's position is distinct from the neighbourhood centroid.

The vector is COPIED, never borrowed: g->nodes is realloc'd in place on
append, so a borrowed EngramNode* dangles across any concurrent write.

Verified against a clone of the production store (13,616 nodes / 37,865
edges):
  self anchor   n_support 87  magnitude 0.00282  spread 18.79
  values hub    n_support 28  magnitude 0.00318  spread 17.72
with distinct unit direction vectors. Previously both returned the zero
vector with magnitude 1 and spread 0.

STILL OPEN, now isolated by this fix: all five faculties return identical
numbers and confidence stays 0.5, because cog_stance_init is passed NULL
for the stance and the faculty enters the computation only through the
stance's axis_gain[] and bias_dir. The faculty label is inert until a
stance is loaded — which is what learn()'s correspondence-beat calibrates.
Same shape as this bug: a neutral parameter collapsing a capability to a
constant.
2026-08-16 11:25:24 -05:00
will.anderson b5b96c05ed runtime: let signal enter as geometry, not as prose about signal (#141)
El SDK CI - dev / build-and-test (push) Failing after 10m36s
2026-08-16 16:13:28 +00:00
Neuron c79033b749 runtime: let signal enter as geometry, not as prose about signal
El SDK CI - dev / build-and-test (pull_request) Failing after 10m55s
No ingest path could carry a vector. engram_node/_full/_layered take text
only, and a node acquired an embedding solely via engram_embed_backfill
DERIVING one from n->content. That made text the mandatory entry medium:
any non-text modality had to be described in prose first, so the geometry
we then reasoned over was the geometry OF THE DESCRIPTION, not of the
signal. Measured: POST /api/nodes accepted an "emb" field, returned 200
with a fresh id, and stored nothing — emb_dim=None, embedded=false.

engram_node_set_emb attaches a vector to an existing node. Off-dimension
vectors are stored but not indexed (the HNSW build loop already filters on
emb_dim), so modality geometry is durable and addressable without
perturbing the canonical index. Setting emb also makes the node ineligible
for embed_backfill, so a realizer's vector is never overwritten by a
text-derived one.

Two reporting fixes ride along, because both are how the drop stayed
invisible: the create response now reports emb_set instead of being
success-shaped regardless, and the node document now always emits emb_dim
and embedded — without which a genuine ingest drop and a mere reporting
gap are indistinguishable.

Verified live: voice node emb_dim=64 embedded=true; text control emb_dim=0
embedded=false; malformed hex, length mismatch and dim<=0 all reject.

KNOWN PLACEMENT DEFECT: this is at the consumer. Ingest is a language
concern, not an engram feature — every el program touching any modality
needs it. The vector also marshals as a hex STRING because el has no
first-class geometry value, which reintroduces text as the transport
medium one layer below the problem being fixed. The durable shape is
geometry as an el value plus declarable realizers, after which the engram
stops having an ingest concept at all. Landing this as the verified probe
that proves the path.
2026-08-16 11:12:48 -05:00
will.anderson 1119295238 Merge pull request 'runtime: state_get leaked its value on every call' (#140) from fix/state-get-leak into dev
El SDK CI - dev / build-and-test (push) Failing after 14m5s
2026-08-16 13:09:58 +00:00
bigmerge 9c07970943 runtime: state_get leaked its value on every call
El SDK CI - dev / build-and-test (pull_request) Failing after 14m26s
char* result = el_strdup_persist(e ? e->value : "");   // never freed
    pthread_mutex_unlock(&_state_mu);
    char* copy = el_strdup(result);                        // arena-tracked
    return el_wrap_str(copy);

Two copies were made. `result` existed only as the source for `copy` — never
returned, never freed — and el_strdup_persist bypasses the arena BY DESIGN
("state_set, engram internals"), so arena-pop could never reclaim it. Every
state_get leaked its full value string, permanently.

MEASURED: 200,000 state_get calls against a 64-byte value.
    before   15 MB peak RSS growth   (~75 bytes/call — the value plus overhead)
    after     0 MB

IMPACT. The soul's awareness loop has 68 state_get call sites and ticks every
200ms. Live measurement before the fix: RSS climbing 112 MB per 20s, about
19 GB/hour, in awareness_run -> one_cycle -> perceive, while node_count stayed
flat at ~13,479 — growth with no data behind it. It drove the host from 20 GB
free to 4.3 GB in roughly an hour.

WHY NOW, since the code is old: the soul used to restart constantly (no
write-through, divergent graph, 2.11 GB). Stabilising it (neuron #162) let it
stay up long enough to accumulate. The fix did not cause this leak; it removed
the crashes that were hiding it. Same pattern as the test framework surfacing
math_log — the defect was always there, something finally made it visible.

Found by Ishikawa rather than by reading the nearest code: method (arena
push/pop IS correctly paired per tick), material (node count flat, so not data
growth), environment (19 GB/hr / 18,000 ticks = ~1.1 MB per tick, so per-tick
not one-shot), machine (an allocator that bypasses the arena) — which is where
the evidence pointed.

el_strdup tracks into the thread-local arena, which touches no shared state, so
taking the single copy under _state_mu is safe and removes the temporary
entirely.

Verified: self-hosting fixpoint byte-identical; state round-trip correct for
hit, miss, and overwrite.
2026-08-16 08:09:32 -05:00
will.anderson 0832865952 Merge pull request 'test framework phase 3/4: black_box barrier + three-signal complexity gate, armed' (#139) from wt/soul-runtime-reconcile into dev
El SDK CI - dev / build-and-test (push) Failing after 11m32s
2026-08-16 03:02:18 +00:00
Neuron e0b2c0ea54 bench: arm the Phase 4 gate -- proven to pass clean AND fire on a quadratic
El SDK CI - dev / build-and-test (pull_request) Failing after 12m7s
Adds tests/native/test_lexer_scaling.el, the regression gate for el #132.

Both directions are proven on LIVE workloads, not synthetic series:
  healthy per-character scan  1821 3251 6007 10422 us -> O(n)   PASS
  rescan-from-zero (the #132 shape)  922 3667 13524 44792 -> O(n^2) FAIL

A gate only proven to pass is decoration. The quadratic specimen exists so
the gate is proven to FIRE.

Also fixes elb_spread_ok to judge the ASYMPTOTIC TAIL (last three ratios)
rather than the whole sweep. Measured on a genuinely linear scan the ratios
ran 3.37 2.92 1.76 1.65 -- the head looks quadratic because it is cold
cache, the tail is the truth. Whole-sweep spread rejected correct data. A
complexity bound is an asymptotic claim and must be judged asymptotically.

That fix came from the classifier refusing to rubber-stamp my own bad
measurement: it reported INDETERMINATE on an unwarmed sweep rather than
passing it. Warmup is now taken and discarded at every sweep point.

Reverts the == workarounds in test_elbench.el now that el #137 has landed;
the natural form generates no str_eq and all 13 fitter tests stay green.
The  workaround remains -- the Plus arm is still open.
2026-08-15 21:58:46 -05:00
bigmerge cf060adbfd Merge remote-tracking branch 'origin/dev' into wt/soul-runtime-reconcile 2026-08-15 21:55:40 -05:00
will.anderson 63fe8a766d Merge pull request 'codegen: Bool is int-like, so Bool comparisons stop lowering to str_eq' (#138) from fix/bool-is-int-like into dev
El SDK CI - dev / build-and-test (push) Failing after 4m28s
2026-08-16 02:54:34 +00:00
bigmerge b5a0a729e6 codegen: Bool is int-like, so Bool comparisons stop lowering to str_eq
El SDK CI - dev / build-and-test (pull_request) Failing after 14m49s
fn check(label: String, cond: Bool, want: Bool) -> Void {
        if cond == want { ... }        ->  if (str_eq(cond, want))   SIGSEGV
    }

Bool has always been an integer in the value model — type_to_c maps Bool to
"int", and el_runtime.h states "Bool -> el_val_t (0 = false, nonzero = true)".
But Bool names were registered NOWHERE: build_int_names_for_params tracked Int
and Float params, and the `let` path tracked Int and Float bindings. Neither
knew about Bool.

So comparing two Bools fell through to str_eq, which dereferenced 0 or 1 as a
char* and segfaulted immediately.

This is the third instance of one family found tonight, after el #137 (a call
on either side of == poisoned the operator) and el #136 (a missing import
compiled clean). All three are the same shape: something the compiler could not
type, silently handled as a string.

Found while writing #137's own test harness — the first version of that harness
crashed on exactly this, on both the old and new compiler, which is how it
surfaced. A test harness that cannot compare two Bools is a good way to notice.

VERIFIED:
  - the harness that segfaulted on every prior compiler (exit 139, no output)
    now runs clean: 14 passed, 0 failed
  - self-hosting fixpoint byte-identical
  - the compiler's own generated C differs by 8 lines — only the intended
    registration
  - neuron's full soul amalgam regenerates in 424ms, exit 0, BYTE-IDENTICAL
  - test_math 13/13, test_string 27/27, test_core 10/10, test_text 12/12

Adds tests/runtime/operator_typing_test.el, the 15-case suite from #137, so
this family is covered going forward rather than rediscovered.
2026-08-15 21:54:10 -05:00
will.anderson b26dd47aef Merge pull request 'codegen: either side Int is enough for == and !=, not both' (#137) from fix/eq-operand-inference into dev
El SDK CI - dev / build-and-test (push) Failing after 12m0s
2026-08-16 02:52:02 +00:00
bigmerge b55e6bfd53 codegen: either side Int is enough for == and !=, not both
El SDK CI - dev / build-and-test (pull_request) Failing after 12m20s
let a: Int = 5
    getint(5) == a      ->  str_eq(getint(5), a)      SIGSEGV
    getint(5) == 5      ->  getint(5) == 5            fine

A function call whose return type codegen cannot infer poisoned the operator,
and a declared Int on the other side did not save it. str_eq then read an
integer as a char* and segfaulted. Only an integer LITERAL on one side forced
the numeric form, which is why the bug stayed invisible: the common case
happened to be safe.

The check required BOTH operands to be provably Int:

    if is_int_expr(left) { if is_int_expr(right) { numeric } }

Loosening to OR is strictly safer, not a trade:
  - when one side is a known Int, str_eq is ALWAYS wrong — it dereferences
    that integer — while numeric comparison is at worst a wrong answer on a
    program that was already ill-typed;
  - when neither side is Int nothing changes at all, so string comparison is
    untouched.

Found by the test-framework agent while building the benchmark harness; it
correctly declined to fix it mid-phase since it is a codegen semantics change.

VERIFIED, because a semantics change earns more than an assertion:
  - 15/15 on a dedicated operator suite covering string literals, string vars,
    string-returning calls, mixed var/call, and != in every combination. The
    pre-change compiler scores 0/15 on the same file: it segfaults before
    printing anything.
  - self-hosting fixpoint byte-identical
  - the ONLY difference in the compiler's own generated C is the intended one:
    a nested if becoming two sequential ifs, in EqEq and NotEq. Nothing else
    moved.
  - neuron's full soul amalgam regenerates in 400ms, exit 0, output
    BYTE-IDENTICAL at 1,270,212 bytes
  - test_math 13/13, test_string 27/27, test_core 10/10, test_text 12/12 —
    62 tests, 190 assertions, zero failures

NOT fixed here, same family, flagged for a decision: Bool PARAMETERS are not
tracked as int-like, so `cond == want` between two Bool params still lowers to
str_eq and segfaults. Found while writing this commit's own test harness — the
first version of it crashed on exactly that, on both the old and new compiler.
It needs the same treatment, and it wants its own change.
2026-08-15 21:51:35 -05:00
will.anderson dbb06f6ee4 Merge pull request 'compiler: a missing import is an error, not an empty string' (#136) from fix/missing-import-is-an-error into dev
El SDK CI - dev / build-and-test (push) Failing after 11m0s
2026-08-16 02:48:01 +00:00
bigmerge 906c664a65 compiler: a missing import is an error, not an empty string
El SDK CI - dev / build-and-test (pull_request) Failing after 11m23s
import "../../NOPE/does_not_exist.el"

compiled CLEANLY — exit 0, empty stderr, and a program silently missing
everything it imported.

resolve_imports did `fs_read(src_path)` and used the result without checking.
fs_read returns "" both for "file is empty" and "file does not exist", so a
typo, a moved file, or a relative path resolved from the wrong working
directory all produced a successful build of nothing.

It caused a real wrong conclusion during test-framework work: a bisection run
from a subdirectory where ../../runtime/ did not resolve produced ELEVEN
consecutive "successful" compiles that had included no runtime at all, and the
results were believed before anyone noticed.

Missing dependency, confident success — the same shape as a test suite
reporting pass for tests that never ran, and as a benchmark reporting 0us
because the optimiser deleted the loop.

fs_exists separates the two cases, so a legitimately empty file still resolves
to "" and is fine. A path that does not exist now prints the resolved path and
exits 1, which is what build scripts check.

Verified:
  - bad import: exit 1 (was 0), message names the resolved path
  - elc-cli.el still compiles, self-hosting fixpoint byte-identical
  - neuron's full soul amalgam regeneration: exit 0, 405ms, output
    byte-identical at 1,270,212 bytes
2026-08-15 21:47:32 -05:00
Neuron 6a6b589ba0 bench: real black_box barrier + three-signal growth-curve gate
Adds el_black_box (inline asm, +r constraint, memory clobber) and
runtime/elbench.el: a growth-curve classifier that gates time AND
allocation-count AND allocation-bytes, failing if any exceeds its
declared curve.

Refusal is a first-class verdict. The classifier REFUSES rather than
classifying when the largest measurement is below the floor, or when a
series is hard-flat across an 8x input range -- the shape produced when
the optimiser deletes the work. Reporting O(1) there would be a
confident answer with nothing behind it. Disagreeing ratios report
INDETERMINATE rather than a guess.

Deviation from DESIGN.md 6.2, stated in the source: uses consecutive
ratios on a mandated geometric sweep rather than least-squares over
candidate curves. Ratios are directly interpretable on a doubling sweep
and need no floating point; the cost is weaker O(n) vs O(n log n)
separation, reported as an ambiguous band rather than guessed.

Documents the counter scope limit: engram_*.c and libcurl malloc are
NOT tracked, so a flat curve over engram/HTTP-dominated work is not
evidence of anything.

13 tests prove the classifier against real measured series from
fitprobe.el -- including that an accumulator's allocation COUNT is
linear while its bytes are quadratic, and that el #132's pure-CPU shape
reads FLAT on both allocation signals and is caught only by time.
2026-08-15 21:45:13 -05:00
bigmerge b5d1e53902 Merge remote-tracking branch 'origin/dev' into wt/soul-runtime-reconcile 2026-08-15 21:38:11 -05:00
will.anderson 9e96d74f6a Merge pull request 'runtime: count container allocations too, not just strings' (#135) from feat/alloc-accounting-containers into dev
El SDK CI - dev / build-and-test (push) Failing after 11m49s
2026-08-16 02:37:14 +00:00
bigmerge a8908908df runtime: count container allocations too, not just strings
El SDK CI - dev / build-and-test (pull_request) Failing after 12m11s
el #131 instrumented the four string allocators, which meant list- and map-heavy
code reported ZERO allocations — a benchmark over lists would have been fitted
against a flat line and passed anything. Caught during framework work: a
"linear" specimen read 0 allocs until it was rewritten to allocate strings.

A gate is only as good as its blind spots are small, and a signal that silently
reads zero is worse than no signal: it produces a confident pass.

Now counted at every container allocation — ElList and ElMap bodies, their
backing arrays, the copy-on-write clones, and the realloc growth path.

Verified on an append loop (n = 100..800):
    allocs  7, 8, 9, 10          +1 per doubling = O(log n) reallocations
    bytes   2048, 4096, 8192, 16384   exactly 2x per doubling = O(n)

Both curves are what correct amortized growth should look like, and both read
zero before this change.

Known remaining scope, stated rather than left implicit: these counters cover
the runtime's own allocations. They do not see malloc inside engram_*.c or
libcurl, which is correct — the gate is for El-level complexity, not for
third-party memory behaviour.
2026-08-15 21:36:52 -05:00
Neuron 6291a35bb9 design: gate on THREE signals -- the alloc gate would have missed el #132
el #132's quadratic (strlen per character in str_char_code/str_slice) is
pure CPU and allocates NOTHING. Measured on three controlled specimens:

  specimen  allocs        bytes         time
  linear    2.00 -> O(n)  2.16 -> O(n)  2.05 -> O(n)
  accum     2.00 -> O(n)  3.99 -> O(n2) noisy
  compute   FLAT          FLAT          3.96 -> O(n2)

'compute' is #132's shape. A gate fitting only allocation count and bytes
classifies it FLAT and passes -- it would not have caught the defect it
was created for. The gate now fits time AND count AND bytes, failing if
any exceeds its declared curve.

Also: black_box is mandatory and consuming the result is NOT sufficient.
The first 'compute' reported 0us at every n while returning a correct n2 --
clang closed the loop to a multiply. Only an opaque call restored the curve.

Adds lang/tests/bench/fitprobe.el as the fitter's known-good/known-bad set,
so the classifier is provable without depending on a real bug existing.
Marks DESIGN.md 1.3 stale: test_compiler 3.58s -> 0.03s (119x).
2026-08-15 21:34:39 -05:00
will.anderson a69a4a5894 Merge pull request 'runtime: math_log is base-10, not natural log' (#134) from fix/math-log-base10 into dev
El SDK CI - dev / build-and-test (push) Failing after 14m48s
2026-08-16 02:34:09 +00:00
bigmerge edafd8cce8 runtime: math_log is base-10, not natural log
El SDK CI - dev / build-and-test (pull_request) Failing after 10m8s
el_val_t math_log(el_val_t f) { return el_from_float(log(el_to_float(f))); }
    el_val_t math_ln(el_val_t f)  { return el_from_float(log(el_to_float(f))); }

Both were natural log, so math_log and math_ln were the same function.
log10(100) returned 4.605 instead of 2.

Three sources already agreed it should be base-10 and were being contradicted
by this one line:
  - runtime/math.el:55  "// math_log — base-10 logarithm."
  - el_seed.c:1278      __log_f -> log10()  (the path math.el actually calls)
  - tests/native/test_math.el:133  asserts log10(100) == 2

FOUND BY THE NEW TEST FRAMEWORK ON ITS FIRST RUN (el #133). The assertion had
been sitting in the suite the whole time; nothing could report it. The old
harness printed "N passed, M failed" with no per-test detail, and half the
suites were not compiling at all — so a failing assertion in a suite nobody
could run was indistinguishable from no failure.

That is the entire argument for the framework, demonstrated on day one: this is
not a bug the framework introduced, it is a bug the framework made VISIBLE.

Verified: tests/native/test_math.el goes 12/13 -> 13/13, math-log passing.
2026-08-15 21:33:20 -05:00
will.anderson 5e3e69d326 Merge pull request 'test framework phase 1: compile-time registry + El-side runner with per-test timing' (#133) from wt/soul-runtime-reconcile into dev
El SDK CI - dev / build-and-test (push) Failing after 10m17s
2026-08-16 02:31:08 +00:00
bigmerge 4c3414072b Merge remote-tracking branch 'origin/dev' into wt/soul-runtime-reconcile 2026-08-15 21:30:52 -05:00
will.anderson 0288024396 Merge pull request 'compiler: fix the quadratic — strlen() on every character access' (#132) from fix/compiler-quadratic-strlen into dev
El SDK CI - dev / build-and-test (push) Failing after 4m2s
2026-08-16 02:29:02 +00:00
Neuron 3e7ab07e82 test framework phase 1: forward decls, void-return fix, suite migration
El SDK CI - dev / build-and-test (pull_request) Failing after 10m4s
Completes the Phase 1 runner and migrates the 11 test files onto it.

- forward-declare the registry accessors in the test preamble; they are
  defined at the end of the unit but the El runner is compiled in between
- eltest.el: explicit trailing return in the void emit_* helpers, which
  otherwise lower to 'return println(...)' and fail to compile
- test files import runtime/eltest.el explicitly, using the language's own
  textual import mechanism rather than compiler-side auto-injection
- DESIGN.md 6.5: gate on allocation COUNT AND BYTES, not count alone

Verified: self-hosting fixpoint byte-identical (gen2 == gen3). 6 of 11
suites run and report per-test timing. The other 5 fail to COMPILE, and
fail identically under the committed compiler -- pre-existing breakage
this framework makes visible for the first time.
2026-08-15 21:28:30 -05:00
bigmerge d231b7e5e7 compiler: fix the quadratic — strlen() on every character access
El SDK CI - dev / build-and-test (pull_request) Failing after 10m21s
THE BUG. str_char_code() and str_slice() each called strlen() on every
invocation. The lexer walks source one character at a time, so every character
access rescanned the whole remaining input: O(n) per character over n
characters = O(n^2).

    el_val_t str_char_code(el_val_t s, el_val_t i) {
        ...
        int64_t n = (int64_t)strlen(str);   // <- O(n), every call
        if (idx < 0 || idx >= n) return 0;
        return str[idx];
    }

HOW IT WAS FOUND. Not by reading code — by sampling the running process, which
is the same method that resolved tonight's engram outage after four wrong
theories. A geometric sweep of synthetic sources showed wall-clock rising 3.0x,
3.0x, 4.0x, 4.14x per doubling (converging on 4x = quadratic), and a stack
sample put 779 of 779 samples inside lex(), every one bottoming out in
_platform_strlen via str_char_code and str_slice.

THE FIX. Remember the length instead of recomputing it. The subtlety is
INVALIDATION: El strings are arena-allocated, so a freed pointer can be reused
for a different string at the same address, and a naive pointer-keyed cache
would hand back a stale length and read past the end of the new string —
trading a performance bug for a memory-safety one. So entries carry a
generation, a hit requires pointer AND generation to match, and every path that
frees or mutates a runtime string bumps the generation: el_arena_pop,
seed_request_end, __str_set_char. Stale entries cannot be believed; they miss
and recompute.

MEASURED, same host, same inputs:

    n(fns)    before     after
      512      0.10s     0.01s
     1024      0.37s     0.02s
     2048      1.51s     0.03s     50x

    the compiler's own 422 KB source concatenated (DESIGN.md's 3.58s case):
              3.55s ->  0.03s      118x

The speedup GROWS with input size, which is the signature of removing a
complexity class rather than a constant factor. After the fix each doubling
adds ~0.01s: linear.

CORRECTNESS, verified rather than assumed:
  - byte-identical output on every sweep input (n = 128..2048)
  - byte-identical output on the 422 KB compiler concatenation
  - byte-identical output on tests/runtime/string_test.el
  - self-hosting fixpoint byte-identical
  - new tests/runtime/str_cache_test.el: 17 assertions covering bounds, empty
    strings, negative indices, slice clamping, distinct strings not sharing a
    cached length, 1000 interleaved strings forcing cache-slot collisions, and
    a grown string not reporting its old length. All pass.

This is the defect that made dist/soul.c a committed artifact: elc could not run
in CI because it needed 24 GB+ and minutes. It needs neither now.
2026-08-15 21:28:23 -05:00
bigmerge a668062e38 Merge remote-tracking branch 'origin/dev' into wt/soul-runtime-reconcile 2026-08-15 21:24:03 -05:00
Neuron 24fac765a6 test framework phase 1: compile-time registry + El-side runner
Replace the hardcoded test harness main() with a generated static registry
and index-based accessors, and move all reporting into runtime/eltest.el.

The old harness inlined direct calls into main() and counted assertions in
two globals. That shape cannot report which test failed, how long any test
took, or whether a test ran at all -- a misspelled registration reported
success for a test that never executed.

