Files
AILang/runtime/rc.c
T
Brummel fc5f4590f8 rc: opt-in alloc/free stats counter for diagnosing leaks
Two non-atomic uint64_t counters in runtime/rc.c, incremented from
ailang_rc_alloc and the to-zero branch of ailang_rc_dec. An
__attribute__((constructor)) registers an atexit handler IFF the
AILANG_RC_STATS env var is non-empty at startup; the handler prints

    ailang_rc_stats: allocs=N frees=M live=K

to stderr. Default-disabled so production binaries stay quiet.

Used by the e2e test infrastructure for assertions about RC
correctness (e.g. tail-recursive list-sum must not leak outer cells)
and by the bencher / debugger when diagnosing leak shape from a
fixture run. Single-threaded; non-atomic — same scope as the rest
of runtime/rc.c. The two unconditional increments on the hot paths
are negligible relative to the libc malloc/free already there.
2026-05-08 14:18:02 +02:00

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/* AILang reference-counting runtime.
*
* Allocator + counter primitives for `ail build --alloc=rc`, plus the
* worklist allocator for `(drop-iterative)` data types. The runtime
* shape is set by Decision 10 (RC + uniqueness inference) and grew
* across Iter 18b18e:
*
* - 18b shipped the 8-byte-refcount-header layout and
* `ailang_rc_alloc`. Programs leaked everything because codegen
* did not yet emit inc/dec.
* - 18c.3 added `ailang_rc_inc` / `ailang_rc_dec` emission at
* `Term::Clone` and at `Term::Let` scope close (when the binder is
* a unique RC-allocated value).
* - 18c.4 added per-type `drop_<m>_<T>(ptr)` functions emitted by
* codegen; on dec-to-zero the cascade walks pointer-typed fields
* before freeing the outer cell.
* - 18d.118d.4 added explicit `(reuse-as)` rewrites and move-aware
* pattern-binder + Own-param dec at scope close, all built on top
* of these runtime primitives without changing the ABI.
* - 18e added `ailang_drop_worklist_*` for ADTs annotated
* `(drop-iterative)`. Codegen swaps the recursive cascade for a
* worklist loop; deep ADT chains free without stack growth.
*
* The ABI defined here is stable; adding behaviour to the codegen
* (further uniqueness elision, atomic refcounts under threading, etc.)
* will not require runtime changes unless the layout itself shifts.
*
* Layout:
*
* high address ┐
* │ payload (size bytes, 8-byte aligned)
* ┤ ← returned pointer (`p`)
* │ uint64_t refcount ← header (8 bytes)
* low address ┘ ← ailang_rc_alloc's internal allocation
*
* The returned pointer points to the *payload*. The header is at
* `p - 8`. Codegen treats the returned pointer exactly like a
* `GC_malloc`-returned pointer; it stores the ADT tag at offset 0,
* fields from offset 8, env-cells from offset 0 in lambda envs, etc.
*
* Single-threaded: counter ops are non-atomic. AILang has no
* concurrency primitives yet; when it acquires them, atomic-vs-non-
* atomic becomes a separate decision per allocation kind (see
* Decision 10's "Does not commit to atomic refcounts" clause).
*/
#include <stddef.h>
#include <stdint.h>
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
/* Header lives in the 8 bytes preceding every payload. */
typedef uint64_t ailang_rc_header_t;
#define HEADER_SIZE ((size_t)sizeof(ailang_rc_header_t))
static inline ailang_rc_header_t *header_of(void *payload) {
return (ailang_rc_header_t *)((uint8_t *)payload - HEADER_SIZE);
}
/* ---------------------------------------------------------------------------
* Iter 18g.0: opt-in alloc/free stats counter.
*
* Two non-atomic 64-bit counters incremented from `ailang_rc_alloc` and
* the to-zero branch of `ailang_rc_dec`. Their difference is the live
* cell count at any point in execution; at program exit a non-zero
* difference is a leak.
*
* Output is gated by the `AILANG_RC_STATS` env var: when set to a
* non-empty value, an `atexit` handler prints
*
* ailang_rc_stats: allocs=N frees=M live=K
*
* to stderr. The default-disabled path keeps production binaries quiet
* and adds only two unconditional `++` operations to the hot path —
* negligible relative to the libc malloc/free already on each path,
* and the bench numbers in JOURNAL 18f.2 were taken with the counters
* compiled in but disabled, so the figures are still valid.
*
* Single-threaded; non-atomic. Same scope as the rest of `runtime/rc.c`.