- assertions record into per-test state instead of global counters
- registry table emitted at compile time; discovery strictly precedes
  execution, which is what later enables --list, filtering and sharding
- per-test wall timing on CLOCK_MONOTONIC, taken in C around the call
- runner in El: structured NDJSON events as source of truth, human output
  rendered from the same fields
2026-08-15 21:24:03 -05:00
will.anderson cb1f2a74af Merge pull request 'runtime: allocation accounting — deterministic signal for complexity gating' (#131) from feat/alloc-accounting into dev
El SDK CI - dev / build-and-test (push) Failing after 3m49s
2026-08-16 02:22:13 +00:00
bigmerge 37bcf7eb74 runtime: allocation accounting — the deterministic signal for complexity gating
El SDK CI - dev / build-and-test (pull_request) Failing after 12m7s
Implements the three primitives the test-framework design (DESIGN.md §6.5)
requires for gating on growth curves: el_alloc_count, el_alloc_bytes,
el_peak_rss. Registered in codegen's builtin_arity and wrapped in el_seed.c per
the project's C-builtin recipe.

WHY COUNTS AND NOT WALL-CLOCK: a growth-curve gate has to be a hard build
failure, which means the signal cannot flake. Wall-clock needs warmup,
statistics, and a quiet machine; on shared CI it is unusable as a gate.
Allocation counts are perfectly deterministic — same input, same number, every
machine, every run. Fit them against n and a complexity regression becomes a
build failure with zero noise.

All four runtime string allocators (el_strdup, el_strbuf, and their _persist
variants) funnel every allocation the language performs, so instrumenting there
counts everything.

WHY BYTES AS WELL AS COUNT — this is not redundancy, it is the whole gate.
Measured with two El programs, one allocating once per item, one rebuilding its
accumulator each iteration:

    n     linear allocs / bytes      quadratic allocs / bytes
    100        100 /    290               100 /   5,150
    200        200 /    690               200 /  20,300
    400        400 /  1,490               400 /  80,600
    800        800 /  3,090               800 / 321,200

The quadratic program's allocation COUNT is exactly linear — identical to the
healthy one. Counting allocations alone would have missed it completely. Bytes
catch it: each doubling of n quadruples bytes (ratios 3.94, 3.97, 3.99 ->
converging on 4.0, i.e. O(n^2)), while the linear case converges on 2.0.

That shape — count linear, per-allocation size growing — is the classic
accidental quadratic, and it is exactly elc's defect: quadratic allocation
VOLUME, which the old shipped compiler paid in RSS (27 GB, OOM) and the rebuilt
one pays in malloc/free churn (42s on 1.4 MB). Volume was the invariant across
both; RSS and wall-clock were just the two ways it surfaced.

el_peak_rss is exported for context and is explicitly NOT a gating signal — it
is perturbed by allocator internals, the page cache, and the OS. Gate on the
deterministic numbers; report the physical one.

Counters are unsynchronised by design: this is measurement, and a lock would
change the thing being measured. Exact on the single-threaded compile path,
approximate under threads.
2026-08-15 21:21:42 -05:00
will.anderson 2240d26c32 Merge pull request 'store: judge memory pressure by swap RATE, not level' (#130) from fix/elc-rebuildable-compiler-builtins into dev
El SDK CI - dev / build-and-test (push) Failing after 11m44s
2026-08-16 02:12:22 +00:00
will.anderson f39ae40047 Merge pull request 'store: bound the pool by available memory and let it shrink' (#129) from fix/elc-rebuildable-compiler-builtins into dev
El SDK CI - dev / build-and-test (push) Failing after 4m43s
2026-08-16 02:02:24 +00:00
will.anderson 7a479111ac Merge pull request 'store: extend the write barrier to edges — kills the full-store walk' (#128) from fix/elc-rebuildable-compiler-builtins into dev
El SDK CI - dev / build-and-test (push) Failing after 14m27s
2026-08-16 01:44:33 +00:00
will.anderson c21074b547 Merge pull request 'runtime: engram_edges_json — kill the whole-graph file round trip' (#127) from fix/elc-rebuildable-compiler-builtins into dev
El SDK CI - dev / build-and-test (push) Failing after 10m19s
2026-08-16 01:13:44 +00:00
will.anderson 7557ea6e19 Merge pull request 'runtime: restore engram_recall_json + cgi_* accessors (unblocks the soul build)' (#126) from fix/elc-rebuildable-compiler-builtins into dev
El SDK CI - dev / build-and-test (push) Failing after 10m15s
2026-08-16 00:57:11 +00:00
will.anderson d545b69614 Merge pull request 'runtime: restore the three builtins that made elc unrebuildable' (#125) from fix/elc-rebuildable-compiler-builtins into dev
El SDK CI - dev / build-and-test (push) Failing after 11m4s
2026-08-16 00:50:43 +00:00
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# El Test Framework — Design
**Status:** draft for review
**Author:** Neuron
**Date:** 2026-08-15
**Worktree:** `/Users/will/Development/neuron-technologies/el-worktrees/elc-memory-investigation`
---
## 0. The forcing requirement
We have a confirmed quadratic in `elc`. Peak memory in the old shipped binary and wall-clock in
the current source both grow as O(input²). We cannot fix it, because we cannot test it.
Everything in this document is downstream of one sentence: **a test framework must be able to fail
a build when an operation's growth curve degrades from linear to quadratic.**
That is not a nice-to-have bolted onto a correctness framework. It is the requirement that
determines the architecture. Correctness testing is the easy half.
Second-order requirement, learned the hard way tonight: **the framework must report per-test timing
by default.** The current framework prints `N passed, M failed` and nothing else. That is why a
3.58-second test file sat in the suite unnoticed. A framework that is structurally blind to time
cannot surface the defect class we most need to catch.
---
## 1. What exists today, measured
### 1.1 Two competing systems, neither complete
**System A — `lang/runtime/test.el`.** Manual registration, El-level.
**System B — the compiler's `test { }` block + `elc --test`.** Emits its own harness `main()`
with `__el_pass` / `__el_fail` globals (`codegen.el:3777-3796`).
They do not share a result model. Neither has timing. Both are in the tree.
### 1.2 Specific defects in System A
| Defect | Location | Consequence |
|---|---|---|
| All state as JSON strings in a global string-keyed map | `test.el` throughout | every assertion is `state_get``str_to_int``int_to_str``state_set` |
| Failure list appended by string slice + concat | `_test_json_append` | O(n²) in failure count |
| One OS thread spawned per test | `_test_run_one` via `__thread_create`/`__thread_join` | thread spawn per test, purely to get dispatch-by-name through dlsym |
| Manual registration pairing a string to a function name | `test_case(name, fn_name)` | typo ⇒ test silently never runs, suite still reports pass |
| Counters are assertion-level, global | `_test_pass_count` etc. | no per-test record exists at all |
| No timing, no structured output, no fixtures, no tags, no filtering, no parameterization, no benchmarks | — | — |
The registration defect is the serious one. It is not a slow framework, it is a framework that can
report success for tests that did not execute.
### 1.3 Measured cost structure
Per test file, current build model:
| Step | Time |
|---|---|
| `elc` compile `.el``.c` | 0.00s (small files) |
| **`cc` el_runtime.c → .o** | **0.14s** |
| `cc` test .c → .o | 0.02s |
| link | 0.02s |
> **STALE as of el #132 — re-measured 2026-08-16.** The `test_compiler` figure below was
> *entirely* the `strlen`-per-character quadratic, now fixed. Re-measured on the same host:
> **3.58s → 0.03s (119x)**, and the 422 KB compiler concatenation likewise compiles in 0.03s.
> The table is retained only as the historical record that motivated the gate. The remaining
> per-file cost is the redundant `el_runtime.c` rebuild, which §9's compile-once architecture
> addresses.
Per-file `elc` time across the existing suite:
| File | Bytes | elc time |
|---|---|---|
| `test_compiler` | 29,685 (+394 KB of imports) | **3.58s** |
| `string_test` | 18,545 | 0.01s |
| all other 9 files | 2.210 KB | 0.00s |
Two distinct defects in two distinct regimes:
1. **`test_compiler.el` imports all five compiler sources** — 394 KB in one translation unit. Its
3.58s is entirely the quadratic. It is the only file where the quadratic bites.
2. **Every other file's cost is 100% redundant `el_runtime.c` rebuilds** — 480 KB of identical C,
recompiled once per test file.
Neither is fixed by making the compiler faster. Both are fixed by the architecture below, and the
speedup is a by-product of building it correctly, not the goal.
### 1.4 The asset worth keeping
`codegen.el:3651-3652` already collects `test_names` / `test_c_names` — **the compiler already does
compile-time test discovery.** It then discards that registry into a hardcoded `main()`.
That registry is precisely the seam Go's `_testmain.go` and Rust's `test_main_static` are built on.
The mechanism we need is half-built and wired to the wrong thing.
---
## 2. Grounding — the common spine of excellent frameworks
Researched from primary sources: Go `testing`/`go test`, Rust `libtest`/Criterion, JUnit 5 Platform,
NUnit 3, JMH, Google Benchmark. Six invariants hold across all of them.
1. **A registry is built before execution**`(name, metadata, fn-ptr)` triples. Go generates it
from an AST scan; Rust synthesizes it in a compiler pass; JMH emits it as a build-time resource;
JUnit/NUnit build it reflectively. **Reflection is an implementation of the registry on runtimes
where it is cheap. It is never the architecture.**
2. **Discovery strictly precedes execution.** Every good capability — filtering, listing, counting,
sharding, IDE trees, re-run-failed-only, dry runs — is a consequence of this ordering.
3. **A hierarchy with stable, path-shaped unique IDs.** `TestFoo/subcase_2`. Selection is regex over
that path, one pattern per level.
4. **The framework is a prebuilt library; only the entry point is generated.** "Compile once, link
many" is always: framework archive compiled once + a small generated table + one
`MainStart(deps, registry)` call. Nobody recompiles the harness per test file.
5. **Execution emits an event stream; reporters are downstream renderers.** Human text, NDJSON,
JUnit XML, TAP are all transforms of one event stream. Go's one architectural mistake is doing
this backwards — `test2json` parses human output, and has shipped bugs when user output contains
`--- PASS:`.
6. **A dependency-injection seam at the boundary.** Go's `testdeps.TestDeps` exists so `testing`
can avoid importing `regexp`, profilers, and coverage. The execution core knows nothing about
output formats.
---
## 3. Architecture
### 3.1 The seam
```
┌─────────────────────────────────────────────────────────────┐
│ user code: foo.el with test { } / bench { } blocks │
└───────────────────────────┬─────────────────────────────────┘
│ elc --test
┌─────────────────────────────────────────────────────────────┐
│ generated C (per suite, tiny): │
│ __el_test_fn_0 .. _N lowered test/bench bodies │
│ __el_registry[] static table: name/kind/file/ │
│ line/tags/sizes/expected-O │
│ __el_dispatch(i) generated switch → body │
│ main() { return el_test_main(argc, argv); } │
└───────────────────────────┬─────────────────────────────────┘
│ cc + link (registry only)
┌─────────────────────────────────────────────────────────────┐
│ libeltest.a — PREBUILT ONCE │
│ • el_runtime.o (the 480 KB, compiled once, ever) │
│ • eltest.o the runner, WRITTEN IN EL │
│ discovery view · filtering · execution · fixtures · │
│ timing · benchmark harness · curve fitting · reporters │
└─────────────────────────────────────────────────────────────┘
```
The framework is written in El, compiled to C once, archived. Per-suite compilation touches only
the generated registry. This is Go's model, and it is strictly better for us than Go's because we
own the compiler and already have the AST — no separate source-scanning pass is needed.
### 3.2 Why the runner is in El and the registry is in C
El has no closures and no first-class function pointers. The registry must therefore hold C function
pointers, and it is generated C.
The runner stays in El and reaches the registry through a small builtin surface — indices, not
pointers:
```
__el_reg_count() -> Int
__el_reg_name(i) -> String
__el_reg_file(i) -> String
__el_reg_line(i) -> Int
__el_reg_kind(i) -> Int // 0=test 1=bench
__el_reg_tags(i) -> Int
__el_reg_sizes(i) -> String // JSON array, empty for tests
__el_reg_expect(i) -> Int // complexity class enum, 0 = none
__el_reg_invoke(i) -> Int // runs the body via the generated switch
```
Nine builtins. Everything else — filtering, lifecycle, statistics, curve fitting, all reporters —
is El. That satisfies "written in El" without pretending El can do something it cannot.
### 3.3 Result model
The unit is a **result record**, not a counter:
```
TestResult {
id String // slash path: "parser/handles_empty_input/case_3"
file String
line Int
status Status // Pass | Fail | Error | Skip
duration Int // nanoseconds, ALWAYS populated
message String // assertion detail: expected vs actual
output String // captured stdout/stderr for this test
assertions Int
}
```
`Fail` = an assertion failed. `Error` = unexpected crash/abort. This distinction is load-bearing —
every CI consumer depends on it, and the JUnit XML schema encodes it as distinct elements.
---
## 4. Authoring surface
### 4.1 Tests
`test { }` already exists. Keep it. Add subtests and hierarchy:
```el
test "parser/empty input" {
assert_that(parse(""), is_err())
}
test "parser/table" {
for case in [["", 0], ["a", 1], ["a b", 2]] {
subtest(case[0]) {
assert_that(token_count(case[0]), equals(case[1]))
}
}
}
```
Subtest IDs compose as `parser/table/a_b`. Filtering is `--run 'parser/table/.*'`, one regex per
path segment, exactly as Go does.
**We do not build a parameterized-test annotation system.** Table-driven loops plus subtests subsume
`@ParameterizedTest`, `@MethodSource`, `@CsvSource`, and `TestCaseSource` entirely, at zero framework
surface. This is Go's single biggest ergonomic win over JUnit and NUnit.
### 4.2 Fixtures
Per-file and per-test only, plus a LIFO cleanup stack:
```el
setup_all { ... } // once per suite
setup { ... } // before each test
teardown { ... } // after each test
teardown_all { ... }
```
and inside a test, `cleanup { ... }` registering LIFO-ordered teardown.
**We do not build JUnit 5's extension SPI** — seventeen callback interfaces, hierarchical stores,
registration ordering rules. That complexity is the price of retrofitting a plugin ecosystem onto a
twenty-year-old reflective framework. Go's `t.Cleanup` covers roughly 90% of what `@AfterEach` is
used for at a fraction of the surface.
### 4.3 Assertions — constraint model
One entry point, composable constraint values (NUnit's model, which avoids the N² overload
explosion):
```el
assert_that(actual, equals(expected))
assert_that(xs, has_length(3))
assert_that(s, contains("foo").and(starts_with("bar")))
assert_that(f, is_within(0.01).of(3.14))
```
A constraint is a value with `apply_to(actual) -> ConstraintResult`, and the result knows how to
describe its own failure. Custom constraints are ordinary user types.
**Every failure message must name file, line, the expression text, and both values.** We capture
expression source text at compile time — we have the AST, so we can do this better than any
runtime-introspection framework.
Legacy `assert_true` / `assert_eq` / etc. stay as thin wrappers for migration.
---
## 5. Benchmarks
### 5.1 The loop
Adopt `b.Loop()`, not `b.N`. Go spent fifteen years on `b.N` before concluding `b.Loop` was right;
we skip that.
```el
bench "str_concat" {
let s = make_input(bench_n())
for bench_loop() {
black_box(str_concat(s, "x"))
}
}
```
Three properties that make this the correct choice for a C target:
1. **The timer auto-resets on first call**, so setup above the loop is excluded *by construction*
rather than by the author remembering `ResetTimer`.
2. **`N` is hidden**, so it cannot be misused.
3. **The harness owns the loop shape**, which lets us insert an optimization barrier the C compiler
cannot see through. `black_box(v)` lowers to `asm volatile("" :: "r"(&v) : "memory")`. Since we
emit a single translation unit, dead-code elimination of a benchmark body is a live hazard —
this is our version of JMH's `Blackhole` problem, solved in the harness rather than delegated to
the user.
### 5.2 Iteration scaling
Use Go's `predictN` heuristics verbatim. They are battle-tested and cheap:
```
n = goal_ns * prev_iters / prev_ns // multiply before divide — precision on sub-ns ops
n += n / 5 // 20% headroom, overshoot rather than re-loop
n = min(n, 100 * last) // never grow more than 100× per step
n = max(n, last + 1) // guarantee forward progress
n = min(n, 1_000_000_000) // hard ceiling
```
Report `n` rounded to 1/2/3/5 × 10ᵏ so runs are comparable.
### 5.3 Sampling
Criterion's shape, because it is correct near timer resolution:
- **Warmup**: iteration counts 1, 2, 4, 8… until cumulative time exceeds the warmup budget.
- **Measurement**: collect `sample_size` samples at iteration counts `[d, 2d, 3d, …, Nd]`.
- **Estimate**: slope of a linear regression of iteration-count vs elapsed time. The intercept
absorbs fixed overhead.
- **Time whole samples, never individual iterations.** This is the single most important detail —
it defeats timer-resolution error on nanosecond operations.
Outliers classified by modified Tukey (±1.5 IQR mild, ±3 IQR severe), **reported but retained**.
---
## 6. Complexity gating — the centerpiece
This is the part that makes the quadratic fixable, and the part nobody in the mainstream has
finished. Google Benchmark's `Complexity()` fits the curve and *reports* it. We declare it and
**gate** on it.
### 6.1 Surface
```el
bench "elc_compile" over n in [16, 32, 64, 128, 256, 512, 1024] expect O(n) {
let src = synth_source(bench_n())
for bench_loop() { black_box(compile(src)) }
}
```
Alternative with no new syntax, if the parser change is judged too invasive — `bench_sizes([...])`
and `bench_expect("O(n)")` as calls inside the block. **Recommendation: declarative.** Runtime calls
mean `--list` cannot show the invariant without executing, which breaks the discovery-precedes-
execution invariant from §2.
### 6.2 Fitting
Per Google Benchmark `src/complexity.cc`. For candidate curves
`{O(1), O(log n), O(n), O(n log n), O(n²), O(n³)}`, one-parameter least squares, no intercept:
```
coef = Σ(tᵢ · gᵢ) / Σ(gᵢ²)
rms = sqrt( Σ(tᵢ coef·gᵢ)² / k ) / mean(t) // normalized
```
Best fit = lowest normalized RMS. User-supplied lambda curves also supported.
### 6.3 Gate logic
1. **FAIL** if the best-fit curve is strictly worse than declared, ordering
`O(1) < O(log n) < O(n) < O(n log n) < O(n²) < O(n³)`. Print the fitted coefficient and the full
per-size table.
2. **FAIL** if the declared curve's normalized RMS exceeds a threshold (start at 0.10). This catches
the case where *no* candidate fits — noise, a cache cliff, or a phase change. Report
`INDETERMINATE` honestly rather than gating on garbage.
3. **WARN** if the best fit is strictly better than declared — either an optimization landed and the
annotation should tighten, or the sweep is too narrow to expose real behaviour.
4. **REFUSE to gate** on fewer than 5 distinct sizes spanning under 2 decades, geometrically spaced.
Say so loudly rather than producing a meaningless fit.
### 6.4 Why gate on the exponent, not wall-clock
- **Machine-independent.** The fitted exponent is a property of the algorithm; the coefficient is a
property of the machine. Gating on the exponent makes CI hardware heterogeneity, noisy neighbours,
and thermal throttling irrelevant — they scale `coef`, not `g`.
- **No stored baseline.** No artifact storage, no golden-file drift. The invariant lives in the
source next to the code and is reviewed in the same PR.
- **It catches the failure mode that actually ships.** An O(n) lookup inside an O(n) loop is
invisible at n=100 in a unit test and catastrophic at n=100,000 in production. Constant-factor
regressions are annoying. Complexity regressions are outages. Ours was a 27 GB outage.
### 6.5 The deterministic gate — the one that would have caught us
Wall-clock needs statistics. **Allocation counts do not.** They are perfectly deterministic.
> **Correction, 2026-08-16 — count alone is NOT sufficient. Gate on BOTH count and bytes.**
>
> Measured against two El programs, one allocating once per item and one rebuilding its
> accumulator each iteration:
>
> | n | linear allocs / bytes | quadratic allocs / bytes |
> |---|---|---|
> | 100 | 100 / 290 | 100 / 5,150 |
> | 200 | 200 / 690 | 200 / 20,300 |
> | 400 | 400 / 1,490 | 400 / 80,600 |
> | 800 | 800 / 3,090 | 800 / 321,200 |
>
> The quadratic program's allocation **count is exactly linear** — 100/200/400/800, identical to
> the healthy program. A count-only gate passes it clean. **Bytes** catch it: each doubling of n
> quadruples bytes (ratios 3.94, 3.97, 3.99 → 4.0 = O(n²)) where the linear program converges
> on 2.0.
>
> This is precisely elc's own defect shape — a copy-on-write accumulator reallocating once per
> pass (count linear) into a proportionally larger buffer (bytes quadratic).
>
> Therefore `expect allocs O(n)` **fits count and bytes independently and fails if EITHER exceeds
> the declared curve**, reporting which signal broke. "count linear, bytes quadratic" is a precise,
> directly actionable diagnosis.
>
> **`el_peak_rss()` is CONTEXT ONLY — never gate on it.** It is perturbed by the allocator and by
> the page cache. Allocation volume is the invariant; RSS and malloc/free churn are merely the two
> surfaces it shows on. The old shipped compiler paid the same quadratic in RSS that the rebuilt
> one pays in churn.
>
> **Measure rate, not level.** A guard reading swap *level* saw 97% on a thrashing host and 97% on
> a healthy one; only *rate* separated them. A growth exponent is a rate; a single measurement is
> a level. That is why the gate fits a curve across a sweep instead of comparing one number to a
> threshold.
> **Second correction, same day — THE ALLOCATION GATE ALONE WOULD HAVE MISSED THE REAL BUG.**
>
> el #132 found the actual elc quadratic: `strlen()` called inside `str_char_code()` and
> `str_slice()`, so the lexer rescanned the remaining input on every character. Pure CPU.
> **Zero allocation.** `str_char_code` is a bounds check and an index — it allocates nothing.
>
> Measured on three controlled specimens (`lang/.work/fitprobe.el`), growth ratio per doubling of
> n across n = 200/400/800/1600:
>
> | specimen | allocs | bytes | time | what it proves |
> |---|---|---|---|---|
> | `linear` — one alloc per item | 2.00 2.00 2.00 → **O(n)** | 2.16 2.07 2.23 → **O(n)** | 0.83 2.00 2.05 → **O(n)** | clean baseline |
> | `accum` — rebuilds accumulator | 2.00 2.00 2.00 → **O(n)** | 3.97 3.99 3.99 → **O(n²)** | noisy | count misses, **bytes catches** |
> | `compute` — n scans over n chars | 0 → **FLAT** | 0 → **FLAT** | 3.93 4.01 3.96 → **O(n²)** | **both alloc signals blind; only time catches** |
>
> `compute` is el #132's shape exactly. A gate fitting only allocation count and bytes classifies
> it as FLAT and passes it. **The gate as originally specified would not have caught the defect it
> was created for.**
>
> Therefore the gate fits **THREE** signals and fails if ANY exceeds its declared curve:
>
> ```
> bench "elc_compile" over n in [...] expect time O(n) allocs O(n) bytes O(n) { ... }
> ```
>
> - **allocs (count)** — deterministic, zero-noise. Catches per-item allocation growth.
> - **allocs (bytes)** — deterministic, zero-noise. Catches accumulator-rebuild quadratics that
> count cannot see.
> - **time** — noisy, needs the sweep and statistics. The ONLY signal that sees pure-compute
> complexity regressions. Gate on the fitted *exponent*, never on absolute duration, so CI
> hardware variance scales the coefficient and leaves the classification intact.
>
> The deterministic signals remain preferable where they apply — they need no statistics and are
> correct on the first run. They are simply not sufficient.
>
> **`black_box` is mandatory, and consuming the result is NOT enough.** The first version of
> `compute` accumulated `total + 1` in a nested loop and reported **0 µs at every n** while
> returning a numerically correct n². Clang recognised the idiom and closed the loop to a
> multiply. Feeding the result into output did not prevent it. Only making the inner operation an
> opaque external call restored the real curve. A benchmark harness that trusts the user to defeat
> the optimiser will silently measure nothing — and report success while doing it.
Instrument the runtime with allocation counters and fit *those* against n instead of time:
```el
bench "elc_compile" over n in [...] expect O(n) allocs O(n) { ... }
```
Zero noise, zero statistics, always gateable, correct on the first run on any machine. Go reports
`allocs/op` and `B/op`; **nobody fits them against n.** That is an open opportunity and it is exactly
our bug: elc's defect is quadratic *allocation volume*, which the old binary paid in RSS and the
current source pays in malloc/free churn.
An `expect allocs O(n)` assertion on `elc`'s compile path would have failed the build the day the
quadratic was introduced.
Required runtime additions: `__el_alloc_count()`, `__el_alloc_bytes()`, `__el_peak_rss()`.
### 6.6 Constant-factor gate (secondary, opt-in)
Mann-Whitney U at α = 0.05, noise floor 1%, medians with 95% CIs, `~` for not-significant. Requires
`--count >= 9`. Off by default on CI; opt-in per benchmark.
**Exit nonzero on regression.** Both benchstat and Criterion always exit 0, which is why every shop
using them wrote a wrapper. We do not repeat that omission.
---
## 7. Output
**Structured events are the source of truth.** Human text is rendered from them. We do not repeat
Go's parse-the-human-output design.
Event stream, NDJSON, one object per line, streamed live:
```json
{"time":"...","action":"run","test":"parser/empty"}
{"time":"...","action":"output","test":"parser/empty","output":"..."}
{"time":"...","action":"pass","test":"parser/empty","elapsed":0.0031}
{"time":"...","action":"bench","test":"str_concat","n":1024,"ns_op":41.2,"allocs_op":3,"bigo":"N","rms":0.03}
```
Renderers, all downstream and pluggable:
| Format | Flag | Use |
|---|---|---|
| Human | default | terminal, **per-test duration always shown** |
| NDJSON | `--json` | tooling, history, flaky detection |
| JUnit XML | `--junit-xml=PATH` | every CI system on earth |
| TAP | `--tap` | optional |
JUnit XML per the de-facto schema: `testsuites``testsuite``testcase`, with `time` in seconds
as a decimal, `file`/`line` attributes, and `failure` vs `error` vs `skipped` as distinct child
elements. Absence of a child element means pass. Emit `<testsuites>` even for a single suite, and
parse both shapes on input.
---
## 8. CLI
```
--list print the registry, run nothing
--list-json machine-readable registry
--run PATTERN slash-separated regex per path segment
--tag EXPR tag expression: fast & !slow
--shard I/N deterministic sharding for CI parallelism
--count N repetitions, for statistics
--bench PATTERN run benchmarks (off by default in test runs)
--benchtime DUR per-benchmark time budget
--junit-xml PATH
--json
--isolate re-exec per test on crash, so one SIGSEGV doesn't lose the run
--timeout DUR
--fail-fast
```
`--list` / `--list-json` / `--shard` cost roughly thirty lines because the registry already exists
before `main` does anything. That is the dividend of discovery-precedes-execution.
---
## 9. Build model
```
# once, ever (or when the runtime/framework changes):
cc -c el_runtime.c -o el_runtime.o
elc eltest.el > eltest.c && cc -c eltest.c -o eltest.o
ar rcs libeltest.a el_runtime.o eltest.o
# per suite:
elc --test foo_test.el > foo_test.c # registry + bodies only
cc foo_test.c libeltest.a -o foo_test
```
The 0.14s × N of redundant runtime rebuilds disappears — not because we optimized it, but because
one-runner-over-many-suites requires compile-once-link-many as a structural precondition.
---
## 10. Bootstrap and self-hosting
The framework's own tests are `test { }` blocks run by the framework. Same fixpoint discipline the
compiler already applies to itself.
1. Build the framework using the *existing* harness for its first tests (stage 0).
2. Rebuild the framework's tests as `test { }` blocks run by the new runner (stage 1).
3. Verify stage 1 reports identical results to stage 0.
4. From then on, the framework is tested by itself.
A framework that cannot run its own suite is not evidence of anything. This is a correctness proof,
not a claim.
---
## 11. Explicitly not building
| Rejected | Why |
|---|---|
| Naming-convention discovery (`fn test_foo`) | `test { }` is a real declaration. Go's `TestXxx` exists only because Go had no better hook — and it needs a heuristic to avoid matching `TesticularCancer`. |
| Reflection or symbol-table scanning | Slow, fragile under LTO/strip/dead-strip, and unnecessary when we own the compiler. |
| Parsing human output into structure | Go's `test2json` is its one clear architectural mistake. |
| JUnit 5's extension SPI | Seventeen callback interfaces to retrofit plugins onto a reflective framework. Not our problem. |
| `@ParameterizedTest` machinery | Table-driven loops + subtests subsume it at zero surface. |
| NUnit's out-of-process agents | They bridge CLR versions and AppDomains. We emit one native binary. Keep `--isolate` as crash fallback only. |
| JMH-style forking by default | Forks exist because JIT profiles are per-process. AOT C has no such state. Keep `--fork` available, not default. |
| Exit 0 on regression | benchstat and Criterion both do this, and every user writes a wrapper. |
| Dynamic runtime test registration | Breaks `--list`, sharding, and individual selection. Registry stays static. |
---
## 12. Phasing
| Phase | Content | Gate |
|---|---|---|
| **1** | Registry emission in codegen; 9 builtins; `el_test_main` skeleton in El; result records; per-test timing; human + NDJSON output | existing 11 test files pass, with timing |
| **2** | `libeltest.a` build model; subtests; filtering; `--list`; fixtures; constraint assertions; JUnit XML | suite runs in one binary; runtime compiled once |
| **3** | `bench { }`, `bench_loop`, `black_box`, `predictN`, Criterion sampling | benchmarks produce stable ns/op |
| **4** | Allocation counters; complexity fitting; `expect O(...)` gate | **an `expect allocs O(n)` benchmark on `elc` fails on the current quadratic** |
| **5** | Migrate both legacy systems; delete `runtime/test.el`; self-host | framework runs its own suite |
Phase 4 is the deliverable that matters. Phases 13 exist to make it possible.
---
## 13. Open questions for review
1. **Declarative `over n in [...] expect O(...)` syntax vs runtime calls.** I recommend declarative
(§6.1) so `--list` can show invariants without executing. It costs parser work. Your call.
2. **`bench { }` as a new block form** — parallel to `test { }`, or a modifier on it?
3. **Scope of the constraint model.** Full composable constraints, or start with a flat assertion set
and add constraints later? Full model is more surface but avoids a second migration.
4. **Does `runtime/test.el` get deleted or kept as a deprecated shim?** I lean delete — two systems
is how we got here.
5. **Where does `libeltest.a` live** in the tree, and does `epm` need to know about it?
6. **Allocation counters in `el_seed.c` or `el_runtime.c`?** AGENTS.md says `el_seed.c` is the sole
C dependency and hand-maintained; counters are OS-boundary-adjacent but not OS calls.
7. **Is per-test timing enough, or do we want per-*assertion* timing** for finding slow helpers?
---
## 14. What this document is not
This is a design, not a measurement. Every performance claim about the *current* system in §1 is
measured and reproducible in this worktree. Every claim about the *proposed* system is a prediction.
None of it is verified until Phase 1 runs and Phase 4 fails a build on the real quadratic.
+62 -1
View File
@@ -247,6 +247,24 @@ fn persist_bulk() -> Int {
return persist_canonical()
}
// COMPILER LANDMINE, measured 2026-08-16 do not inline this back into the
// caller. elc lowers `a == b` to numeric comparison only when both operand
// NAMES are in the per-function int-name set, which `let x: Int` populates.
// That registration does NOT propagate into a nested if-expression block: the
// first cut of the geometry-ingest path wrote `let claimed: Int = ...` and
// `let got: Int = ...` inside the else-arm and `claimed == got` came out of
// codegen as `str_eq(claimed, got)` strcmp on two integers reinterpreted as
// pointers, i.e. a segfault on the first geometry-bearing request. Read back
// out of the generated C, not guessed. Function PARAMETERS annotated `: Int`
// do register reliably (verified: `if (claimed == actual)`), so the comparison
// lives in a function of its own. Note also the explicit `return`s a trailing
// if-EXPRESSION at a function tail emits as a statement and the function
// returns 0 regardless, which is the same probe's second finding.
fn width_agrees(claimed: Int, actual: Int) -> Int {
if claimed == actual { return 1 }
return 0
}
// INCOMPLETE-ROUTE FIX (2026-07-24 self-review): this route silently dropped
// label, importance, tier, and tags engram_node() defaults label to content
// and importance to 0.5, so every node created over HTTP lost its metadata.
@@ -288,6 +306,45 @@ fn route_create_node(method: String, path: String, body: String) -> String {
salience, importance, confidence,
tier, tags
)
// GEOMETRY INGEST geometry-valued end to end (2026-08-16).
//
// The defect this route originally had: it accepted an "emb" field,
// returned 200 with a fresh id, and stored NOTHING, because engram_node_full
// has no vector parameter. The consequence was structural, not cosmetic
// text was the only entry medium, so any non-text modality had to be
// DESCRIBED in prose, and what we then reasoned over was the geometry of the
// description, not of the signal.
//
// #141 fixed the drop but marshalled the vector as a hex STRING through
// engram_node_set_emb, which put text back as the TRANSPORT medium one layer
// below the problem being fixed. This is that correction: hex is decoded
// exactly ONCE, here at the edge, into a first-class Geometry, and every
// step below this line moves geometry rather than text. An encoding at the
// boundary is what an encoding is for.
//
// The WIRE is deliberately unchanged "emb" is still little-endian float32
// hex (8 chars per component), the encoding the perception vessel's
// /voice/embed already emits because production clients speak it. What
// changed is underneath it.
//
// "dim" is now treated as an ASSERTION about the vector the caller sent, not
// as the source of its width: a Geometry carries its own width. A stated dim
// that disagrees is a REJECTED ingest, not a silent reinterpretation. Omitting
// "dim" is fine and means "trust the vector", which is the honest default.
//
// Off-dimension vectors remain stored but not inserted into the resident HNSW
// index (its build loop filters on emb_dim), so a 64-dim voice geometry is
// durable and addressable without perturbing the 768-dim canonical index.
let emb_hex: String = json_get_string(body, "emb")
let emb_set: Int = if str_eq(emb_hex, "") { 0 } else {
let g: Geometry = geometry_from_f32le_hex(emb_hex)
let got: Int = geometry_dim(g)
let dim_raw: String = json_get_raw(body, "dim")
let claimed: Int = if str_eq(dim_raw, "") { got } else { json_get_int(body, "dim") }
let landed: Int = if width_agrees(claimed, got) > 0 { node_attach_geometry(id, g) } else { 0 }
let freed: Int = geometry_free(g)
landed
}
let saved: Int = persist_node(id)
// ORPHAN PREVENTION (ENGRAM_AUTOCONNECT): connect the fresh node to its
// nearest embedded neighbors so it never enters the graph edgeless.
@@ -298,7 +355,11 @@ fn route_create_node(method: String, path: String, body: String) -> String {
if added > 0 { let sv2: Int = persist_edges_since(ec0) }
added
} else { 0 }
"{\"id\":\"" + id + "\",\"content\":\"" + content + "\",\"node_type\":\"" + node_type + "\",\"connected\":" + int_to_str(connected) + "}"
// Report whether the supplied geometry actually landed. The old response
// was success-shaped regardless 200 with an id while the vector was
// discarded which is how the drop went unnoticed. A caller can now
// assert on emb_set instead of trusting the status code.
"{\"id\":\"" + id + "\",\"content\":\"" + content + "\",\"node_type\":\"" + node_type + "\",\"connected\":" + int_to_str(connected) + ",\"emb_set\":" + int_to_str(emb_set) + "}"
}
fn route_get_node(method: String, path: String, body: String) -> String {
+107
View File
@@ -0,0 +1,107 @@
#!/usr/bin/env bash
# run_vindex_concurrency_tests.sh — regression harness for the 2026-08-16 soul crash.
#
# Four halves. The SET is the point: it separates two hazards the original two-half
# version conflated, and which have fixes in different files.
#
# 1. single ASan+UBSan, one thread. MUST be clean. Hard failure.
#
# 2. readers TSan, N readers, NO writer. Hazard (a): the visited set used
# to live on the index, so two pure READS stamped each other's
# epoch. Fixed in engram_vindex.c (frame-owned VVisit +
# `const VIndex*` search). MUST be clean. Hard failure.
#
# 3. unsynchronized TSan, writer + reader on a BARE index. Hazard (b): in-place
# HNSW insert rewires existing elements' neighbour lists and
# reallocs elems[]. EXPECTED TO RACE, PERMANENTLY. This is not
# a bug to fix inside engram_vindex.c — it is the executable
# proof that a publication boundary must exist above it.
# Not a failure. If it ever goes CLEAN, the test stopped
# interleaving and half 4 is no longer meaningful either.
#
# 4. published TSan, owner + N readers through a publication boundary
# (rwlock: readers shared, owner exclusive) mirroring
# eg_vindex_view / eg_vindex_maintain in lang/runtime/el_runtime.c.
# MUST be clean, and all inserts must land. Hard failure.
#
# See test_vindex_concurrency.c for the full story (SIGSEGV at ASCII address
# "gramNode", heap corruption in xzm_realloc, etc).
#
# usage: run_vindex_concurrency_tests.sh
set -uo pipefail
HERE="$(cd "$(dirname "${BASH_SOURCE[0]}")" && pwd)"
RUNTIME="$(cd "$HERE/../../lang/runtime" && pwd)"
WORK="$(mktemp -d)"
trap 'rm -rf "$WORK"' EXIT
SRC="$HERE/test_vindex_concurrency.c"
VINDEX="$RUNTIME/engram_vindex.c"
fail=0
echo "== [1/4] single-threaded control under AddressSanitizer =="
cc -std=c11 -g -O1 -fsanitize=address,undefined -fno-omit-frame-pointer \
-I"$RUNTIME" -o "$WORK/single" "$SRC" "$VINDEX" -lm || { echo "BUILD FAILED"; exit 2; }
if ASAN_OPTIONS=detect_leaks=0 "$WORK/single" single; then
echo " -> OK"
else
echo " -> FAIL: the single-threaded control must always be clean."
echo " If this fails the bug is NOT (only) concurrency — look for a real"
echo " out-of-bounds or lifetime error in engram_vindex.c."
fail=1
fi
cc -std=c11 -g -O1 -fsanitize=thread -fno-omit-frame-pointer \
-I"$RUNTIME" -o "$WORK/conc" "$SRC" "$VINDEX" -lm || { echo "BUILD FAILED"; exit 2; }
# run_tsan <mode> <logfile>; echoes nothing, sets $tsan_raced
run_tsan() {
TSAN_OPTIONS="halt_on_error=0" "$WORK/conc" "$1" >"$2" 2>&1
tsan_rc=$?
if grep -q "ThreadSanitizer: data race" "$2"; then tsan_raced=1; else tsan_raced=0; fi
}
echo
echo "== [2/4] concurrent READERS, no writer (visited-set gate) =="
run_tsan readers "$WORK/readers.log"
if [ "$tsan_raced" = "1" ]; then
echo " -> REGRESSION: two concurrent reads still race."
grep -m1 -A6 "ThreadSanitizer: data race" "$WORK/readers.log" | sed 's/^/ /'
echo " The visited set was supposed to be owned by the call frame."
fail=1
else
echo " -> clean (concurrent reads are safe)"
fi
echo
echo "== [3/4] writer+reader on a BARE index (expected-race probe) =="
run_tsan unsynchronized "$WORK/unsync.log"
if [ "$tsan_raced" = "1" ]; then
echo " -> RACE DETECTED, as expected:"
grep -m1 -A4 "ThreadSanitizer: data race" "$WORK/unsync.log" | sed 's/^/ /'
echo " In-place HNSW insert mutates existing elements. Not fixable inside"
echo " engram_vindex.c — this is why the publication boundary exists."
else
echo " -> NOTE: no race reported. The probe did not interleave; half 4's"
echo " clean result proves less than it should. Investigate."
fi
echo
echo "== [4/4] owner+readers through the publication boundary (boundary gate) =="
run_tsan published "$WORK/pub.log"
if [ "$tsan_raced" = "1" ]; then
echo " -> REGRESSION: the publication boundary did not serialize the owner."
grep -m1 -A6 "ThreadSanitizer: data race" "$WORK/pub.log" | sed 's/^/ /'
fail=1
elif [ "$tsan_rc" != "0" ]; then
echo " -> FAIL: boundary clean under TSan but the run failed:"
tail -3 "$WORK/pub.log" | sed 's/^/ /'
fail=1
else
echo " -> clean (readers project concurrently; the owner's inserts all landed)"
fi
echo
[ "$fail" -eq 0 ] && echo "RESULT: PASS" || echo "RESULT: FAIL"
exit "$fail"
+251
View File
@@ -0,0 +1,251 @@
/* test_vindex_concurrency.c — regression test for the 2026-08-16 soul crash.
*
* WHAT BROKE: the soul daemon crash-looped (5 crashes in ~100s) with SIGSEGV in
* search_layer <- vindex_insert <- eg_vindex_sync, a SIGABRT, and a fault inside
* xzm_realloc's own freelist i.e. heap corruption. The SIGSEGV address
* 0x65646f4e6d617267 is little-endian ASCII "gramNode": string bytes being
* dereferenced as an Elem vector pointer.
*
* ROOT CAUSE: VIndex owns its traversal scratch (visited[] + visit_epoch), and
* search_layer mutates it via visited_reset(). So the index is unsafe for ANY
* concurrent use including two concurrent READS. soul.el starts http_serve_async
* (a thread per connection) and then runs awareness_run() on the main thread, which
* reaches the same global index through engram_activate; nothing serialized them.
*
* Neither hnswlib nor FAISS puts the visited set on the index: hnswlib checks one
* out of a VisitedListPool per query, FAISS uses a thread_local VisitedTable.
*
* THE ORIGINAL `concurrent` HALF CONFLATED TWO DISTINCT HAZARDS (2026-08-16). It ran
* a writer against a reader on one bare index, so it could not tell apart:
*
* (a) READ/READ corruption two searches stamping each other's visited epoch.
* A defect INSIDE engram_vindex.c, fixable there, and now fixed: the visited
* set moved to the call frame and vindex_search takes a `const VIndex*`.
*
* (b) WRITE/READ corruption vindex_insert rewires the neighbour lists of
* EXISTING elements and reallocs elems[], so an insert is a mutation of the
* whole structure. This is NOT fixable inside engram_vindex.c at any price:
* it is inherent to in-place HNSW. It requires a publication boundary ABOVE
* the data structure (el_runtime.c: eg_vindex_view / eg_vindex_maintain).
*
* Conflating them made the suite unfailable-then-unpassable: fixing (a) left (b)
* still racing, which reads as "the fix did not work" when in fact a different,
* correctly-located fix is what (b) needs. So the halves are now separate:
*
* single N clustered vectors, ONE thread, ASan. The CONTROL. Must always
* be clean. When this passes and a concurrent half fails, the defect
* is concurrency, not an out-of-bounds/logic error in the graph code.
* (On 2026-08-16 this control cleared all 13,820 real dim-768 store
* vectors under ASan, which DISPROVED an inspection-derived hypothesis
* about an out-of-bounds reverse-link write at engram_vindex.c:340.)
*
* readers N reader threads, NO writer, one shared index, TSan. This is
* hazard (a) in isolation. It RACED before the visited set moved off
* the index struct and must be CLEAN now. Hard gate.
*
* unsynchronized writer + reader on a bare index, TSan. Hazard (b) in isolation.
* EXPECTED TO RACE, permanently it is the executable proof that
* the index cannot be made safe from the inside, and therefore that
* the publication boundary in el_runtime.c has to exist. If this
* ever goes clean, the test stopped interleaving; do not celebrate.
*
* published writer + readers through a publication boundary that mirrors
* eg_vindex_view / eg_vindex_maintain (rwlock: readers shared,
* the single owner exclusive), TSan. Must be CLEAN. Hard gate.
* This is what proves the shape of the runtime fix, in the same
* process, rather than asserting it.
*
* Absence of a crash does NOT mean absence of a race always read the sanitizer
* verdict, never just the exit code.
*
* Build/run: engram/test/run_vindex_concurrency_tests.sh
*/
#include "engram_vindex.h"
#include <pthread.h>
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <stdint.h>
#define DIM 128
#define NVEC 3000
#define SEED_N 50
static VIndex* g_ix;
static float* g_vecs;
/* Deterministic filler. Real embeddings are strongly correlated, not uniform noise;
* clustering keeps many candidates near-equidistant, which exercises the diversity
* heuristic and the visited set far harder than random vectors do. */
static void fill_vectors(void) {
g_vecs = (float*)malloc((size_t)NVEC * DIM * sizeof(float));
if (!g_vecs) { fprintf(stderr, "OOM\n"); exit(1); }
for (int i = 0; i < NVEC; i++) {
int cluster = i % 8;
for (int d = 0; d < DIM; d++)
g_vecs[(size_t)i * DIM + d] =
(float)(((d + cluster * 7) % 13) / 13.0) +
(float)(((i * 2654435761u + (unsigned)d) % 97) / 9700.0);
}
}
static void* writer_fn(void* arg) {
(void)arg;
for (int i = SEED_N; i < NVEC; i++)
(void)vindex_insert(g_ix, (uint64_t)i, g_vecs + (size_t)i * DIM);
return NULL;
}
static void* reader_fn(void* arg) {
(void)arg;
uint64_t ids[8]; float ds[8];
for (int i = 0; i < 20000; i++)
(void)vindex_search(g_ix, g_vecs + (size_t)(i % NVEC) * DIM, 8, 0, ids, ds);
return NULL;
}
static int run_single(void) {
printf("[single] inserting %d vectors on one thread (ASan control)\n", NVEC);
g_ix = vindex_create(DIM, 0, 0);
if (!g_ix) { fprintf(stderr, "[single] vindex_create failed\n"); return 1; }
for (int i = 0; i < NVEC; i++) {
if (vindex_insert(g_ix, (uint64_t)i, g_vecs + (size_t)i * DIM) != 0) {
fprintf(stderr, "[single] insert %d failed\n", i); return 1;
}
}
if (vindex_size(g_ix) != (size_t)NVEC) {
fprintf(stderr, "[single] size %zu != %d\n", vindex_size(g_ix), NVEC); return 1;
}
uint64_t ids[16]; float ds[16];
for (int q = 0; q < 200; q++) {
int k = vindex_search(g_ix, g_vecs + (size_t)((q * 7) % NVEC) * DIM, 16, 0, ids, ds);
if (k < 0) { fprintf(stderr, "[single] search failed at q=%d\n", q); return 1; }
}
vindex_free(g_ix); g_ix = NULL;
printf("[single] PASS — no memory error (this must ALWAYS pass)\n");
return 0;
}
/* Hazard (b) in isolation: writer + reader on a BARE index, no boundary. */
static int run_unsynchronized(void) {
printf("[unsynchronized] 1 writer + 1 reader on a BARE index (TSan probe)\n");
printf("[unsynchronized] a race here is EXPECTED and PERMANENT — in-place HNSW\n");
printf("[unsynchronized] insert rewires existing elements. This is the proof that\n");
printf("[unsynchronized] the publication boundary must live ABOVE engram_vindex.c.\n");
g_ix = vindex_create(DIM, 0, 0);
if (!g_ix) { fprintf(stderr, "[unsynchronized] vindex_create failed\n"); return 1; }
for (int i = 0; i < SEED_N; i++)
(void)vindex_insert(g_ix, (uint64_t)i, g_vecs + (size_t)i * DIM);
pthread_t w, r;
if (pthread_create(&w, NULL, writer_fn, NULL) ||
pthread_create(&r, NULL, reader_fn, NULL)) {
fprintf(stderr, "[unsynchronized] pthread_create failed\n"); return 1;
}
pthread_join(w, NULL);
pthread_join(r, NULL);
vindex_free(g_ix); g_ix = NULL;
printf("[unsynchronized] completed — CHECK THE SANITIZER VERDICT, not this line.\n");
return 0;
}
/* ── hazard (a) in isolation: concurrent READS only ───────────────────────────
* This is what the frame-owned visited set fixes. Before that change, two
* vindex_search calls on one index wrote each other's epoch stamp; TSan reported
* the race at visited_reset and the traversal then walked bogus element indices. */
#define NREADERS 4
static int run_readers(void) {
printf("[readers] %d concurrent readers, NO writer, one shared index (TSan)\n", NREADERS);
printf("[readers] this is the visited-set regression gate — must be CLEAN.\n");
g_ix = vindex_create(DIM, 0, 0);
if (!g_ix) { fprintf(stderr, "[readers] vindex_create failed\n"); return 1; }
for (int i = 0; i < NVEC; i++)
(void)vindex_insert(g_ix, (uint64_t)i, g_vecs + (size_t)i * DIM);
pthread_t t[NREADERS];
for (int i = 0; i < NREADERS; i++)
if (pthread_create(&t[i], NULL, reader_fn, NULL)) {
fprintf(stderr, "[readers] pthread_create failed\n"); return 1;
}
for (int i = 0; i < NREADERS; i++) pthread_join(t[i], NULL);
vindex_free(g_ix); g_ix = NULL;
printf("[readers] completed — CHECK THE SANITIZER VERDICT, not this line.\n");
return 0;
}
/* ── the publication boundary, mirroring el_runtime.c ─────────────────────────
* Readers take the boundary SHARED and hold it across the whole search; the one
* owner takes it EXCLUSIVE to extend. Same shape as eg_vindex_view /
* eg_vindex_maintain. Note the reader's index pointer is `const VIndex*` the
* compiler, not this comment, is what stops a reader inserting. */
static pthread_rwlock_t g_pub = PTHREAD_RWLOCK_INITIALIZER;
static void* pub_writer_fn(void* arg) {
(void)arg;
for (int i = SEED_N; i < NVEC; i++) {
pthread_rwlock_wrlock(&g_pub);
(void)vindex_insert(g_ix, (uint64_t)i, g_vecs + (size_t)i * DIM);
pthread_rwlock_unlock(&g_pub);
}
return NULL;
}
static void* pub_reader_fn(void* arg) {
(void)arg;
uint64_t ids[8]; float ds[8];
for (int i = 0; i < 5000; i++) {
pthread_rwlock_rdlock(&g_pub);
const VIndex* view = g_ix; /* immutable view */
(void)vindex_search(view, g_vecs + (size_t)(i % NVEC) * DIM, 8, 0, ids, ds);
pthread_rwlock_unlock(&g_pub);
}
return NULL;
}
static int run_published(void) {
printf("[published] 1 owner + %d readers through a publication boundary (TSan)\n", NREADERS);
printf("[published] this is the eg_vindex_view/eg_vindex_maintain gate — must be CLEAN.\n");
g_ix = vindex_create(DIM, 0, 0);
if (!g_ix) { fprintf(stderr, "[published] vindex_create failed\n"); return 1; }
for (int i = 0; i < SEED_N; i++)
(void)vindex_insert(g_ix, (uint64_t)i, g_vecs + (size_t)i * DIM);
pthread_t w, r[NREADERS];
if (pthread_create(&w, NULL, pub_writer_fn, NULL)) {
fprintf(stderr, "[published] pthread_create failed\n"); return 1;
}
for (int i = 0; i < NREADERS; i++)
if (pthread_create(&r[i], NULL, pub_reader_fn, NULL)) {
fprintf(stderr, "[published] pthread_create failed\n"); return 1;
}
pthread_join(w, NULL);
for (int i = 0; i < NREADERS; i++) pthread_join(r[i], NULL);
if (vindex_size(g_ix) != (size_t)NVEC) {
fprintf(stderr, "[published] size %zu != %d — the owner lost inserts\n",
vindex_size(g_ix), NVEC);
vindex_free(g_ix); g_ix = NULL; return 1;
}
vindex_free(g_ix); g_ix = NULL;
printf("[published] all %d inserts landed; CHECK THE SANITIZER VERDICT too.\n", NVEC);
return 0;
}
int main(int argc, char** argv) {
const char* mode = (argc > 1) ? argv[1] : "single";
fill_vectors();
int rc;
if (!strcmp(mode, "single")) rc = run_single();
else if (!strcmp(mode, "readers")) rc = run_readers();
else if (!strcmp(mode, "unsynchronized")) rc = run_unsynchronized();
else if (!strcmp(mode, "published")) rc = run_published();
/* back-compat: the pre-split name meant the bare writer+reader probe. */
else if (!strcmp(mode, "concurrent")) rc = run_unsynchronized();
else {
fprintf(stderr, "usage: %s [single|readers|unsynchronized|published]\n", argv[0]);
rc = 2;
}
free(g_vecs);
return rc;
}
+27 -12
View File
@@ -13,7 +13,7 @@
// relations add edges. Every node enters with PROVENANCE + grounding-level
// + stewardship class from the moment of entry.
//
// transduce() is THE single mechanism one function, polymorphic, with no
// transduce_manifold() is THE single mechanism one function, polymorphic, with no
// content-type branch inside it. It does not ask whether a payload is
// prose, structured data, or raw/opaque bytes (audio, or anything else);
// it runs one boundary-scan-with-fixed-window-fallback chunking algorithm
@@ -401,10 +401,25 @@ fn head80(s: String) -> String {
// truncates at the first embedded NUL, which is routine in real binary
// bytes) is a MECHANICAL fidelity concern that belongs to whatever produced
// `source` (see ingest_file's file_source_string below) not a
// content-type judgment made in here. transduce() never learns whether a
// content-type judgment made in here. transduce_manifold() never learns whether a
// chunk is plain text or a base64-encoded raw-byte window; every chunk is
// handled identically either way.
fn transduce(nodes: [String], edges: [String], source: String,
// RENAMED transduce -> transduce_manifold (2026-08-16). Two reasons, and the
// first is not the interesting one:
//
// 1. Mechanical: `transduce` is now a LANGUAGE primitive in el_runtime.h
// (transduce(signal, modality) -> Geometry). Every El `fn name(...)`
// compiles to a global C symbol with that exact name, so keeping this
// name here is a hard `conflicting types for 'transduce'` compile error
// the moment ingest.c links el_runtime.c. Measured, not anticipated.
//
// 2. Actual: this function was never signal->geometry. It chunks already-
// extracted content and PACKS it into a node+edge manifold a real
// operation, but one layer up, and it had taken the name that belongs to
// the primitive underneath it. `transduce` is where a signal becomes
// geometry; `transduce_manifold` is where extracted content becomes
// structure. Nothing about this function's behaviour changed.
fn transduce_manifold(nodes: [String], edges: [String], source: String,
prov: String, ground: String, steward: String,
root_lid: String, root_title: String) -> [String] {
let tagbase: String = "prov:" + prov + " ground:" + ground + " steward:" + steward
@@ -531,8 +546,8 @@ fn default_steward() -> String {
// trustworthy verbatim. When they don't (silent truncation happened),
// rebuild the payload as base64-encoded fixed-size windows read directly
// off disk (fs_read_b64_chunk binary-safe in C), joined with the same
// "\n\n" boundary marker transduce()'s generic scan already looks for, so
// transduce() sees one ordinary boundary-delimited payload and runs its one
// "\n\n" boundary marker transduce_manifold()'s generic scan already looks for, so
// transduce_manifold() sees one ordinary boundary-delimited payload and runs its one
// algorithm on it exactly as it would on prose it never learns that a
// fidelity problem occurred upstream, let alone why.
fn file_source_string(path: String, text: String, real_size: Int) -> String {
@@ -541,7 +556,7 @@ fn file_source_string(path: String, text: String, real_size: Int) -> String {
// 3072 raw bytes -> 4096 base64 chars (3 divides evenly into base64's
// 3-byte/4-char ratio); keeps each resulting node's content a clean,
// bounded, low-kilobytes unit, same order of magnitude as the fixed
// fallback window in transduce() itself.
// fallback window in transduce_manifold() itself.
let win: Int = 3072
let out: String = ""
let off: Int = 0
@@ -561,7 +576,7 @@ fn file_source_string(path: String, text: String, real_size: Int) -> String {
}
// ingest one file -> report JSON. Uniform for every file regardless of
// extension or content transduce() decides nothing about content-type, so
// extension or content transduce_manifold() decides nothing about content-type, so
// neither does this function; it only decides whether the raw bytes made it
// through the read intact (file_source_string), which is a fidelity
// question, not a format one.
@@ -573,14 +588,14 @@ fn ingest_file(path: String) -> String {
return "{\"error\":\"empty or unreadable\",\"path\":" + j_q(path) + "}"
}
let prov: String = "file:" + path
let packed: [String] = transduce(el_list_empty(), el_list_empty(),
let packed: [String] = transduce_manifold(el_list_empty(), el_list_empty(),
source, prov, default_ground(), default_steward(),
"doc:" + basename(path), basename(path))
return merge_packed(packed)
}
// ingest a directory: walk one level, ingest every file found, aggregate.
// No extension filter transduce() handles any payload uniformly now, so
// No extension filter transduce_manifold() handles any payload uniformly now, so
// there is no content-type gate at the directory boundary either.
fn ingest_dir(path: String) -> String {
let entries: [String] = fs_list(path)
@@ -615,7 +630,7 @@ fn ingest_dir(path: String) -> String {
fn ingest_url(url: String) -> String {
let body: String = http_get(url)
if str_eq(body, "") { return "{\"error\":\"empty fetch\",\"url\":" + j_q(url) + "}" }
let packed: [String] = transduce(el_list_empty(), el_list_empty(),
let packed: [String] = transduce_manifold(el_list_empty(), el_list_empty(),
body, "url:" + url, "extracted", "public-web",
"url:" + url, url)
return merge_packed(packed)
@@ -630,7 +645,7 @@ fn ingest_llm(query: String) -> String {
let resp: String = http_post_json("http://127.0.0.1:11434/api/generate", body)
let answer: String = json_get_string(resp, "response")
if str_eq(answer, "") { return "{\"error\":\"no model response\"}" }
let packed: [String] = transduce(el_list_empty(), el_list_empty(),
let packed: [String] = transduce_manifold(el_list_empty(), el_list_empty(),
answer, "llm:" + model + ":" + query, "candidate-provisional", "guide-provisional",
"llm:" + query, "guide answer: " + query)
return merge_packed(packed)
@@ -682,7 +697,7 @@ fn ingest_stream(path: String) -> String {
// It is NOT a content-type flag: it says nothing about what's inside the
// bytes once fetched, and none of the five ingest_* functions it selects
// among interpret their payload differently by content shape anymore
// they all hand off to the single, format-agnostic transduce(). The old
// they all hand off to the single, format-agnostic transduce_manifold(). The old
// "structured" value (a caller-declared alias for "file", used only to hint
// the now-removed JSON-vs-prose branch) is gone along with that branch.
let kind: String = env("INGEST_KIND")
+149 -20
View File
@@ -862,10 +862,23 @@ fn cg_expr(expr: Map<String, Any>) -> String {
// arithmetic BinOp (or vice-versa). Without this check the
// fallthrough to str_eq produces str_eq(int_value, int_value)
// which reads the integer as a char* and segfaults.
// EITHER side provably Int is enough. Requiring BOTH meant a call
// whose return type codegen cannot infer poisoned the operator:
// getint(5) == a -> str_eq(getint(5), a)
// even with `a` declared Int. str_eq then reads an integer as a
// char* and segfaults. Only an integer LITERAL on one side forced
// the numeric form, so the bug was invisible in the common case.
//
// Loosening to OR is strictly safer: when one side is a known Int,
// str_eq is always wrong (it dereferences that int), while numeric
// comparison is at worst a wrong answer on an already ill-typed
// program. When neither side is Int nothing changes, so string
// comparison is untouched.
if is_int_expr(left) {
if is_int_expr(right) {
return "(" + left_c + " == " + right_c + ")"
}
return "(" + left_c + " == " + right_c + ")"
}
if is_int_expr(right) {
return "(" + left_c + " == " + right_c + ")"
}
// Float literal or negative float literal: use plain == (bit-equal
// el_val_t comparison). This handles `r0 == 3.0`, `neg == -3.0`, etc.
@@ -921,10 +934,12 @@ fn cg_expr(expr: Map<String, Any>) -> String {
}
// Same mixed Ident/BinOp fix as EqEq: use is_int_expr to detect
// integer-typed operands before falling through to !str_eq.
// Either side Int is enough see the EqEq note above.
if is_int_expr(left) {
if is_int_expr(right) {
return "(" + left_c + " != " + right_c + ")"
}
return "(" + left_c + " != " + right_c + ")"
}
if is_int_expr(right) {
return "(" + left_c + " != " + right_c + ")"
}
// Float-typed operands use plain != (bit-equal comparison).
if is_float_expr(left) {
@@ -1495,6 +1510,11 @@ fn cg_stmt(stmt: Map<String, Any>, indent: String, declared: [String]) -> [Strin
if str_eq(ltype, "Int") {
add_int_name(name)
}
// Same as params: Bool is an int in the value model. Without this a
// `let ok: Bool = ...` compared to another Bool lowered to str_eq.
if str_eq(ltype, "Bool") {
add_int_name(name)
}
if str_eq(ltype, "Float") {
add_float_name(name)
}
@@ -1705,9 +1725,13 @@ fn cg_stmt(stmt: Map<String, Any>, indent: String, declared: [String]) -> [Strin
} else {
let c_msg = "EL_STR_PTR(" + cg_expr(msg_node) + ")"
}
// Assertions record into PER-TEST state, not global counters. The test
// is the unit of result; a global pass/fail tally cannot say which test
// failed or whether a test ran at all. Reporting is the runner's job
// nothing is printed here.
emit_line(indent + "if (!(" + c_cond + ")) {")
emit_line(indent + " __el_test_fail(__el_cur_test, " + c_msg + "); __el_fail++;")
emit_line(indent + "} else { __el_pass++; }")
emit_line(indent + " __el_test_fail(" + c_msg + ");")
emit_line(indent + "} else { __el_cur_asserts++; }")
return declared
}
@@ -2602,6 +2626,17 @@ fn builtin_arity(name: String) -> Int {
// LSP seed primitives
if str_eq(name, "__read_n") { return 1 }
if str_eq(name, "__print_raw") { return 1 }
// Test-registry accessors. These are not runtime builtins they are
// GENERATED into the same translation unit by the --test path below, one
// set per test binary. They are declared here so the El-side runner in
// runtime/eltest.el can call them with a known arity.
if str_eq(name, "__el_reg_count") { return 0 }
if str_eq(name, "__el_reg_name") { return 1 }
if str_eq(name, "__el_reg_invoke") { return 1 }
if str_eq(name, "__el_reg_last_ns") { return 0 }
if str_eq(name, "__el_reg_msg") { return 0 }
if str_eq(name, "__el_reg_asserts") { return 0 }
if str_eq(name, "__el_opt_json") { return 0 }
// String
if str_eq(name, "el_str_concat") { return 2 }
if str_eq(name, "str_eq") { return 2 }
@@ -2766,6 +2801,9 @@ fn builtin_arity(name: String) -> Int {
if str_eq(name, "__engram_scan_nodes_json") { return 2 }
if str_eq(name, "__engram_edges_json") { return 2 }
if str_eq(name, "__engram_pool_stats_json") { return 0 }
if str_eq(name, "__el_alloc_count") { return 0 }
if str_eq(name, "__el_alloc_bytes") { return 0 }
if str_eq(name, "__el_peak_rss") { return 0 }
if str_eq(name, "__generate") { return 1 }
// Filesystem
if str_eq(name, "fs_read") { return 1 }
@@ -2866,6 +2904,10 @@ fn builtin_arity(name: String) -> Int {
if str_eq(name, "engram_scan_nodes_json") { return 2 }
if str_eq(name, "engram_edges_json") { return 2 }
if str_eq(name, "engram_pool_stats_json") { return 0 }
if str_eq(name, "el_alloc_count") { return 0 }
if str_eq(name, "el_alloc_bytes") { return 0 }
if str_eq(name, "el_peak_rss") { return 0 }
if str_eq(name, "el_black_box") { return 1 }
if str_eq(name, "engram_neighbors_json") { return 3 }
if str_eq(name, "engram_activate_json") { return 2 }
if str_eq(name, "engram_stats_json") { return 0 }
@@ -3091,6 +3133,15 @@ fn build_int_names_for_params(params: [Map<String, Any>]) -> Bool {
if str_eq(ptype, "Int") {
add_int_name(pname)
}
// Bool is an integer in the value model (type_to_c maps Bool -> "int";
// el_runtime.h: "Bool -> el_val_t (0 = false, nonzero = true)"), but
// Bool names were registered nowhere. So `cond == want` between two
// Bool params fell through to str_eq and dereferenced 0 or 1 as a
// char* an immediate segfault. Track them as int-like, which is what
// they are.
if str_eq(ptype, "Bool") {
add_int_name(pname)
}
if str_eq(ptype, "Float") {
add_float_name(pname)
}
@@ -4110,13 +4161,36 @@ fn codegen_streaming(tokens: [Any], sigs: [Map<String, Any>], source: String) ->
// Emit test harness preamble (counters, fail printer) when in test mode.
if test_is_mode {
emit_line("#include <stdio.h>")
emit_line("#include <string.h>")
emit_line("#include <time.h>")
emit_blank()
emit_line("static int __el_pass = 0, __el_fail = 0;")
// Per-test result state. Reset by __el_reg_invoke before each test, so
// every test gets its own record rather than contributing to a global
// tally. The first failure message is retained; later ones only bump
// the count, which keeps the common case allocation-free.
emit_line("static int __el_cur_fails = 0;")
emit_line("static int __el_cur_asserts = 0;")
emit_line("static char __el_cur_msg[512] = \"\";")
emit_line("static const char *__el_cur_test = \"(none)\";")
emit_line("static void __el_test_fail(const char *test, const char *msg) {")
emit_line(" fprintf(stderr, \"FAIL %-40s %s\\n\", test, msg);")
emit_line("static void __el_test_fail(const char *msg) {")
emit_line(" if (__el_cur_fails == 0 && msg) {")
emit_line(" snprintf(__el_cur_msg, sizeof __el_cur_msg, \"%s\", msg);")
emit_line(" }")
emit_line(" __el_cur_fails++; __el_cur_asserts++;")
emit_line("}")
emit_blank()
// Forward declarations for the registry accessors. The definitions are
// emitted at the END of the unit (they reference the test functions,
// which do not exist yet at this point), but the El-side runner is
// compiled in between and calls them so it needs the prototypes here.
emit_line("el_val_t __el_reg_count(void);")
emit_line("el_val_t __el_reg_name(el_val_t i);")
emit_line("el_val_t __el_reg_invoke(el_val_t i);")
emit_line("el_val_t __el_reg_last_ns(void);")
emit_line("el_val_t __el_reg_msg(void);")
emit_line("el_val_t __el_reg_asserts(void);")
emit_line("el_val_t __el_opt_json(void);")
emit_blank()
}
// Streaming parse-emit loop.
@@ -4312,17 +4386,72 @@ fn codegen_streaming(tokens: [Any], sigs: [Map<String, Any>], source: String) ->
el_release(sigs)
let test_arena_mark: Any = el_arena_push()
let tn: Int = native_list_len(test_c_names)
// Generated test registry
// Discovery happens HERE, at compile time. The runner never searches
// for tests; it walks this table. That ordering — discovery strictly
// before execution is what makes --list, filtering, sharding and
// per-test reporting possible later, and it is why the old harness
// (which inlined direct calls into main) could not have any of them.
emit_line("typedef void (*__el_test_fp)(void);")
emit_line("typedef struct { const char *name; __el_test_fp fn; } __el_test_entry;")
emit_line("static const __el_test_entry __el_registry[] = {")
let ri: Int = 0
while ri < tn {
let r_name: String = native_list_get(test_names, ri)
let r_cfn: String = native_list_get(test_c_names, ri)
emit_line(" { \"" + c_escape(r_name) + "\", " + r_cfn + " },")
let ri = ri + 1
}
// Trailing sentinel keeps the array non-empty when a file declares no
// tests (a zero-length array is not valid C).
emit_line(" { 0, 0 }")
emit_line("};")
emit_line("static const int __el_registry_n = " + int_to_str(tn) + ";")
emit_blank()
emit_line("static long long __el_last_ns = 0;")
emit_line("static int __el_opt_json_v = 0;")
emit_blank()
// Index-based accessors
// El has no function pointers, so the runner works purely in indices.
// This is the whole seam between generated C and the El-side runner.
emit_line("el_val_t __el_reg_count(void) { return (el_val_t)(int64_t)__el_registry_n; }")
emit_line("el_val_t __el_reg_name(el_val_t i) {")
emit_line(" int64_t k = (int64_t)i;")
emit_line(" if (k < 0 || k >= __el_registry_n) return EL_STR(\"\");")
emit_line(" return EL_STR(__el_registry[k].name);")
emit_line("}")
// Timing is taken immediately around the call, in C, on the MONOTONIC
// clock never the wall clock, which can step backwards under NTP.
emit_line("el_val_t __el_reg_invoke(el_val_t i) {")
emit_line(" int64_t k = (int64_t)i;")
emit_line(" if (k < 0 || k >= __el_registry_n) return 0;")
emit_line(" __el_cur_fails = 0; __el_cur_asserts = 0; __el_cur_msg[0] = '\\0';")
emit_line(" __el_cur_test = __el_registry[k].name;")
emit_line(" struct timespec _t0, _t1;")
emit_line(" clock_gettime(CLOCK_MONOTONIC, &_t0);")
emit_line(" __el_registry[k].fn();")
emit_line(" clock_gettime(CLOCK_MONOTONIC, &_t1);")
emit_line(" __el_last_ns = (long long)(_t1.tv_sec - _t0.tv_sec) * 1000000000LL")
emit_line(" + (long long)(_t1.tv_nsec - _t0.tv_nsec);")
emit_line(" return (el_val_t)(int64_t)__el_cur_fails;")
emit_line("}")
emit_line("el_val_t __el_reg_last_ns(void) { return (el_val_t)(int64_t)__el_last_ns; }")
emit_line("el_val_t __el_reg_msg(void) { return EL_STR(__el_cur_msg); }")
emit_line("el_val_t __el_reg_asserts(void) { return (el_val_t)(int64_t)__el_cur_asserts; }")
emit_line("el_val_t __el_opt_json(void) { return (el_val_t)(int64_t)__el_opt_json_v; }")
emit_blank()
// main() delegates to the El-side runner. Everything above this line is
// generated glue; all reporting logic lives in runtime/eltest.el.
emit_line("int main(int _argc, char **_argv) {")
emit_line(" el_runtime_init_args(_argc, _argv);")
let ti: Int = 0
let tn: Int = native_list_len(test_c_names)
while ti < tn {
let tc_name: String = native_list_get(test_c_names, ti)
emit_line(" " + tc_name + "();")
let ti = ti + 1
}
emit_line(" printf(\"%d passed, %d failed\\n\", __el_pass, __el_fail);")
emit_line(" return __el_fail;")
emit_line(" for (int _i = 1; _i < _argc; _i++) {")
emit_line(" if (strcmp(_argv[_i], \"--json\") == 0) __el_opt_json_v = 1;")
emit_line(" }")
emit_line(" return (int)(int64_t)el_test_main();")
emit_line("}")
el_arena_pop(test_arena_mark)
el_release(test_names)
+16
View File
@@ -419,6 +419,22 @@ fn resolve_imports(src_path: String) -> String {
if !str_eq(already, "") { return "" }
state_set(seen_key, "1")
// A missing file must be a hard error, never an empty string.
//
// fs_read returns "" both for "file is empty" and "file does not exist", and
// this function used the value without distinguishing them. So a broken
// import path a typo, a moved file, a relative path resolved from the
// wrong working directory compiled CLEANLY: exit 0, empty stderr, and a
// program silently missing everything it imported. Observed 2026-08-15:
// eleven consecutive "successful" compiles that had included no runtime at
// all, and a wrong conclusion drawn from them before anyone noticed.
//
// Missing dependency, confident success. fs_exists separates the two cases,
// so a genuinely empty file still resolves to "" and is fine.
if !fs_exists(src_path) {
println("elc: cannot resolve import: " + src_path)
exit_program(1)
}
let source: String = fs_read(src_path)
let dir: String = dirname_of(src_path)
let lines: [String] = str_split(source, "\n")
+213
View File
@@ -0,0 +1,213 @@
// transduce.el geometry as a first-class El value, and a realizer written
// in El. Runnable: this is the worked example for the transduce surface, and
// it doubles as an executable proof because it checks every claim it makes.
//
// elc lang/examples/transduce.el > transduce.c
// cc -std=c11 -O2 -I lang/runtime -o transduce transduce.c \
// lang/runtime/el_runtime.c lang/runtime/el_seed.c \
// lang/runtime/engram_*.c -lcurl -lpthread -lm
// ./transduce # exits 0 only if every check passes
//
// (A `test "..."` form of the same checks lives in
// lang/tests/native/test_transduce.el, for when the native harness is
// repaired the shipped elc currently emits calls to __el_reg_count and
// friends without emitting their definitions, which breaks every native test
// equally, test_math.el included. Verified 2026-08-16, unrelated to this work.)
//
// WHY THIS EXISTS. Until 2026-08-16 no El ingest path could carry a vector:
// nodes took text, and geometry was DERIVED from that text. Text was the
// mandatory entry medium, so any non-text modality had to be DESCRIBED in
// prose first and the geometry we reasoned over was the geometry OF THE
// DESCRIPTION, not of the signal. Two things fix that, and both are shown
// below: geometry is a VALUE that carries its own width, and a REALIZER is an
// ordinary El function so admitting a new modality never requires a runtime
// patch.
//
// COMPARISON DISCIPLINE (measured, not stylistic): elc lowers `a == b`
// numerically only when both operand NAMES are in the per-function int-name
// set that `let x: Int` populates. A bare `f(x) == 0` is not a registered
// name and lowers to str_eq strcmp on two integers as pointers. `<` and `>`
// lower directly with no inference, so truthiness is written `> 0` / `< 1`.
// A realizer, written entirely in El
// Not in the runtime. Not known to the compiler. Registered by NAME and
// dispatched to through transduce(). That is the whole claim.
fn tone_realizer(signal: String) -> Geometry {
let g: Geometry = geometry_new(4)
let n: Int = str_len(signal)
let a: Int = geometry_set(g, 0, int_to_float(n))
let b: Int = geometry_set(g, 1, int_to_float(n * 2))
let c: Int = geometry_set(g, 2, int_to_float(n * 3))
let d: Int = geometry_set(g, 3, int_to_float(n * 4))
g
}
// A second modality, to show the registry keys on modality rather than just
// returning whatever was registered last.
fn pulse_realizer(signal: String) -> Geometry {
let g: Geometry = geometry_new(2)
let a: Int = geometry_set(g, 0, 1.0)
let b: Int = geometry_set(g, 1, 0.0)
g
}
// A deliberately BROKEN realizer: returns something that is not a Geometry.
fn bogus_realizer(signal: String) -> Geometry {
return 12345
}
// Fails FAST rather than accumulating a count, for a measured reason: a first
// cut wrote `let fails: Int = fails + check(...)` and `+` lowered to STRING
// CONCAT, because elc dispatches `+` on whether both operands are known-Int and
// a user-defined fn call is not so the counter printed 4343632752, a pointer.
// Nothing was wrong with the checks; the tally was lying. Exiting at the first
// failure needs no arithmetic at all, so there is nothing left to get wrong.
fn check(ok: Int, label: String) -> Int {
if ok > 0 {
println(" ok " + label)
return 0
}
println(" FAIL " + label)
exit(1)
return 1
}
fn near(a: Float, b: Float) -> Int {
let d: Float = a - b
if d > 0.001 { return 0 }
if d < -0.001 { return 0 }
return 1
}
fn eq_int(a: Int, b: Int) -> Int {
if a == b { return 1 }
return 0
}
fn main() -> Void {
println("geometry is a value that carries its own width")
let g8: Geometry = geometry_new(8)
let _c: Int = check(geometry_is(g8), "geometry_new returns a live Geometry")
let d8: Int = geometry_dim(g8)
let _c: Int = check(eq_int(d8, 8), "a Geometry carries its own width (8)")
let _c: Int = check(geometry_free(g8), "geometry_free reports what it did")
println("nonsense is refused — with no arbitrary max-dim bound")
// #141 needed `dim <= 8192` only to bound an allocation sized from a
// caller's CLAIM about a string's length. A value that carries its own
// width has nothing left to validate.
let z: Geometry = geometry_new(0)
let zi: Int = geometry_is(z)
let _c: Int = check(1 - zi, "dim 0 is not a geometry")
let ng: Geometry = geometry_new(-4)
let ngi: Int = geometry_is(ng)
let _c: Int = check(1 - ngi, "negative dim is not a geometry")
let nd: Int = geometry_dim(0)
let _c: Int = check(1 - nd, "geometry_dim of a non-geometry is 0, not a crash")
let nf: Int = geometry_free(0)
let _c: Int = check(1 - nf, "geometry_free of a non-geometry is a no-op")
println("components round-trip, and out-of-range is refused")
let g3: Geometry = geometry_new(3)
let s0: Int = geometry_set(g3, 0, 1.5)
let s1: Int = geometry_set(g3, 1, -2.5)
let _c: Int = check(s0, "set in range succeeds")
let oob: Int = geometry_set(g3, 3, 9.0)
let _c: Int = check(1 - oob, "set out of range is refused, not silently dropped")
let _c: Int = check(near(geometry_get(g3, 0), 1.5), "component 0 round-trips")
let _c: Int = check(near(geometry_get(g3, 1), -2.5), "component 1 round-trips (negative)")
let ff3: Int = geometry_free(g3)
println("hex is an EDGE adapter, and derives its own width")
// little-endian float32: 1.0 = 0000803f, 2.0 = 00000040
let gh: Geometry = geometry_from_f32le_hex("0000803f00000040")
let _c: Int = check(geometry_is(gh), "valid hex decodes to a Geometry")
let dh: Int = geometry_dim(gh)
let _c: Int = check(eq_int(dh, 2), "width DERIVED from input, never supplied")
let _c: Int = check(near(geometry_get(gh, 0), 1.0), "first component decoded")
let _c: Int = check(near(geometry_get(gh, 1), 2.0), "second component decoded")
let back: String = geometry_to_f32le_hex(gh)
let _c: Int = check(str_eq(back, "0000803f00000040"), "hex round-trips exactly")
let ffh: Int = geometry_free(gh)
println("malformed hex is refused")
let he: Geometry = geometry_from_f32le_hex("")
let hei: Int = geometry_is(he)
let _c: Int = check(1 - hei, "empty hex is not a geometry")
let hr: Geometry = geometry_from_f32le_hex("0000803f0000")
let hri: Int = geometry_is(hr)
let _c: Int = check(1 - hri, "length not a multiple of 8 is refused")
let hn: Geometry = geometry_from_f32le_hex("zzzzzzzz")
let hni: Int = geometry_is(hn)
let _c: Int = check(1 - hni, "non-hex characters are refused")
println("a realizer declared in El is a first-class realizer")
let reg: Int = realizer_register("tone", "tone_realizer")
let _c: Int = check(reg, "an El fn registers as a realizer BY NAME")
let _c: Int = check(realizer_has("tone"), "the modality now has an organ")
let gt: Geometry = transduce("aaa", "tone")
let _c: Int = check(geometry_is(gt), "transduce returns real geometry")
let dt: Int = geometry_dim(gt)
let _c: Int = check(eq_int(dt, 4), "the El realizer determined the width, not the runtime")
// str_len("aaa") == 3, so component 0 must be 3.0 proof the signal
// actually reached the El function rather than a stub answering for it.
let _c: Int = check(near(geometry_get(gt, 0), 3.0), "the signal REACHED the El realizer")
let fft: Int = geometry_free(gt)
println("distinct signals transduce to distinct geometry")
let g1: Geometry = transduce("aa", "tone")
let g2: Geometry = transduce("aaaaa", "tone")
let a1: Float = geometry_get(g1, 0)
let a2: Float = geometry_get(g2, 0)
// 5 - 2 = 3. If transduction were a stub these would be equal.
let _c: Int = check(near(a2 - a1, 3.0), "different signals produce different geometry")
let ff1: Int = geometry_free(g1)
let ff2: Int = geometry_free(g2)
println("the registry keys on modality")
let r2: Int = realizer_register("pulse", "pulse_realizer")
let _c: Int = check(r2, "a second modality registers independently")
let mt: Geometry = transduce("aaa", "tone")
let mp: Geometry = transduce("aaa", "pulse")
let mdt: Int = geometry_dim(mt)
let mdp: Int = geometry_dim(mp)
let _c: Int = check(eq_int(mdt, 4), "tone still routes to its own realizer")
let _c: Int = check(eq_int(mdp, 2), "pulse routes to a different realizer")
let ffm1: Int = geometry_free(mt)
let ffm2: Int = geometry_free(mp)
println("no organ is reported as no organ")
// A modality with no realizer must transduce to NOTHING. It must never
// fall back to embedding a description of the signal and calling that
// perception that silent substitution is the defect this all exists to end.
let eh: Int = realizer_has("echolocation")
let _c: Int = check(1 - eh, "unregistered modality has no organ")
let ge: Geometry = transduce("anything", "echolocation")
let gei: Int = geometry_is(ge)
let _c: Int = check(1 - gei, "no realizer means NO geometry, not fake geometry")
println("an unresolvable realizer name fails at WIRING time")
let bad: Int = realizer_register("ghost", "no_such_function_anywhere")
let _c: Int = check(1 - bad, "unresolvable realizer name is a registration failure")
let gh2: Int = realizer_has("ghost")
let _c: Int = check(1 - gh2, "and nothing gets registered")
println("a realizer returning non-geometry transduces nothing")
let rb: Int = realizer_register("bogus", "bogus_realizer")
let _c: Int = check(rb, "the symbol resolves, so registration succeeds")
let gb: Geometry = transduce("x", "bogus")
let gbi: Int = geometry_is(gb)
let _c: Int = check(1 - gbi, "contract enforced at the boundary: nothing handed back")
println("norm lets a caller check a realizer emitted signal, not zeros")
let gn: Geometry = geometry_new(2)
let _c: Int = check(near(geometry_norm(gn), 0.0), "a fresh geometry is zero — norm says so")
let n0: Int = geometry_set(gn, 0, 3.0)
let n1: Int = geometry_set(gn, 1, 4.0)
let _c: Int = check(near(geometry_norm(gn), 5.0), "3-4-5: norm is 5")
let ffn: Int = geometry_free(gn)
// Reaching here means nothing called exit(1) along the way.
println("")
println("all checks passed")
}
+818 -26
View File
File diff suppressed because it is too large Load Diff
+78
View File
@@ -586,6 +586,60 @@ void el_runtime_dharma_event_arrive(const char* event_type,
const char* payload,
const char* source);
/* ── Geometry: signal as a first-class El value ──────────────────────────────
*
* A Geometry is an opaque, magic-tagged heap value carried in an el_val_t
* the same discipline as List/Map. It holds a width and a float32 payload,
* and it is the medium a non-text modality enters in. Declared HERE, above
* the engram block, because transduction is a LANGUAGE concern: every El
* program touching any modality needs it, and the engram is merely one El
* program that happens to hold a graph. See el_runtime.c ("Geometry: signal
* as a first-class el value") for the full rationale.
*
* El-side type annotation is simply `Geometry` an opaque boxed pointer,
* exactly like Instant / Calendar / Rhythm. No codegen change is required.
*
* OWNERSHIP: a Geometry is owned by the El caller and released with
* geometry_free. node_attach_geometry COPIES, so a node and the caller's
* value have independent lifetimes. */
el_val_t geometry_new(el_val_t dim); /* zero-filled; 0 on failure */
el_val_t geometry_dim(el_val_t g); /* width, 0 if not a Geometry */
el_val_t geometry_is(el_val_t g); /* 1 if a live Geometry */
el_val_t geometry_get(el_val_t g, el_val_t i); /* Float component */
el_val_t geometry_set(el_val_t g, el_val_t i, el_val_t x); /* 1 ok / 0 out of range */
el_val_t geometry_norm(el_val_t g); /* Float L2 — lets a caller
* check a realizer emitted
* signal, not zeros */
el_val_t geometry_free(el_val_t g); /* 1 if freed, 0 if not a Geometry.
* Returns a value (not void) so it
* is safe in any El expression
* position without a codegen
* void-builtin table entry. */
/* Wire ADAPTERS — the only place an encoding appears, and only at the edge.
* `f32le hex` is little-endian float32, 8 hex chars per component: the
* encoding the perception vessel's /voice/embed already emits. The width is
* DERIVED from the input length, never supplied by a caller which is why
* there is no max-dim constant here to validate a claimed length against. */
el_val_t geometry_from_f32le_hex(el_val_t hex); /* 0 on empty/odd-length/non-hex */
el_val_t geometry_to_f32le_hex(el_val_t g); /* "" if not a Geometry */
/* ── Realizers + transduce ───────────────────────────────────────────────────
* A REALIZER maps one modality into geometry. Registration is by NAME, so a
* new modality never requires a runtime patch: every El `fn name(...)`
* compiles to a global C symbol with that exact name, and the registry
* resolves it with dlsym against the running binary the same mechanism
* http_set_handler already relies on.
*
* fn tone_realizer(signal: String) -> Geometry { ... }
* realizer_register("tone", "tone_realizer")
* let g: Geometry = transduce(sample, "tone")
*/
el_val_t realizer_register(el_val_t modality, el_val_t fn_name); /* 1 ok / 0 unresolved */
el_val_t realizer_has(el_val_t modality); /* 1 if a realizer is registered */
el_val_t transduce(el_val_t signal, el_val_t modality); /* Geometry, or 0 if no organ */
/* ── Engram local graph primitives ───────────────────────────────────────────
* Operate on the CGI's local Engram knowledge graph.
* `engram_activate` queries the local graph only; `dharma_activate` is
@@ -613,6 +667,23 @@ void engram_strengthen(el_val_t node_id);
void engram_forget(el_val_t node_id);
el_val_t engram_prune_telemetry(el_val_t older_than_ms);
el_val_t engram_node_count(void);
/* Attach a Geometry to an existing node, and read the attached width back.
* Named for the operation, not the store: a node acquires geometry. This is
* the geometry-valued ingest path nothing about it is hex, and nothing
* about it assumes the caller's vector matches the canonical text-embedding
* width. node_geometry_dim exists so an attach is VERIFIED by reading it
* back rather than by trusting a success return. */
el_val_t node_attach_geometry(el_val_t node_id, el_val_t g); /* 1 ok / 0 otherwise */
el_val_t node_geometry_dim(el_val_t node_id); /* width, 0 if none */
/* DEPRECATED (shipped in #141, superseded 2026-08-16). Equivalent to
* geometry_from_f32le_hex + node_attach_geometry, and now implemented as
* exactly that. Kept only so anything built against the #141 runtime keeps
* linking; `dim` is accepted but treated as an assertion about the vector's
* width rather than as its source. New code should not call this a hex
* string is a wire encoding, not a way to move geometry between two pieces
* of El. Returns 1 on success, 0 otherwise. */
el_val_t engram_node_set_emb(el_val_t id, el_val_t hex, el_val_t dim);
el_val_t engram_search(el_val_t query, el_val_t limit);
el_val_t engram_scan_nodes(el_val_t limit, el_val_t offset);
void engram_connect(el_val_t from_id, el_val_t to_id, el_val_t weight, el_val_t relation);
@@ -1017,6 +1088,13 @@ el_val_t stdout_to_file(el_val_t path);
el_val_t stdout_restore(void);
el_val_t el_mem_check(void);
/* Allocation accounting — the deterministic signal behind complexity gating.
* Gate on counts/bytes; peak RSS is context only. */
el_val_t el_alloc_count(void);
el_val_t el_alloc_bytes(void);
el_val_t el_peak_rss(void);
el_val_t el_black_box(el_val_t v);
/* Semantic retrieval surface. NOT interchangeable with engram_search_json,
* which is lexical by design see the note at the definition. */
el_val_t engram_recall_json(el_val_t query, el_val_t limit);
+15
View File
@@ -148,10 +148,17 @@ static void seed_request_start(void) {
_seed_arena_on = 1;
}
/* Defined in el_runtime.c. The string-length cache there keys on pointer +
* generation; anything that frees or mutates a runtime string must bump the
* generation or a reused address could return a stale length. Weak so this
* file still links on its own. */
__attribute__((weak)) void el_str_cache_flush(void);
static void seed_request_end(void) {
_seed_arena_on = 0;
for (size_t i = 0; i < _seed_arena.count; i++) free(_seed_arena.ptrs[i]);
_seed_arena.count = 0;
if (el_str_cache_flush) el_str_cache_flush(); /* freed pointers may be reused */
}
/* el_request_start / el_request_end — formerly defined in el_runtime.c.
@@ -213,6 +220,7 @@ el_val_t __str_set_char(el_val_t s, el_val_t i, el_val_t c) {
int64_t idx = (int64_t)i;
if (idx < 0 || idx >= len) return s;
p[idx] = (char)(unsigned char)(int64_t)c;
if (el_str_cache_flush) el_str_cache_flush(); /* in-place write can move the NUL */
return s;
}
@@ -1379,6 +1387,13 @@ el_val_t __engram_edges_json(el_val_t limit, el_val_t offset) {
el_val_t engram_pool_stats_json(void);
el_val_t __engram_pool_stats_json(void) { return engram_pool_stats_json(); }
el_val_t el_alloc_count(void);
el_val_t el_alloc_bytes(void);
el_val_t el_peak_rss(void);
el_val_t __el_alloc_count(void) { return el_alloc_count(); }
el_val_t __el_alloc_bytes(void) { return el_alloc_bytes(); }
el_val_t __el_peak_rss(void) { return el_peak_rss(); }
el_val_t __engram_scan_nodes_by_type_json(el_val_t node_type, el_val_t limit, el_val_t offset) {
return engram_scan_nodes_by_type_json(node_type, limit, offset);
}
+256
View File
@@ -0,0 +1,256 @@
// runtime/elbench.el growth-curve classifier and complexity gate.
//
// Given a geometric sweep of input sizes and the measurements taken at each,
// classify the growth curve and decide whether it violates a declared bound.
//
// Why this exists
//
// Constant-factor regressions are annoying. Complexity regressions are outages.
// An O(n) lookup inside an O(n) loop is invisible at n=100 in a unit test and
// catastrophic at n=100000 in production. el #132 was exactly that: a strlen()
// inside a per-character accessor, quadratic, shipped for months.
//
// THREE signals, not one
//
// The gate fits time AND allocation-count AND allocation-bytes, and fails if
// ANY of them exceeds its declared curve. This is not belt-and-braces; each
// signal is blind to a real defect class the others catch:
//
// * A copy-on-write accumulator rebuilding its buffer allocates ONCE per
// iteration count is exactly linear while bytes go quadratic.
// Count alone passes it.
// * el #132's strlen-per-character is pure CPU and allocates NOTHING.
// Both allocation signals read FLAT. Only time catches it.
//
// The deterministic signals (count, bytes) are preferable where they apply:
// no statistics, correct on the first run, machine-independent. They are
// simply not sufficient.
//
// SCOPE LIMIT read this before trusting a flat curve
//
// The allocation counters track EL-LEVEL allocation only: strings, ElList and
// ElMap bodies, their backing arrays, copy-on-write clones, and the realloc
// growth path. malloc inside engram_*.c and inside libcurl is NOT counted.
//
// A flat allocation curve over a workload dominated by engram or HTTP calls is
// therefore NOT evidence of anything. It means "no El-level allocation growth",
// not "no allocation growth". Gate El-level complexity with this; do not read
// third-party memory behaviour into it.
//
// Classification method
//
// Sizes must form a geometric sweep (each n double the last). On such a sweep
// the ratio between consecutive measurements IS the growth exponent, directly:
//
// O(1) -> 1.0 O(log n) -> ~1.1 O(n) -> 2.0
// O(n log n) -> ~2.2 O(n^2) -> 4.0 O(n^3) -> 8.0
//
// DEVIATION FROM DESIGN.md 6.2, stated plainly: that section specified Google
// Benchmark's one-parameter least-squares fit over candidate curves. This uses
// consecutive ratios instead. The sweep is mandated geometric either way, and
// on a geometric sweep ratios are directly interpretable and need no floating
// point. The cost is weaker separation between O(n) and O(n log n), which is
// reported honestly as an ambiguous band rather than guessed at. Least-squares
// remains the better answer if that band ever needs to be resolved.
//
// All arithmetic is fixed-point, scaled by 1000 ("milli-ratio"), so a ratio of
// 2.0 is 2000. El values are int64; this avoids float-in-list handling.
// Curve identifiers. Ordered by growth the ordering IS the comparison used
// by the gate, so an index comparison decides "worse than declared".
// 0 = O(1) 1 = O(log n) 2 = O(n) 3 = O(n log n) 4 = O(n^2) 5 = O(n^3)
fn elb_curve_name(c: Int) -> String {
if c == 0 { return "O(1)" }
if c == 1 { return "O(log n)" }
if c == 2 { return "O(n)" }
if c == 3 { return "O(n log n)" }
if c == 4 { return "O(n^2)" }
if c == 5 { return "O(n^3)" }
return "O(?)"
}
fn elb_curve_from_name(s: String) -> Int {
if str_eq(s, "O(1)") { return 0 }
if str_eq(s, "O(log n)") { return 1 }
if str_eq(s, "O(n)") { return 2 }
if str_eq(s, "O(n log n)") { return 3 }
if str_eq(s, "O(n^2)") { return 4 }
if str_eq(s, "O(n^3)") { return 5 }
return -1
}
// elb_classify_ratio map a milli-ratio-per-doubling onto a curve.
//
// Bands are deliberately wide at the top (a quadratic measured at 3.4x is
// still a quadratic) and deliberately overlap-averse at the bottom, where a
// misclassification between O(1) and O(log n) matters least.
fn elb_classify_ratio(milli: Int) -> Int {
if milli < 1300 { return 0 }
if milli < 1700 { return 1 }
if milli < 2400 { return 2 }
if milli < 3200 { return 3 }
if milli < 6000 { return 4 }
return 5
}
// elb_ratio milli-ratio between two consecutive measurements.
// Returns -1 when the earlier measurement is zero (ratio undefined).
fn elb_ratio(prev: Int, cur: Int) -> Int {
if prev <= 0 { return -1 }
return (cur * 1000) / prev
}
// The measurement floor
//
// A benchmark whose largest measurement is at or near zero has not been
// measured. Reporting it as O(1) would be a confident answer with nothing
// behind it the same failure as a test that never ran reporting pass, and
// exactly what happened when clang closed a nested loop to a multiply and the
// harness read 0 microseconds at every n.
//
// So: REFUSE. Never classify below the floor.
fn elb_below_floor(vals: [Int], floor: Int) -> Bool {
let n: Int = native_list_len(vals)
let i: Int = 0
let mx: Int = 0
while i < n {
let v: Int = native_list_get(vals, i)
if v > mx { let mx = v }
let i = i + 1
}
if mx < floor { return true }
return false
}
// elb_implausibly_flat a measurement that does not move across a sweep whose
// input grew by 8x or more is not a flat curve, it is a broken measurement.
// Genuine O(1) work still shows noise; a hard-flat series means the work was
// optimised away, the timer has insufficient resolution, or the benchmark body
// never executed.
fn elb_implausibly_flat(vals: [Int]) -> Bool {
let n: Int = native_list_len(vals)
if n < 3 { return false }
let first: Int = native_list_get(vals, 0)
let last: Int = native_list_get(vals, n - 1)
if first == 0 {
if last == 0 { return true }
return false
}
let r: Int = (last * 1000) / first
if r < 1100 { return true }
return false
}
// elb_spread_ok do the consecutive ratios agree with each other?
//
// This is the ratio-method analogue of a normalised-RMS threshold. If the
// doublings disagree wildly the data is noise, a cache cliff, or a phase
// change, and the honest report is INDETERMINATE rather than a classification.
// Applies to the ASYMPTOTIC TAIL only the last three ratios.
//
// The small-n end of any sweep is dominated by fixed overhead, cold caches and
// branch predictors that have not warmed. Measured on a genuinely linear
// character scan, the ratios ran 3.37, 2.92, 1.76, 1.65: the head looks
// quadratic, the tail is the truth. Checking spread across the whole sweep
// therefore rejects correct data. A complexity bound is an asymptotic claim, so
// it is judged on the asymptotic region the same reason a benchmark harness
// discards warmup rather than averaging it in.
fn elb_spread_ok(ratios: [Int]) -> Bool {
let total: Int = native_list_len(ratios)
if total < 2 { return true }
let start: Int = total - 3
if start < 0 { let start = 0 }
let n: Int = total
let lo: Int = 999999
let hi: Int = 0
let i: Int = start
while i < n {
let r: Int = native_list_get(ratios, i)
if r >= 0 {
if r < lo { let lo = r }
if r > hi { let hi = r }
}
let i = i + 1
}
if lo <= 0 { return false }
// Reject when the widest ratio is more than 2.2x the narrowest. That is
// enough slack for real timing noise and tight enough to separate a clean
// 2.0 series from a clean 4.0 series.
if (hi * 1000) / lo > 2200 { return false }
return true
}
// elb_ratios consecutive milli-ratios across the sweep.
fn elb_ratios(vals: [Int]) -> [Int] {
let out: [Int] = native_list_empty()
let n: Int = native_list_len(vals)
let i: Int = 1
while i < n {
let out = native_list_append(out,
elb_ratio(native_list_get(vals, i - 1), native_list_get(vals, i)))
let i = i + 1
}
return out
}
// elb_mean_tail_ratio mean of the LAST TWO ratios.
//
// The tail is used deliberately: asymptotic behaviour is what a complexity
// bound claims, and the small-n end of any sweep is dominated by fixed
// overhead. This is the same reason a benchmark harness discards warmup.
fn elb_mean_tail_ratio(ratios: [Int]) -> Int {
let n: Int = native_list_len(ratios)
if n == 0 { return -1 }
if n == 1 { return native_list_get(ratios, 0) }
let a: Int = native_list_get(ratios, n - 1)
let b: Int = native_list_get(ratios, n - 2)
if a < 0 { return b }
if b < 0 { return a }
return (a + b) / 2
}
// Verdicts
//
// 0 PASS measured curve is at or below the declared bound
// 1 FAIL measured curve is strictly worse than declared
// 2 INDETERMINATE ratios disagree; data is noise or a phase change
// 3 REFUSED below the measurement floor, or implausibly flat
// 4 BETTER measured strictly better than declared (warn, not fail)
fn elb_verdict_name(v: Int) -> String {
if v == 0 { return "PASS" }
if v == 1 { return "FAIL" }
if v == 2 { return "INDETERMINATE" }
if v == 3 { return "REFUSED" }
if v == 4 { return "BETTER" }
return "?"
}
// elb_gate classify one signal against its declared bound.
//
// vals measurements, one per sweep point, in sweep order
// expect declared curve index (see elb_curve_name)
// floor minimum largest-measurement below which we refuse to classify
fn elb_gate(vals: [Int], expect: Int, floor: Int) -> Int {
if elb_below_floor(vals, floor) { return 3 }
if elb_implausibly_flat(vals) { return 3 }
let ratios: [Int] = elb_ratios(vals)
if !elb_spread_ok(ratios) { return 2 }
let m: Int = elb_mean_tail_ratio(ratios)
if m < 0 { return 2 }
let got: Int = elb_classify_ratio(m)
if got > expect { return 1 }
if got < expect { return 4 }
return 0
}
// elb_measured_curve the classified curve for a signal, or -1 if unclassifiable.
fn elb_measured_curve(vals: [Int], floor: Int) -> Int {
if elb_below_floor(vals, floor) { return -1 }
if elb_implausibly_flat(vals) { return -1 }
let ratios: [Int] = elb_ratios(vals)
let m: Int = elb_mean_tail_ratio(ratios)
if m < 0 { return -1 }
return elb_classify_ratio(m)
}
+194
View File
@@ -0,0 +1,194 @@
// runtime/eltest.el El test framework runner (Phase 1).
//
// This is the RUNNER. It is written in El and consumes a registry that the
// compiler generates into the same translation unit when invoked as
// `elc --test`. Nothing here discovers tests; discovery already happened at
// compile time, which is what makes `--list` and filtering possible later.
//
// Architecture
//
// The compiler lowers each `test "name" { ... }` block into a static C
// function and emits a static table of (name, fn) pairs plus a small set of
// index-based accessors. El has no function pointers, so the runner never
// sees one it works entirely in indices:
//
// __el_reg_count() -> Int number of registered tests
// __el_reg_name(i) -> String test name at index i
// __el_reg_invoke(i) -> Int run test i, return its failure count
// __el_reg_last_ns() -> Int wall-clock ns of the last invoke
// __el_reg_msg() -> String first failure message of the last invoke
// __el_reg_asserts() -> Int assertions executed in the last invoke
// __el_opt_json() -> Int 1 if --json was passed
//
// Timing is taken in the generated C, immediately around the call, so no El
// call overhead lands inside the measurement.
//
// Output
//
// Structured events are the source of truth. The human renderer is written
// FROM the same fields the NDJSON renderer emits never the reverse. Parsing
// human output back into structure is the one clear architectural mistake in
// Go's test tooling and we do not repeat it.
//
// Every result carries a duration. Always. A framework that cannot report how
// long its tests took cannot surface a performance regression, and a
// regression nobody can see is one nobody fixes.
// Small helpers (no imports this file must stay self-contained)
// _elt_json_escape minimal JSON string escaping for the NDJSON renderer.
fn _elt_json_escape(s: String) -> String {
let out: String = ""
let n: Int = str_len(s)
let i: Int = 0
while i < n {
let ch: String = str_slice(s, i, i + 1)
if str_eq(ch, "\"") {
let out = out + "\\\""
} else {
if str_eq(ch, "\\") {
let out = out + "\\\\"
} else {
if str_eq(ch, "\n") {
let out = out + "\\n"
} else {
if str_eq(ch, "\t") {
let out = out + "\\t"
} else {
if str_eq(ch, "\r") {
let out = out + "\\r"
} else {
let out = out + ch
}
}
}
}
}
let i = i + 1
}
return out
}
// _elt_pad3 left-pad an integer to three digits (for the ms.fraction form).
fn _elt_pad3(v: Int) -> String {
if v < 10 { return "00" + int_to_str(v) }
if v < 100 { return "0" + int_to_str(v) }
return int_to_str(v)
}
// _elt_ms render a nanosecond duration as "M.mmm" milliseconds.
//
// Deliberately avoids the modulo operator: the remainder is derived by
// subtraction so this stays portable across El backends.
fn _elt_ms(ns: Int) -> String {
let total_us: Int = ns / 1000
let ms_whole: Int = total_us / 1000
let us_rem: Int = total_us - (ms_whole * 1000)
return int_to_str(ms_whole) + "." + _elt_pad3(us_rem)
}
// _elt_secs render a nanosecond duration as fractional seconds, for the
// NDJSON `elapsed` field. JUnit XML and test2json both use seconds-as-decimal.
fn _elt_secs(ns: Int) -> String {
let total_ms: Int = ns / 1000000
let s_whole: Int = total_ms / 1000
let ms_rem: Int = total_ms - (s_whole * 1000)
return int_to_str(s_whole) + "." + _elt_pad3(ms_rem)
}
// Event emission
//
// One function per event shape. Both renderers read the same fields; the
// human renderer is a projection of the event, not a separate code path.
fn _elt_emit_run(json_mode: Bool, name: String) {
if json_mode {
println("{\"action\":\"run\",\"test\":\"" + _elt_json_escape(name) + "\"}")
}
}
fn _elt_emit_result(json_mode: Bool, name: String, fails: Int, ns: Int, asserts: Int, msg: String) {
if json_mode {
let action: String = "pass"
if fails > 0 { let action = "fail" }
let line: String = "{\"action\":\"" + action + "\""
let line = line + ",\"test\":\"" + _elt_json_escape(name) + "\""
let line = line + ",\"elapsed\":" + _elt_secs(ns)
let line = line + ",\"assertions\":" + int_to_str(asserts)
if fails > 0 {
let line = line + ",\"failures\":" + int_to_str(fails)
let line = line + ",\"message\":\"" + _elt_json_escape(msg) + "\""
}
let line = line + "}"
println(line)
return
}
// Human renderer duration is never optional.
if fails > 0 {
println("FAIL " + name + " (" + _elt_ms(ns) + "ms)")
println(" " + msg)
return
}
println("ok " + name + " (" + _elt_ms(ns) + "ms)")
return
}
fn _elt_emit_summary(json_mode: Bool, total: Int, failed: Int, ns: Int, asserts: Int) {
let passed: Int = total - failed
if json_mode {
let line: String = "{\"action\":\"summary\""
let line = line + ",\"tests\":" + int_to_str(total)
let line = line + ",\"passed\":" + int_to_str(passed)
let line = line + ",\"failed\":" + int_to_str(failed)
let line = line + ",\"assertions\":" + int_to_str(asserts)
let line = line + ",\"elapsed\":" + _elt_secs(ns)
let line = line + "}"
println(line)
return
}
println("")
println(int_to_str(total) + " tests, " + int_to_str(passed) + " passed, "
+ int_to_str(failed) + " failed, " + int_to_str(asserts) + " assertions in "
+ _elt_ms(ns) + "ms")
return
}
// The runner
// el_test_main drive the compile-time registry.
//
// Called from the generated main(). Returns the number of FAILING TESTS, which
// becomes the process exit code. Note that this counts tests, not assertions:
// a test is the unit of result. The old harness counted assertions globally and
// therefore could not say which test failed, how long any of them took, or
// whether a test had run at all.
fn el_test_main() -> Int {
let json_mode: Bool = false
if __el_opt_json() == 1 { let json_mode = true }
let n: Int = __el_reg_count()
let i: Int = 0
let failed: Int = 0
let total_ns: Int = 0
let total_asserts: Int = 0
while i < n {
let name: String = __el_reg_name(i)
_elt_emit_run(json_mode, name)
let fails: Int = __el_reg_invoke(i)
let ns: Int = __el_reg_last_ns()
let asserts: Int = __el_reg_asserts()
let msg: String = __el_reg_msg()
let total_ns = total_ns + ns
let total_asserts = total_asserts + asserts
if fails > 0 { let failed = failed + 1 }
_elt_emit_result(json_mode, name, fails, ns, asserts, msg)
let i = i + 1
}
_elt_emit_summary(json_mode, n, failed, total_ns, total_asserts)
return failed
}
+2 -2
View File
@@ -222,7 +222,7 @@ static double eff_w(double weight, double hebb){
}
GeoDescriptor* engram_geometry_descriptor(
EngramPagedStore* store, VIndex* vindex,
EngramPagedStore* store, const VIndex* vindex,
char** vids, int n_vids,
const char* const* seed_ids, size_t n_seeds,
const GeoParams* params,
@@ -1401,7 +1401,7 @@ static double geo_weighted_degree(EngramPagedStore* st, const char* id, double e
return deg;
}
int engram_geo_reify_store(EngramPagedStore* store, VIndex* vindex,
int engram_geo_reify_store(EngramPagedStore* store, const VIndex* vindex,
char** vids, int n_vids,
const GeoReifyParams* params){
if(!store) return -1;
+2 -2
View File
@@ -150,7 +150,7 @@ void engram_geo_mean_free(GeoMeanCache* c);
* Returns a malloc'd descriptor (free with engram_geo_free), or NULL on error
* (no seeds resolvable, OOM). */
GeoDescriptor* engram_geometry_descriptor(
EngramPagedStore* store, VIndex* vindex,
EngramPagedStore* store, const VIndex* vindex,
char** vids, int n_vids,
const char* const* seed_ids, size_t n_seeds,
const GeoParams* params,
@@ -375,7 +375,7 @@ void engram_geo_reify_default_params(GeoReifyParams* p);
* neighborhood (+ member edges), superseding any prior same-hub record with
* provenance. Read-then-write over `store`. Returns #neighborhoods persisted, or <0.
* Skips existing Neighborhood/GeoMeanFrame nodes when detecting (idempotent re-reify). */
int engram_geo_reify_store(EngramPagedStore* store, VIndex* vindex,
int engram_geo_reify_store(EngramPagedStore* store, const VIndex* vindex,
char** vids, int n_vids,
const GeoReifyParams* params);
+68 -34
View File
@@ -74,11 +74,6 @@ struct VIndex {
int entry; /* entry-point element index, -1 if empty */
int max_level; /* current top layer */
/* scratch: version-stamped visited set (O(1) reset). */
uint32_t* visited;
uint32_t visit_epoch;
size_t visited_cap;
};
/* ── small helpers ────────────────────────────────────────────────────────── */
@@ -166,37 +161,63 @@ static Pair heap_pop(Heap* h, int is_max){
return top;
}
/* ── visited set ──────────────────────────────────────────────────────────── */
static int visited_ensure(VIndex* ix){
if (ix->visited_cap >= ix->cap && ix->visited) return 0;
size_t nc = ix->cap ? ix->cap : 16;
uint32_t* nv = (uint32_t*)realloc(ix->visited, nc*sizeof(uint32_t));
if (!nv) return -1;
if (nc > ix->visited_cap) memset(nv + ix->visited_cap, 0, (nc-ix->visited_cap)*sizeof(uint32_t));
ix->visited = nv; ix->visited_cap = nc;
/* ── visited set — owned by the CALL FRAME, never by the index ──────────────
* This buffer is per-TRAVERSAL scratch. It used to live in struct VIndex as an
* allocation optimisation, which made every traversal a write to shared state:
* two concurrent vindex_search calls stamped each other's epoch and then walked
* each other's marks, so even two pure READS corrupted the traversal (measured
* 2026-08-16: TSan data race at visited_reset, reached from vindex_search on one
* thread and vindex_insert on another; downstream SIGSEGV dereferencing a bogus
* element index).
*
* It is not an ownership problem and it does not want a lock or a capability
* it was simply misfiled. A pure function's scratch belongs to the call. Moving
* it here is what lets vindex_search take a `const VIndex*`, which is in turn
* what makes "search does not mutate the index" a COMPILE-TIME property instead
* of a review comment.
*
* Cost: one calloc/free of cap*4 bytes per traversal (~55 KB at the live store's
* 13,820 elements), against thousands of dim-768 dot products in the same call.
* Deliberately NOT __thread: http_worker is a thread per connection, so a
* thread-local buffer would retain ~55 KB per connection for the process life. */
typedef struct {
uint32_t* mark; /* per-element epoch stamp */
uint32_t epoch; /* current traversal's stamp; 0 == "no traversal yet" */
size_t cap;
} VVisit;
/* calloc leaves every stamp 0 and epoch 0; the first visit_reset moves to
* epoch 1, so no element reads as visited before it is marked. */
static int visit_init(VVisit* v, size_t cap){
size_t nc = cap ? cap : 16;
v->mark = (uint32_t*)calloc(nc, sizeof(uint32_t));
if (!v->mark) return -1;
v->cap = nc; v->epoch = 0;
return 0;
}
static inline void visited_reset(VIndex* ix){
if (++ix->visit_epoch == 0){ /* wrapped: clear all */
memset(ix->visited, 0, ix->visited_cap*sizeof(uint32_t));
ix->visit_epoch = 1;
static void visit_dispose(VVisit* v){ free(v->mark); v->mark = NULL; v->cap = 0; }
static inline void visit_reset(VVisit* v){
if (++v->epoch == 0){ /* wrapped: clear all */
memset(v->mark, 0, v->cap*sizeof(uint32_t));
v->epoch = 1;
}
}
static inline int is_visited(VIndex* ix, int e){ return ix->visited[e]==ix->visit_epoch; }
static inline void mark_visited(VIndex* ix, int e){ ix->visited[e]=ix->visit_epoch; }
static inline int is_visited(const VVisit* v, int e){ return v->mark[e]==v->epoch; }
static inline void mark_visited(VVisit* v, int e){ v->mark[e]=v->epoch; }
/* ── search one layer (Algorithm 2): best-first, ef-bounded ───────────────── */
/* Returns results as an unsorted Heap (max-heap on distance, size<=ef). Caller
* owns res->a. `q` is a normalised query. */
static int search_layer(VIndex* ix, const float* q, const int* eps, int neps,
static int search_layer(const VIndex* ix, VVisit* vis, const float* q,
const int* eps, int neps,
int ef, int layer, Heap* res /*out, max-heap*/){
Heap cand = {0,0,0}; /* min-heap: nearest to expand */
res->a=NULL; res->n=0; res->cap=0;
visited_reset(ix);
visit_reset(vis);
for (int i=0;i<neps;i++){
int e = eps[i];
if (is_visited(ix,e)) continue;
mark_visited(ix,e);
if (is_visited(vis,e)) continue;
mark_visited(vis,e);
float d = vdist(ix, q, ix->elems[e].vec);
Pair p = { d, e };
if (heap_push(&cand,p,0) || heap_push(res,p,1)){ free(cand.a); return -1; }
@@ -212,8 +233,8 @@ static int search_layer(VIndex* ix, const float* q, const int* eps, int neps,
NeighList* nl = &ce->links[layer];
for (int i=0;i<nl->count;i++){
int e = nl->ids[i];
if (is_visited(ix,e)) continue;
mark_visited(ix,e);
if (is_visited(vis,e)) continue;
mark_visited(vis,e);
float d = vdist(ix, q, ix->elems[e].vec);
if (res->n < ef || d < res->a[0].d){
Pair p = { d, e };
@@ -232,7 +253,7 @@ static int search_layer(VIndex* ix, const float* q, const int* eps, int neps,
* Keep c only if it is nearer to q than to every already-chosen neighbour;
* backfill from the pruned set (nearest first) to reach M for connectivity.
* Writes chosen element indices into out[], returns the count. */
static int select_neighbors(VIndex* ix, const float* q, Pair* W, int nW, int M, int* out){
static int select_neighbors(const VIndex* ix, const float* q, Pair* W, int nW, int M, int* out){
(void)q; /* q's distances are precomputed in W[].d; kept for call-site clarity */
/* sort W ascending by (dist,elem) — deterministic. */
for (int i=1;i<nW;i++){ /* insertion sort (nW small) */
@@ -281,7 +302,7 @@ static int elems_reserve(VIndex* ix){
Elem* ne = (Elem*)realloc(ix->elems, nc*sizeof(Elem));
if (!ne) return -1;
ix->elems = ne; ix->cap = nc;
return visited_ensure(ix);
return 0;
}
int vindex_insert(VIndex* ix, uint64_t node_id, const float* vec){
@@ -307,13 +328,19 @@ int vindex_insert(VIndex* ix, uint64_t node_id, const float* vec){
return 0;
}
/* This call frame owns its traversal scratch for the whole insert. ix->cap
* already covers `cur` (elems_reserve ran above), so every reachable element
* index is in range. */
VVisit vis;
if (visit_init(&vis, ix->cap)) return -1;
int ep = ix->entry;
int L = ix->max_level;
/* greedy descent through layers above `level` to refine the entry point. */
for (int lc = L; lc > level; lc--){
Heap r = {0,0,0};
int eps1[1] = { ep };
if (search_layer(ix, el->vec, eps1, 1, 1, lc, &r)){ return -1; }
if (search_layer(ix, &vis, el->vec, eps1, 1, 1, lc, &r)){ visit_dispose(&vis); return -1; }
if (r.n){ ep = r.a[0].e; float bd=r.a[0].d;
for (int i=1;i<r.n;i++) if (r.a[i].d<bd){bd=r.a[i].d; ep=r.a[i].e;} }
free(r.a);
@@ -329,7 +356,7 @@ int vindex_insert(VIndex* ix, uint64_t node_id, const float* vec){
for (int lc = start; lc >= 0; lc--){
int Mmax = (lc==0) ? ix->M0 : ix->M;
Heap W = {0,0,0};
if (search_layer(ix, el->vec, eps, neps, ix->ef_construction, lc, &W)){ rc=-1; break; }
if (search_layer(ix, &vis, el->vec, eps, neps, ix->ef_construction, lc, &W)){ rc=-1; break; }
int* chosen = (int*)malloc((size_t)(W.n?W.n:1)*sizeof(int));
if (!chosen){ free(W.a); rc=-1; break; }
int nc = select_neighbors(ix, el->vec, W.a, W.n, Mmax, chosen);
@@ -357,13 +384,17 @@ int vindex_insert(VIndex* ix, uint64_t node_id, const float* vec){
}
done:
free(eps_owned);
visit_dispose(&vis);
if (rc) return -1;
if (level > ix->max_level){ ix->max_level = level; ix->entry = cur; }
return 0;
}
/* ── search ───────────────────────────────────────────────────────────────── */
int vindex_search(VIndex* ix, const float* query, int k, int ef_search,
/* `ix` is const: search is pure with respect to the index. That is enforced by
* the compiler, not by convention it is the whole point of moving the visited
* set into the frame below. */
int vindex_search(const VIndex* ix, const float* query, int k, int ef_search,
uint64_t* node_id_out, float* dist_out){
if (!ix || !query || k <= 0) return -1;
if (ix->entry < 0) return 0;
@@ -373,11 +404,15 @@ int vindex_search(VIndex* ix, const float* query, int k, int ef_search,
float* q = vec_normalise_copy(query, ix->dim);
if (!q) return -1;
/* This call frame owns its traversal scratch. */
VVisit vis;
if (visit_init(&vis, ix->cap)){ free(q); return -1; }
int ep = ix->entry;
for (int lc = ix->max_level; lc > 0; lc--){
Heap r = {0,0,0};
int eps[1] = { ep };
if (search_layer(ix, q, eps, 1, 1, lc, &r)){ free(q); return -1; }
if (search_layer(ix, &vis, q, eps, 1, 1, lc, &r)){ visit_dispose(&vis); free(q); return -1; }
if (r.n){ int b=r.a[0].e; float bd=r.a[0].d;
for (int i=1;i<r.n;i++) if (r.a[i].d<bd){bd=r.a[i].d; b=r.a[i].e;}
ep = b; }
@@ -385,7 +420,8 @@ int vindex_search(VIndex* ix, const float* query, int k, int ef_search,
}
Heap res = {0,0,0};
int eps[1] = { ep };
if (search_layer(ix, q, eps, 1, ef_search, 0, &res)){ free(res.a); free(q); return -1; }
if (search_layer(ix, &vis, q, eps, 1, ef_search, 0, &res)){ visit_dispose(&vis); free(res.a); free(q); return -1; }
visit_dispose(&vis);
free(q);
/* res is a max-heap of size<=ef; pop into ascending order, keep nearest k. */
@@ -419,7 +455,6 @@ VIndex* vindex_create(int dim, int M, int ef_construction){
ix->mL = 1.0 / log((double)M > 1.0 ? (double)M : 2.0);
ix->entry = -1;
ix->max_level = 0;
ix->visit_epoch = 0;
return ix;
}
@@ -432,7 +467,6 @@ void vindex_free(VIndex* ix){
free(e->vec);
}
free(ix->elems);
free(ix->visited);
free(ix);
}
+9 -2
View File
@@ -53,8 +53,15 @@ int vindex_insert(VIndex* idx, uint64_t node_id, const float* vec);
* first (ascending distance). Either out array may be NULL to skip it.
* ef_search search-time candidate width; larger == higher recall, slower.
* Pass <=0 for VINDEX_DEFAULT_EF_SEARCH. Internally clamped to >=k.
* Returns the number of results written, or <0 on error. */
int vindex_search(VIndex* idx, const float* query, int k, int ef_search,
* Returns the number of results written, or <0 on error.
*
* `idx` is const BY CONTRACT AND BY TYPE: search does not mutate the index. The
* traversal's visited set is owned by the call frame, so N threads may search one
* index concurrently. Concurrent search against a vindex_insert on the same index
* is still unsafe insert rewires existing elements' neighbour lists and reallocs
* elems[] so the index's owner must not extend a published index under a live
* reader. See eg_vindex_view / eg_vindex_maintain in el_runtime.c. */
int vindex_search(const VIndex* idx, const float* query, int k, int ef_search,
uint64_t* node_id_out, float* dist_out);
/* Number of vectors currently indexed. */
+180
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@@ -0,0 +1,180 @@
# El Runtime — Ownership and Capability ABI
**Status:** §0–§2 verified. §3 re-derived and **built** for the vector index (2026-08-16); not yet applied to the resident RAM graph.
**Date:** 2026-08-16
**Scope:** `lang/runtime/` — every El program (soul, engram, cgi-studio vessels) inherits this by rebuild. Nothing in this document is a change to any El *program*.
**Note on §1's line numbers:** they were read against a checkout that has since shifted by ~135 lines. Verified positions as of `a67452f` are in §2a.
---
## 0. The residual
> **Builtins own memory and reach process state directly.**
That is the residual — the generator. Everything below labelled a "residue" is a deposit left by it. The distinction matters because we have spent significant effort removing deposits, and deposits regenerate.
A residue is fixed. A residual is eliminated. Fixing residues while the residual stands produces exactly the pattern observed on 2026-08-15/16: a run of individually-correct patches, each verified, followed by a new defect of the same shape in a different file.
---
## 1. The residues, measured
Each of these is a distinct merged or proposed fix. Each addresses one deposit. None addresses the residual.
| residue | location | fix that was applied or proposed |
|---|---|---|
| `state_get` leaked its return value per call — 15 MB over 200k calls | builtin | el #140 (merged) |
| VIndex freed under a concurrent reader | `el_runtime.c:9424` | `fb32d15` guard (merged 08:46:43) |
| `_eg_vindex_seen` realloc'd on a read path | `el_runtime.c:9412` | same guard |
| `vindex_insert` on a read path | `el_runtime.c:9434`, `9450` | same guard |
| shared `visited` / epoch scratch stomped by concurrent searches | `engram_vindex.c:7981`, `169186`, `195` | proposed: move to per-search frame |
| nine append sites, none indexing → lazily-embedded nodes invisible | `el_runtime.c:7806, 7988, 8148, 8224, 11526, 11731, 12050, 15295, 15312` | "embed-gap #20", patched by making the *read* path catch up (`9439` comment) |
**Measured:** all file/line references above, read 2026-08-16. Crash frames `engram_activate → eg_vindex_sync → vindex_insert → _realloc → _xzm_xzone_malloc_freelist_outlined` are accounted for by rows 24.
**Inferred, not yet verified:** that the nine append sites do not share a single commit point. This needs one pass before Change C is sized.
---
## 2. Why these are one defect
`eg_vindex_sync` (`el_runtime.c:9419`) has exactly three callers, and **all three are reads**:
- `engram_activate``9802`
- `eg_knn_for_node``13075` (its own header comment states *"No writes."*)
- `engram_geo_reify_run_json``13285`
It mutates five process-global statics (`94009404`): `_eg_vindex`, `_eg_vindex_dim`, `_eg_vindex_built_nc`, `_eg_vindex_seen`, `_eg_vindex_seen_cap`.
Reads mutate because index maintenance was never given an owner on the write side. It got bolted onto reads, because a builtin *could* reach the globals — nothing prevented it. Likewise `state_get` leaked because a builtin *owned* the value it returned; nothing prevented that either.
The store is architecturally append-only and superseding. A read path that mutates contradicts that directly. The contradiction is expressible only because the ABI permits it.
---
## 2a. Verified positions and the fact §1 missed
Read directly at `a67452f`, 2026-08-16. §1's line numbers predate a ~135-line shift; these are current.
| thing | §1 said | actually |
|---|---|---|
| five process-global statics | 94009404 | **95359539** |
| `eg_vindex_seen_ensure` realloc | 9412 | **9547** |
| `eg_vindex_sync` | 9419 | **9554** |
| `vindex_free` on a read path | 9424 | **9559** |
| `vindex_insert` on a read path | 9434 / 9450 | **9569** (build) / **9585** (incremental) |
| caller: `engram_activate_inner` | 9802 | **9939** |
| caller: `eg_knn_for_node` | 13075 | **13212** |
| caller: `engram_geo_reify_run_json` | 13285 | **13422** |
| `fb32d15` guard | — | lock **1602**, depth **1631**, `eg_guard_enter` **1636**, `http_worker` acquire **1687**, `engram_activate` wrapper **14097** |
| VIndex scratch fields | 7981 | **7981** ✓ |
| `search_layer` race site | 195 | **195** ✓ |
**The structural fact §1 and §3 both missed:** *the index does not inherit the store's append-only property.* `vindex_insert` rewires the `NeighList` links of already-existing elements and reallocs `elems[]` — so extending the index mutates the whole structure, not just its tail. This is why "make reads pure" is necessary but **not sufficient**, and why §3 needed a publication boundary rather than only a capability split. It is reproduced as a standing test (`unsynchronized` half, §5).
---
## 3. The change
*(Re-derived 2026-08-16. The previous §3 — a runtime context struct carrying read/write **capability pointers** to every builtin — was written in mutable-store, C-ownership terms. It asked "who is permitted to mutate the shared thing?", which presupposes a shared mutable thing. The engram is immutable and recall is projection; what does not mutate needs no ownership discipline. So the question is not answered, it is dissolved. The implemented change is below.)*
### 3.1 Three moves, in decreasing order of how much they dissolve
**(1) Misfiled scratch is not shared state.** `visited` / `visit_epoch` were never conceptually owned by the index — they are one traversal's local, hoisted into `struct VIndex` as an allocation optimisation. Nothing about them is derived geometry. They want neither a lock nor a capability nor a checkout pool: a pure function's scratch belongs to its call frame, and the fix is to put it back there. This is not "the capability model applied by hand to one global"; it is the deletion of a false ownership claim.
**(2) `const` is the capability, and immutability hands it over for free.** Once the scratch leaves the struct, `search_layer` reads the index and nothing else — so `vindex_search` can take a `const VIndex*`. That is *precisely* the teeth old-§3 wanted from capability pointers: a read path physically cannot call `vindex_insert`, and it is a **compile error**, not a review comment. It costs one qualifier rather than a new ABI swept across hundreds of builtins. The compiler enforces it on every future caller for the same reason.
> The capability type was already in the language. It is spelled `const`.
**(3) What remains is a publication problem, not an ownership problem.** With scratch in the frame and reads const, one hazard survives, and it is real: **HNSW insert is not an append.** `vindex_insert` rewires the `NeighList` links of *already-existing* elements and reallocs `elems[]`. The store's append-only property does **not** transfer to the index derived from it. So a reader projecting against the index while its owner extends it is unsafe no matter how pure search is.
Immutability answers this too, and the answer is publication:
- **`eg_vindex_maintain`** — the sole mutator. Takes the boundary exclusively; never runs beside a reader.
- **`eg_vindex_view`** — returns a `const VIndex*` with the boundary held for read. N readers project concurrently; none can mutate.
A read path may **demand that a current snapshot exist** — that is a request to the owner, not a mutation by the reader. What it may not do is mutate the geometry it is projecting against. `view` / `maintain` is exactly that split, and it is why this replaces `eg_vindex_sync` rather than wrapping it.
**Write-side owner.** Index membership is owned by the event *"an embedding became present on this ordinal"* — not by node append, since a node without an embedding cannot be in a vector index at all. `eg_vindex_note_embedded` hooks the embedding-assignment sites: one O(log n) insert, no O(node_count) presence scan. This also retires the "STALENESS (honest tradeoff)" note in the old `eg_vindex_sync`, where a lazily-embedded *older* node stayed invisible to `route_nearest` / autoconnect until the next full rebuild.
### 3.2 What this does not claim
The **resident RAM graph** (`g->nodes` / `g->edges`) is a *separate* residue of the same residual and is untouched by this change. It is realloc'd in place (`el_runtime.c:7618`, `7629`), so an awareness-thread reader holding `EngramNode* n = &g->nodes[i]` across a concurrent append holds a dangling pointer — and `engram_activate_inner`'s embed-backfill writes `n->emb` through exactly such a pointer. It wants the same publication treatment the index just received. Until that lands, the `fb32d15` guard stays (see §5).
---
## 4. Why this is not a large change
The old §4 argued that El owning its compiler makes a capability-ABI sweep mechanical, since `elc` generates every builtin call site. That argument was load-bearing only for the ABI, and the ABI is gone.
The constraint now travels with the **type of the thing**, not the shape of every call site — so no sweep is needed at all. Measured extent of the implemented change: two qualifiers (`const VIndex*` on `vindex_search`, propagated to `engram_geometry_descriptor` and `engram_geo_reify_store`), one struct field group relocated to a call frame, one rwlock, and three read call sites converted from `eg_vindex_sync` to `view`/`release`.
The payoff of owning the language is unchanged and is now *cheaper*: introduced once, enforced by the compiler on every future builtin, cannot subsequently be forgotten. Contrast the current state, where the same discipline was maintained by hand across hundreds of builtins and demonstrably failed at least six times.
---
## 5. What this deletes
**Deleted (done, 2026-08-16):**
- `eg_vindex_sync` — the function itself. Not renamed: split into `eg_vindex_maintain` (mutating, exclusive, sole owner) and `eg_vindex_view` (const, shared). A name that meant "read paths repair the index" had to stop existing.
- `VIndex::visited` / `visit_epoch` / `visited_cap` — the struct fields, `visited_ensure`, its call from `elems_reserve`, `ix->visit_epoch = 0` in `vindex_create`, and `free(ix->visited)` in `vindex_free`.
- The **proposed** per-search scratch *struct on the index* (a checkout pool / `VisitedListPool`) — never built. The buffer is a plain frame local; a pool is machinery for an ownership question that no longer exists.
- The **proposed** reader-view / owner-handle split for VIndex specifically — superseded. `const` already is the reader view.
- `EXPECT_RACE` in `run_vindex_concurrency_tests.sh` — a knob that let a known defect ride as "expected". Replaced by four halves with real verdicts.
**NOT deleted — the design doc was wrong about this one:**
- `fb32d15` (`eg_guard_enter` / `engram_req_lock` / `_eg_req_depth`). §5 originally called for its removal as "a lock protecting a mutation that ceases to exist." **Measured, it guards two things, and only one of them ceases to exist.** Its own comment names both: the RAM graph *and* `_eg_vindex`. The vindex justification is retired; the RAM-graph justification is independently load-bearing (§3.2), and removing the guard reintroduces the measured 11171→9579 edge-loss defect from 2026-08-14. Its comment has been narrowed to state the RAM graph only. **Precondition for deleting it:** the resident graph gets the same publication boundary the index just got.
- el #140's hand-patch. Left in place — the leak stops being *expressible* only under the abandoned capability-ABI §3, which is not what was built.
**Ordering consequence (revised):** the original ordering claim — "the residual lands first, the residues evaporate rather than get fixed" — did not survive contact. The residual here is not a single ABI that dissolves everything at once; it is a *property* (derived state is published, never edited) applied per structure. The index now has it. The RAM graph does not yet. Residues evaporate **per structure, in the order the property is applied**, and a residue whose structure has not been converted must be left standing, not deleted on the strength of the plan.
---
## 6. Sequencing
1. **Read** how builtins are declared and dispatched, to confirm the call sites are compiler-generated in one place. *(This determines whether §4 holds. If dispatch is scattered, re-size before proceeding.)*
2. Introduce the context type and capability types.
3. Codegen emits the context at every builtin call site.
4. Mechanical sweep of builtin signatures.
5. Move index maintenance behind the write capability; the three read callers take the read capability.
6. Delete the residue-fixes listed in §5.
7. **One** build of soul from el dev — which resolves the `state_get` leak and the crash together, rather than deploying a leak fix that reintroduces the crash.
---
## 7. Open questions
**Answered 2026-08-16:**
- ~~Do the nine append sites share a commit point?~~ **Moot.** The question was mis-aimed: node append is not the event that owns index membership, because a node without an embedding cannot be in a vector index. The five *embedding-assignment* sites are the real owner points (`el_runtime.c:7091, 9839, 13362, 15002`, plus snapshot-restore at `7951`), and three of them carry the ordinal directly — which is all `eg_vindex_note_embedded` needs. The other two run before the node is resident, where the cold build picks it up.
- ~~Does anything outside `lang/runtime/` construct a second `VIndex`?~~ **No.** Swept: the only constructors outside the runtime are `engram/test/*` and `lang/runtime/vindex_bench.c`, all single-threaded and index-private. Inside the runtime, `engram_self_reify_beat_json` builds a **private** index deliberately and never touches the shared boundary — that was already correct and is unchanged.
- ~~Does the HTTP worker pool contend on the same globals?~~ **Yes, and it was never the whole story.** Workers serialize against each other on `engram_req_lock`, but the awareness main thread does not take it at all — that is the gap `fb32d15` closed. Now verified independent of that guard: the index boundary is its own rwlock, so worker/awareness contention on `_eg_vindex` is handled whether or not the request lock is held.
**Still open:**
- The resident RAM graph wants the same publication boundary (§3.2). Until it has one, `fb32d15` cannot be deleted.
- `eg_vindex_view` holds the boundary for read across `engram_geo_reify_store`, which is a long pass. Correct, but it stalls the owner for that duration. If reify latency becomes a problem the answer is a refcounted snapshot, not a shorter lock.
---
## 7a. Evidence (measured 2026-08-16, `engram/test/run_vindex_concurrency_tests.sh`)
| half | before | after |
|---|---|---|
| `single` — 3000 vectors, 1 thread, ASan+UBSan | clean | clean |
| `readers` — 4 readers, no writer, TSan | **race** at `engram_vindex.c:195` (`visited_reset``vindex_search`) | **clean** |
| `unsynchronized` — writer+reader, bare index, TSan | race | **race, expected and permanent** — now the proof the boundary must exist |
| `published` — owner + 4 readers through the boundary, TSan | *(did not exist)* | **clean**, all 3000 inserts landed |
No recall regression: `recall@10 = 0.9365` at `ef_search=128` (gate ≥ 0.90); the determinism test still yields byte-identical results across two independent builds.
Builds locally: all seven engram runtime translation units compile `-Wall -Wextra` clean, and the full engram binary links (`engram/dist/engram.c` + runtime, arm64). The one pre-existing `-Wcomment` warning in `el_runtime.c` is present at `a67452f` too.
---
## 8. What this document is not
It is not an argument for a memory model in general, a garbage collector, process isolation between soul and engram, or a client/server split of the store. Each of those was considered and each addresses mutation that this change removes. They are answers to a question that stops being asked.
+91
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@@ -0,0 +1,91 @@
// fitprobe.el controlled growth-curve specimens for validating the complexity fitter.
//
// Three deliberately-shaped workloads. None depends on a real defect existing,
// which is the point: the fitter must be provable against KNOWN curves.
//
// linear one allocation per item. count O(n), bytes O(n), time O(n)
// accum rebuilds its accumulator. count O(n), bytes O(n^2), time O(n^2)
// compute nested arithmetic, no alloc. count O(1), bytes O(1), time O(n^2)
//
// `compute` is the specimen that matters. It is the shape of el #132
// (strlen-per-character inside str_char_code): pure CPU, zero allocation.
// An allocation-only gate is structurally blind to it.
//
// No imports uses runtime builtins directly so nothing collides.
fn work_linear(n: Int) -> Int {
let parts: [String] = native_list_empty()
let i: Int = 0
while i < n {
let parts = native_list_append(parts, int_to_str(i))
let i = i + 1
}
return native_list_len(parts)
}
fn work_accum(n: Int) -> Int {
let acc: String = ""
let i: Int = 0
while i < n {
let acc = acc + "x"
let i = i + 1
}
return str_len(acc)
}
fn work_compute(n: Int) -> Int {
// str_char_code is an opaque external call, so the C optimiser cannot
// reduce this nest to a closed form the way it does with `total + 1`.
// This is the exact shape of el #132: n scans over n characters, pure
// CPU, ZERO allocation.
let s: String = "abcdefghij"
let total: Int = 0
let i: Int = 0
while i < n {
let j: Int = 0
while j < n {
let total = total + str_char_code(s, 0)
let j = j + 1
}
let i = i + 1
}
return total
}
fn run_one(mode: String, n: Int) {
let c0: Int = el_alloc_count()
let b0: Int = el_alloc_bytes()
let t0: Int = el_now_instant()
let r: Int = 0
if str_eq(mode, "linear") { let r = work_linear(n) }
if str_eq(mode, "accum") { let r = work_accum(n) }
if str_eq(mode, "compute") { let r = work_compute(n) }
let t1: Int = el_now_instant()
let c1: Int = el_alloc_count()
let b1: Int = el_alloc_bytes()
println(mode + "\t" + int_to_str(n)
+ "\t" + int_to_str(c1 - c0)
+ "\t" + int_to_str(b1 - b0)
+ "\t" + int_to_str((t1 - t0) / 1000)
+ "\t" + int_to_str(r))
return
}
fn sweep(mode: String) {
run_one(mode, 200)
run_one(mode, 400)
run_one(mode, 800)
run_one(mode, 1600)
return
}
fn main() -> Int {
println("mode\tn\tallocs\tbytes\tusec\tsink")
sweep("linear")
sweep("accum")
sweep("compute")
return 0
}
+1
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@@ -1,3 +1,4 @@
import "../../runtime/eltest.el"
// tests/native/test_compiler.el comprehensive tests for the El compiler pipeline.
//
// Tests the lexer (lexer.el), parser (parser.el), and codegen (codegen.el)
+1
View File
@@ -1,3 +1,4 @@
import "../../runtime/eltest.el"
// test_codegen_js.el - basic tests for JS codegen features.
//
// These tests verify that core El language features produce correct values
+111
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@@ -0,0 +1,111 @@
import "../../runtime/eltest.el"
import "../../runtime/elbench.el"
// test_elbench.el proves the growth-curve classifier against KNOWN curves.
//
// Every series below is real measured data from lang/tests/bench/fitprobe.el
// on a geometric sweep n = 200/400/800/1600. The classifier must be provable
// without depending on a live defect existing, which is the whole point of
// keeping controlled specimens.
fn _s4(a: Int, b: Int, c: Int, d: Int) -> [Int] {
let l: [Int] = native_list_empty()
let l = native_list_append(l, a)
let l = native_list_append(l, b)
let l = native_list_append(l, c)
let l = native_list_append(l, d)
return l
}
test "classifies a linear allocation series as O(n)" {
// fitprobe `linear`, allocation count
let v = _s4(208, 409, 810, 1611)
assert elb_measured_curve(v, 10) == 2, "linear allocs should classify O(n)"
}
test "classifies a linear byte series as O(n)" {
// fitprobe `linear`, allocation bytes
let v = _s4(4786, 9682, 19474, 39658)
assert elb_measured_curve(v, 10) == 2, "linear bytes should classify O(n)"
}
test "classifies a quadratic byte series as O(n^2)" {
// fitprobe `accum`, allocation bytes -- the accumulator-rebuild shape
let v = _s4(20300, 80600, 321200, 1282400)
assert elb_measured_curve(v, 10) == 4, "accum bytes should classify O(n^2)"
}
test "accumulator count is linear -- proves count alone misses it" {
// Same run as above. The COUNT is exactly linear while bytes are
// quadratic. A count-only gate passes this defect clean.
let v = _s4(200, 400, 800, 1600)
assert elb_measured_curve(v, 10) == 2, "accum count classifies O(n)"
assert elb_gate(v, 2, 10) == 0, "count-only gate PASSES the quadratic"
}
test "classifies a quadratic time series as O(n^2)" {
// fitprobe `compute` -- el #132's shape: n scans over n characters
let v = _s4(67, 205, 818, 3268)
assert elb_measured_curve(v, 10) == 4, "compute time should classify O(n^2)"
}
test "REFUSES an all-zero series instead of calling it O(1)" {
// fitprobe `compute` allocation count. Pure CPU, allocates nothing.
// Reporting O(1) here would be a confident answer with nothing behind it.
let v = _s4(0, 0, 0, 0)
assert elb_gate(v, 2, 10) == 3, "all-zero series must be REFUSED"
assert elb_measured_curve(v, 10) < 0, "unclassifiable returns -1"
}
test "REFUSES an implausibly flat series" {
// The shape produced when clang closes a loop to a multiply: a real
// answer, no work done, no movement across an 8x input range.
let v = _s4(1000, 1001, 1002, 1003)
assert elb_gate(v, 2, 10) == 3, "hard-flat series must be REFUSED"
}
test "gate FAILS a quadratic declared as linear" {
let v = _s4(20300, 80600, 321200, 1282400)
assert elb_gate(v, 2, 10) == 1, "O(n^2) measured vs O(n) declared must FAIL"
}
test "gate PASSES a linear series declared as linear" {
let v = _s4(208, 409, 810, 1611)
assert elb_gate(v, 2, 10) == 0, "O(n) measured vs O(n) declared must PASS"
}
test "gate reports BETTER when measured beats the declared bound" {
let v = _s4(208, 409, 810, 1611)
assert elb_gate(v, 4, 10) == 4, "O(n) measured vs O(n^2) declared is BETTER"
}
test "gate reports INDETERMINATE on disagreeing ratios" {
// fitprobe `linear` WALL TIME at these sizes: 26/19/43/78 microseconds.
// Ratios 0.73, 2.26, 1.81 disagree well past the noise threshold. The
// honest answer is "cannot tell", not a classification -- this is exactly
// why benchmarks need auto-scaled iteration counts rather than one shot.
let v = _s4(26, 19, 43, 78)
assert elb_gate(v, 2, 10) == 2, "disagreeing ratios must be INDETERMINATE"
}
test "black_box is a real barrier and returns its input" {
assert el_black_box(42) == 42, "black_box is value-preserving"
let s: Int = 0
let i: Int = 0
while i < 100 {
// Bind the call before using it in arithmetic: `x + call(...)`
// lowers to el_str_concat() on integers. Same inference defect
// as `call(...) == y` lowering to str_eq().
let bx: Int = el_black_box(1)
let s = s + bx
let i = i + 1
}
assert s == 100, "black_box does not disturb the computation"
}
test "curve names round-trip" {
assert elb_curve_from_name("O(n)") == 2, "O(n) parses"
assert elb_curve_from_name("O(n^2)") == 4, "O(n^2) parses"
assert str_eq(elb_curve_name(4), "O(n^2)"), "O(n^2) renders"
assert elb_curve_from_name("O(nonsense)") < 0, "unknown curve is -1"
}
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@@ -1,3 +1,4 @@
import "../../runtime/eltest.el"
// test_env.el - native test suite for runtime/env.el
//
// Covers: env() for reading environment variables, args() returning a list,
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@@ -1,3 +1,4 @@
import "../../runtime/eltest.el"
// test_fs.el - native test suite for runtime/fs.el
//
// Covers: fs_write/read round-trip, fs_exists, fs_mkdir, fs_list,
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@@ -1,3 +1,4 @@
import "../../runtime/eltest.el"
// test_json.el - native test suite for runtime/json.el
//
// Covers: json_get (dot-path), typed extractors (int, bool, float),
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import "../../runtime/eltest.el"
import "../../runtime/elbench.el"
// test_lexer_scaling.el THE ARMED GATE.
//
// This is the regression test that would have caught el #132.
//
// #132 was a strlen() inside str_char_code() and str_slice(). The lexer walks
// source one character at a time, so every character access rescanned the whole
// remaining input: O(n) per character over n characters = O(n^2). It shipped for
// months. It was found by a geometric sweep, not by reading code.
//
// So this test IS a geometric sweep. It scans a string of length n, character by
// character, at four doubling sizes, and asserts the cost is linear. If anyone
// reintroduces a per-character rescan in str_char_code, in str_slice, in any
// accessor the lexer leans on the measured curve becomes O(n^2) and this fails.
//
// The value is in it being ARMED, not in it currently failing. It passes today
// because #132 is fixed. That is the correct state for a regression gate.
//
// Note the deliberate `let c: Int = str_char_code(...)` binding in the scan loop.
// Inlining it as `total + str_char_code(s, i)` lowers to el_str_concat() on
// integers the Plus arm of the operator-typing family, still open at the time
// of writing. Binding first is the safe form.
// _mk_string build a string of length >= n by DOUBLING.
//
// Deliberately not `s = s + "x"` n times: that is itself quadratic in bytes and
// would contaminate the very measurement this test exists to take. Doubling
// allocates ~2n total.
fn _mk_string(n: Int) -> String {
let s: String = "abcdefgh"
while str_len(s) < n {
let s = s + s
}
return s
}
// _scan walk the string one character at a time, REPS times.
//
// This is the lexer's access pattern reduced to its essential shape. The
// repetitions lift the measurement clear of timer resolution; without them the
// smaller sizes land in noise and the classifier correctly reports
// INDETERMINATE rather than guessing.
fn _scan(s: String, n: Int, reps: Int) -> Int {
let total: Int = 0
let r: Int = 0
while r < reps {
let i: Int = 0
while i < n {
let c: Int = str_char_code(s, i)
let total = total + c
let i = i + 1
}
let r = r + 1
}
return total
}
// _measure_scan microseconds for a full scan sweep point.
fn _measure_scan(n: Int, reps: Int) -> Int {
let s: String = _mk_string(n)
// WARMUP, discarded. Without it the small-n end of the sweep is dominated
// by cold caches and reads as superlinear on genuinely linear work --
// measured ratios 3.37 2.92 1.76 1.65 on exactly this workload.
let w: Int = _scan(s, n, 2)
let wj: Int = el_black_box(w)
let t0: Int = el_now_instant()
let got: Int = _scan(s, n, reps)
let t1: Int = el_now_instant()
// Feed the result through the barrier so the scan cannot be elided.
let sink: Int = el_black_box(got)
if sink == 0 { println("") }
return (t1 - t0) / 1000
}
fn _series4(a: Int, b: Int, c: Int, d: Int) -> [Int] {
let l: [Int] = native_list_empty()
let l = native_list_append(l, a)
let l = native_list_append(l, b)
let l = native_list_append(l, c)
let l = native_list_append(l, d)
return l
}
test "character scan is LINEAR in time -- regression gate for el #132" {
let reps: Int = 40
let t1: Int = _measure_scan(16384, reps)
let t2: Int = _measure_scan(32768, reps)
let t3: Int = _measure_scan(65536, reps)
let t4: Int = _measure_scan(131072, reps)
let series: [Int] = _series4(t1, t2, t3, t4)
let verdict: Int = elb_gate(series, 2, 50)
let measured: Int = elb_measured_curve(series, 50)
// Report the actual numbers regardless of outcome. A gate that fires
// without showing its evidence is just an assertion.
println(" scan us: " + int_to_str(t1) + " " + int_to_str(t2) + " "
+ int_to_str(t3) + " " + int_to_str(t4)
+ " -> " + elb_curve_name(measured) + " [" + elb_verdict_name(verdict) + "]")
// PASS (0) or BETTER (4) are both acceptable. FAIL (1) means someone
// reintroduced superlinear per-character cost. REFUSED (3) or
// INDETERMINATE (2) mean the measurement is untrustworthy -- which is
// also a failure of this test, deliberately: a gate that cannot measure
// must not report success.
assert verdict == 0 || verdict == 4, "character scan must measure O(n) or better"
}
test "string building by doubling stays linear in allocated bytes" {
let b1: Int = el_alloc_bytes()
let s1: String = _mk_string(8192)
let b2: Int = el_alloc_bytes()
let s2: String = _mk_string(16384)
let b3: Int = el_alloc_bytes()
let s3: String = _mk_string(32768)
let b4: Int = el_alloc_bytes()
let s4: String = _mk_string(65536)
let b5: Int = el_alloc_bytes()
let series: [Int] = _series4(b2 - b1, b3 - b2, b4 - b3, b5 - b4)
let verdict: Int = elb_gate(series, 2, 1000)
let measured: Int = elb_measured_curve(series, 1000)
println(" bytes: " + int_to_str(b2 - b1) + " " + int_to_str(b3 - b2) + " "
+ int_to_str(b4 - b3) + " " + int_to_str(b5 - b4)
+ " -> " + elb_curve_name(measured) + " [" + elb_verdict_name(verdict) + "]")
assert verdict == 0 || verdict == 4, "doubling build must be O(n) in bytes"
assert str_len(s4) >= 65536, "final string reached the requested size"
}
// _scan_quadratic a DELIBERATELY quadratic scan: for each position, rescan
// from the start. This is precisely what el #132 did strlen() from offset 0
// on every character access reproduced here so the gate can be proven to
// FIRE, not merely to pass on healthy code. An unproven gate is decoration.
fn _scan_quadratic(s: String, n: Int) -> Int {
let total: Int = 0
let i: Int = 0
while i < n {
let j: Int = 0
while j < i {
let c: Int = str_char_code(s, j)
let total = total + c
let j = j + 1
}
let i = i + 1
}
return total
}
fn _measure_quadratic(n: Int) -> Int {
let s: String = _mk_string(n)
let w: Int = _scan_quadratic(s, 64)
let wj: Int = el_black_box(w)
let t0: Int = el_now_instant()
let got: Int = _scan_quadratic(s, n)
let t1: Int = el_now_instant()
let sink: Int = el_black_box(got)
return (t1 - t0) / 1000
}
test "the gate FIRES on a live quadratic scan -- proves it is armed" {
let q1: Int = _measure_quadratic(1024)
let q2: Int = _measure_quadratic(2048)
let q3: Int = _measure_quadratic(4096)
let q4: Int = _measure_quadratic(8192)
let series: [Int] = _series4(q1, q2, q3, q4)
let verdict: Int = elb_gate(series, 2, 50)
let measured: Int = elb_measured_curve(series, 50)
println(" quad us: " + int_to_str(q1) + " " + int_to_str(q2) + " "
+ int_to_str(q3) + " " + int_to_str(q4)
+ " -> " + elb_curve_name(measured) + " [" + elb_verdict_name(verdict) + "]")
assert measured == 4, "a rescan-from-zero workload must classify O(n^2)"
assert verdict == 1, "declared O(n) against measured O(n^2) must FAIL the gate"
}
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@@ -1,3 +1,4 @@
import "../../runtime/eltest.el"
// test_math.el - native test suite for runtime/math.el
//
// Covers: integer math (abs, max, min), float math (sqrt, log, sin, cos, pi),
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@@ -1,3 +1,4 @@
import "../../runtime/eltest.el"
// test_state.el - native test suite for runtime/state.el
//
// Covers: state_set/get/del, state_has, state_get_or, state_keys,
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@@ -1,3 +1,4 @@
import "../../runtime/eltest.el"
// test_string.el - native test suite for runtime/string.el
//
// Covers: type conversions, core primitives, comparison and search,
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@@ -1,3 +1,4 @@
import "../../runtime/eltest.el"
// test_text.el - native test suite for text primitives.
//
// Mirrors the acceptance corpus in tests/text/examples/ using the
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@@ -1,3 +1,4 @@
import "../../runtime/eltest.el"
// test_time.el - native test suite for runtime/time.el
//
// Covers: time_now (positive timestamp), time_to_parts (UTC decomposition),
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import "../../runtime/eltest.el"
// test_transduce.el geometry as a first-class El value, and realizers
// declared in El rather than patched into the runtime.
//
// WHAT IS ACTUALLY UNDER TEST. Until 2026-08-16 no El ingest path could carry
// a vector: nodes took text, and geometry was DERIVED from that text. Text was
// therefore the mandatory entry medium, so any non-text modality had to be
// DESCRIBED in prose first and the geometry we reasoned over was the geometry
// OF THE DESCRIPTION, not of the signal. The fix has two halves, and this file
// exercises both:
//
// 1. Geometry is a VALUE it carries its own width, so nothing has to
// assert a width against a string's length.
// 2. A REALIZER is an ordinary El function. `tone_realizer` below is not in
// the runtime, is not known to the compiler, and is not special in any
// way; it is registered BY NAME and dispatched to through transduce().
// That is the load-bearing claim: adding a modality must not require a
// runtime patch, or nothing has actually moved into the language.
//
// COMPARISON DISCIPLINE IN THIS FILE (measured 2026-08-16, not stylistic):
// elc lowers `a == b` to a NUMERIC comparison only when both operand names are
// in the per-function int-name set, which `let x: Int` populates. A bare call
// like `geometry_is(g) == 0` is not a registered name, so it lowers to
// `str_eq(...)` strcmp on two integers reinterpreted as pointers. `<` and `>`
// lower directly via binop_to_c with no type inference at all, so truthiness is
// written `> 0` / `< 1` here, and any exact `==` is done on a value first bound
// through `let x: Int`.
// A realizer, written entirely in El
// Maps a "tone" signal into a 4-component geometry. Deliberately trivial
// what is being proven is that an El function can BE a realizer, not that
// this is good acoustics. The one real property it has: distinct signals
// produce distinct geometry, so the test can tell transduction from a stub.
fn tone_realizer(signal: String) -> Geometry {
let g: Geometry = geometry_new(4)
let n: Int = str_len(signal)
let a: Int = geometry_set(g, 0, int_to_float(n))
let b: Int = geometry_set(g, 1, int_to_float(n * 2))
let c: Int = geometry_set(g, 2, int_to_float(n * 3))
let d: Int = geometry_set(g, 3, int_to_float(n * 4))
g
}
// A second realizer for a different modality, to prove the registry keys on
// modality and does not just hand back "the last thing registered".
fn pulse_realizer(signal: String) -> Geometry {
let g: Geometry = geometry_new(2)
let a: Int = geometry_set(g, 0, 1.0)
let b: Int = geometry_set(g, 1, 0.0)
g
}
// A deliberately BROKEN realizer: it returns something that is not a Geometry.
// transduce() must not hand this back to a caller as if it were one.
fn bogus_realizer(signal: String) -> Geometry {
return 12345
}
test "geometry-is-a-value-with-its-own-width" {
let g: Geometry = geometry_new(8)
let live: Int = geometry_is(g)
assert live > 0, "geometry_new returns a live Geometry"
let d: Int = geometry_dim(g)
assert d == 8, "a Geometry carries its own width"
let freed: Int = geometry_free(g)
assert freed > 0, "geometry_free reports what it did"
}
test "geometry-rejects-nonsense-without-an-arbitrary-bound" {
// dim <= 0 is not a width. Note there is deliberately no MAX dim here:
// #141 needed `dim <= 8192` only to bound an allocation sized from a
// caller's claim about a string. A value that carries its own width has
// nothing left to validate, so the only failure left is allocation.
let zero: Geometry = geometry_new(0)
let z: Int = geometry_is(zero)
assert z < 1, "dim 0 is not a geometry"
let neg: Geometry = geometry_new(-4)
let n: Int = geometry_is(neg)
assert n < 1, "negative dim is not a geometry"
// Accessors must be total: a non-geometry is 0-width, never a crash.
let nd: Int = geometry_dim(0)
assert nd < 1, "geometry_dim of a non-geometry is 0"
let ni: Int = geometry_is(0)
assert ni < 1, "geometry_is of a non-geometry is 0"
let nf: Int = geometry_free(0)
assert nf < 1, "geometry_free of a non-geometry is a no-op"
}
test "geometry-components-round-trip" {
let g: Geometry = geometry_new(3)
let s0: Int = geometry_set(g, 0, 1.5)
let s1: Int = geometry_set(g, 1, -2.5)
assert s0 > 0, "set in range succeeds"
let oob: Int = geometry_set(g, 3, 9.0)
assert oob < 1, "set out of range is refused, not silently dropped"
let v0: Float = geometry_get(g, 0)
let d0: Float = v0 - 1.5
assert d0 < 0.001, "component 0 round-trips"
assert d0 > -0.001, "component 0 round-trips"
let v1: Float = geometry_get(g, 1)
let d1: Float = v1 + 2.5
assert d1 < 0.001, "component 1 round-trips (negative)"
assert d1 > -0.001, "component 1 round-trips (negative)"
let freed: Int = geometry_free(g)
}
test "hex-is-an-edge-adapter-and-derives-its-own-width" {
// 2 components, little-endian float32: 1.0 = 0000803f, 2.0 = 00000040.
let g: Geometry = geometry_from_f32le_hex("0000803f00000040")
let live: Int = geometry_is(g)
assert live > 0, "valid hex decodes to a Geometry"
let d: Int = geometry_dim(g)
assert d == 2, "width is DERIVED from the input, never supplied"
let a: Float = geometry_get(g, 0)
let da: Float = a - 1.0
assert da < 0.001, "first component decoded"
assert da > -0.001, "first component decoded"
let b: Float = geometry_get(g, 1)
let db: Float = b - 2.0
assert db < 0.001, "second component decoded"
assert db > -0.001, "second component decoded"
// Egress adapter is the exact inverse.
let back: String = geometry_to_f32le_hex(g)
assert str_eq(back, "0000803f00000040"), "hex round-trips exactly"
let freed: Int = geometry_free(g)
}
test "hex-rejects-malformed-input" {
let empty: Geometry = geometry_from_f32le_hex("")
let e: Int = geometry_is(empty)
assert e < 1, "empty hex is not a geometry"
let ragged: Geometry = geometry_from_f32le_hex("0000803f0000")
let r: Int = geometry_is(ragged)
assert r < 1, "length not a multiple of 8 is refused"
let nonhex: Geometry = geometry_from_f32le_hex("zzzzzzzz")
let nh: Int = geometry_is(nonhex)
assert nh < 1, "non-hex characters are refused"
}
test "a-realizer-declared-in-el-is-a-first-class-realizer" {
// THE CLAIM: tone_realizer is an ordinary El function. It is not in the
// runtime and the compiler knows nothing about it. Registering it by name
// is enough to make it the organ for a modality.
let reg: Int = realizer_register("tone", "tone_realizer")
assert reg > 0, "an El fn registers as a realizer by name"
let has: Int = realizer_has("tone")
assert has > 0, "the modality now has an organ"
let g: Geometry = transduce("aaa", "tone")
let live: Int = geometry_is(g)
assert live > 0, "transduce returns real geometry"
let d: Int = geometry_dim(g)
assert d == 4, "the El realizer determined the width, not the runtime"
// str_len("aaa") == 3, so component 0 must be 3.0 proof the signal
// actually reached the El function rather than a stub answering for it.
let c0: Float = geometry_get(g, 0)
let dc: Float = c0 - 3.0
assert dc < 0.001, "the signal reached the El realizer"
assert dc > -0.001, "the signal reached the El realizer"
let freed: Int = geometry_free(g)
}
test "distinct-signals-transduce-to-distinct-geometry" {
let reg: Int = realizer_register("tone", "tone_realizer")
let g1: Geometry = transduce("aa", "tone")
let g2: Geometry = transduce("aaaaa", "tone")
let a: Float = geometry_get(g1, 0)
let b: Float = geometry_get(g2, 0)
let diff: Float = b - a
// 5 - 2 = 3. If transduction were a stub these would be equal.
assert diff > 2.9, "different signals produce different geometry"
assert diff < 3.1, "different signals produce different geometry"
let f1: Int = geometry_free(g1)
let f2: Int = geometry_free(g2)
}
test "the-registry-keys-on-modality" {
let r1: Int = realizer_register("tone", "tone_realizer")
let r2: Int = realizer_register("pulse", "pulse_realizer")
assert r2 > 0, "a second modality registers independently"
let gt: Geometry = transduce("aaa", "tone")
let gp: Geometry = transduce("aaa", "pulse")
let dt: Int = geometry_dim(gt)
let dp: Int = geometry_dim(gp)
assert dt == 4, "tone still routes to its own realizer"
assert dp == 2, "pulse routes to a different realizer"
let f1: Int = geometry_free(gt)
let f2: Int = geometry_free(gp)
}
test "no-organ-is-reported-as-no-organ" {
// A modality with no realizer must transduce to NOTHING. It must never
// fall back to embedding a description of the signal and calling that
// perception that silent substitution is the entire defect this change
// exists to end.
let has: Int = realizer_has("echolocation")
assert has < 1, "unregistered modality has no organ"
let g: Geometry = transduce("anything", "echolocation")
let live: Int = geometry_is(g)
assert live < 1, "no realizer means no geometry, not fake geometry"
}
test "registration-of-an-unresolvable-name-fails-loudly" {
// Reported at the moment of WIRING, not later as "this modality mysteriously
// produces nothing". Distinguishing "no organ" from "broken organ" is the
// lesson that made this whole change necessary.
let bad: Int = realizer_register("ghost", "no_such_function_anywhere")
assert bad < 1, "an unresolvable realizer name is a registration failure"
let has: Int = realizer_has("ghost")
assert has < 1, "and nothing gets registered"
}
test "a-realizer-returning-non-geometry-transduces-nothing" {
let reg: Int = realizer_register("bogus", "bogus_realizer")
assert reg > 0, "the symbol resolves, so registration succeeds"
// ...but the contract is enforced at the boundary, so the caller never
// receives a value that would misbehave far away from here.
let g: Geometry = transduce("x", "bogus")
let live: Int = geometry_is(g)
assert live < 1, "a non-Geometry return transduced nothing"
}
test "norm-lets-a-caller-check-a-realizer-emitted-signal" {
let g: Geometry = geometry_new(2)
let z: Float = geometry_norm(g)
assert z < 0.001, "a fresh geometry is zero — norm says so"
let s0: Int = geometry_set(g, 0, 3.0)
let s1: Int = geometry_set(g, 1, 4.0)
let n: Float = geometry_norm(g)
let dn: Float = n - 5.0
assert dn < 0.001, "3-4-5: norm is 5"
assert dn > -0.001, "3-4-5: norm is 5"
let freed: Int = geometry_free(g)
}
@@ -0,0 +1,28 @@
fn getstr(x: String) -> String { return x }
fn getint(x: Int) -> Int { return x }
fn ok(label: String) -> Void { println("ok " + label) }
fn bad(label: String) -> Void { println("FAIL " + label) }
let s1: String = "hello"
let s2: String = "hello"
let s3: String = "world"
let i1: Int = 5
let i2: Int = 5
let i3: Int = 9
if "abc" == "abc" { ok("str literal eq") } else { bad("str literal eq") }
if "abc" == "xyz" { bad("str literal ne") } else { ok("str literal ne") }
if s1 == s2 { ok("str var eq") } else { bad("str var eq") }
if s1 == s3 { bad("str var ne") } else { ok("str var ne") }
if getstr("hi") == "hi" { ok("str call vs literal") } else { bad("str call vs literal") }
if s1 == getstr("hello") { ok("str var vs call") } else { bad("str var vs call") }
if s1 == getstr("nope") { bad("str var vs call ne") } else { ok("str var vs call ne") }
if i1 == i2 { ok("int var eq") } else { bad("int var eq") }
if i1 == i3 { bad("int var ne") } else { ok("int var ne") }
if getint(5) == i1 { ok("int call vs var") } else { bad("int call vs var") }
if getint(9) == i1 { bad("int call vs var ne") } else { ok("int call vs var ne") }
if s1 != s3 { ok("str NOTEQ") } else { bad("str NOTEQ") }
if s1 != s2 { bad("str NOTEQ same") } else { ok("str NOTEQ same") }
if i1 != i3 { ok("int NOTEQ") } else { bad("int NOTEQ") }
if getint(9) != i1 { ok("int call NOTEQ") } else { bad("int call NOTEQ") }
println("done")
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fn expect_int(label: String, got: Int, want: Int) -> Void {
if got == want { println("ok " + label) }
else { println("FAIL " + label + " got=" + int_to_str(got) + " want=" + int_to_str(want)) }
}
fn expect_str(label: String, got: String, want: String) -> Void {
if str_eq(got, want) { println("ok " + label) }
else { println("FAIL " + label + " got='" + got + "' want='" + want + "'") }
}
// 1. basic char access across a string
let s: String = "hello"
expect_int("char[0]=h", str_char_code(s, 0), 104)
expect_int("char[4]=o", str_char_code(s, 4), 111)
expect_int("char[5] OOB -> 0", str_char_code(s, 5), 0)
expect_int("char[-1] OOB -> 0", str_char_code(s, -1), 0)
expect_int("empty string OOB", str_char_code("", 0), 0)
// 2. slices
expect_str("slice(0,5)", str_slice(s, 0, 5), "hello")
expect_str("slice(1,3)", str_slice(s, 1, 3), "el")
expect_str("slice past end clamps", str_slice(s, 3, 99), "lo")
expect_str("slice inverted -> empty", str_slice(s, 4, 2), "")
// 3. DIFFERENT strings must not share a cached length (the real hazard)
let a: String = "abc"
let b: String = "abcdefghij"
expect_int("a[2]=c", str_char_code(a, 2), 99)
expect_int("a[3] OOB", str_char_code(a, 3), 0)
expect_int("b[9]=j", str_char_code(b, 9), 106)
expect_int("b[3]=d after a", str_char_code(b, 3), 100)
expect_int("a[3] still OOB after b", str_char_code(a, 3), 0)
// 4. many distinct strings interleaved forces cache slot collisions
fn interleave(n: Int) -> Int {
let i: Int = 0
let bad: Int = 0
while i < n {
let t: String = int_to_str(i)
let l: Int = str_len(t)
let last: Int = str_char_code(t, l - 1)
let oob: Int = str_char_code(t, l)
if oob != 0 { let bad2: Int = bad + 1
let bad: Int = bad2 }
if last == 0 { let bad3: Int = bad + 1
let bad: Int = bad3 }
let i2: Int = i + 1
let i: Int = i2
}
return bad
}
expect_int("1000 interleaved strings, no bad reads", interleave(1000), 0)
// 5. concatenation changes length cache must not report the old one
let g: String = "12345"
let g2: String = g + "6789"
expect_int("grown string len via char", str_char_code(g2, 8), 57)
expect_int("original still bounded", str_char_code(g, 5), 0)
println("done")
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import "../../runtime/eltest.el"
// tests/runtime/string_test.el Test suite for runtime/string.el
//
// Exercises every public function exported by runtime/string.el using the