* The counters are intentionally not exposed via FFI symbols — the
* env-var-gated atexit print is the supported readback path, and that
* is sufficient for the e2e leak tests that consume the diagnostic.
* --------------------------------------------------------------------------- */
static uint64_t g_rc_alloc_count = 0;
static uint64_t g_rc_free_count = 0;
static void ailang_rc_stats_atexit(void) {
fprintf(stderr,
"ailang_rc_stats: allocs=%llu frees=%llu live=%lld\n",
(unsigned long long)g_rc_alloc_count,
(unsigned long long)g_rc_free_count,
(long long)(g_rc_alloc_count - g_rc_free_count));
}
__attribute__((constructor))
static void ailang_rc_stats_install(void) {
const char *flag = getenv("AILANG_RC_STATS");
if (flag != NULL && flag[0] != '\0') {
atexit(ailang_rc_stats_atexit);
}
}
/* Allocate `size` bytes of payload, prefixed by an 8-byte refcount
* header initialised to 1. Returns a pointer to the payload.
*
* Aborts on out-of-memory; AILang has no exception machinery yet, and
* Boehm's behaviour on OOM is also "abort", so this matches.
*
* Zero-initialises the payload to match `GC_malloc`'s contract — codegen
* may rely on uninitialised fields reading as zero in some paths. */
void *ailang_rc_alloc(size_t size) {
void *block = malloc(HEADER_SIZE + size);
if (block == NULL) {
fprintf(stderr,
"ailang_rc_alloc: out of memory (requested payload %zu bytes)\n",
size);
abort();
}
ailang_rc_header_t *hdr = (ailang_rc_header_t *)block;
*hdr = 1;
void *payload = (uint8_t *)block + HEADER_SIZE;
memset(payload, 0, size);
g_rc_alloc_count++;
return payload;
}
/* Refcount += 1. No-op on null (codegen never asks for inc on a known-
* null pointer, but defensive — top-level fn-value pointers may be
* null-env closure pairs in static memory which must not be incremented). */
void ailang_rc_inc(void *payload) {
if (payload == NULL) {
return;
}
/* Static closure-pair env pointers (Iter 8b) live in the LLVM data
* segment, not in heap memory we allocated. Codegen elides inc/dec
* for known-static pointers (the `@`-prefix gate added in 18c.3),
* so this path is not reached for them in practice. The runtime
* itself has no header-bit flag distinguishing static from heap;
* if codegen ever loses the elision, inc on a static pointer is
* undefined behaviour. */
ailang_rc_header_t *hdr = header_of(payload);
*hdr += 1;
}
/* Refcount -= 1. If it reaches zero, frees the underlying block.
*
* This function performs only the *outer* free. The per-type
* `drop_<m>_<T>(ptr)` functions emitted by codegen (Iter 18c.4) are
* what walk pointer-typed children before calling `ailang_rc_dec` on
* the outer cell. For ADTs annotated `(drop-iterative)`, codegen
* emits a worklist loop using `ailang_drop_worklist_*` (Iter 18e)
* instead of recursive cascade, allowing arbitrarily deep ADT chains
* to free without stack growth.
*
* Calling `ailang_rc_dec` directly on a pointer whose type has boxed
* children will leak those children. Codegen routes through
* `drop_<m>_<T>` when it knows the type; this entry point is the
* shared bottom they all converge on. */
void ailang_rc_dec(void *payload) {
if (payload == NULL) {
return;
}
ailang_rc_header_t *hdr = header_of(payload);
if (*hdr == 0) {
fprintf(stderr,
"ailang_rc_dec: refcount underflow at %p (already zero)\n",
payload);
abort();
}
*hdr -= 1;
if (*hdr == 0) {
free(hdr);
g_rc_free_count++;
}
}
/* ---------------------------------------------------------------------------
* Iter 18e: drop worklist.
*
* Backs the `(drop-iterative)` data attribute. When a type is annotated
* `(drop-iterative)`, codegen emits `drop_<m>_<T>` with an iterative-with-
* worklist body in place of the recursive cascade. The worklist is a
* heap-allocated stretchy buffer of `void*` pointers — one entry per
* not-yet-processed cell. Each entry is mono-typed to T (the annotated
* ADT being dropped); fields of T whose type is `T` itself are pushed,
* fields whose type is a different ADT call that ADT's drop fn directly.
* (See `Emitter::emit_iterative_drop_fn_for_type` in the codegen for the
* IR shape and the same-type / different-type dispatch.)
*
* Strategy: heap-allocated buffer, doubled on overflow. We chose this
* over a stack-allocated small buffer (overcomplicates the IR seam — the
* codegen body would need to track "which buffer is live") and over Lean
* 4's "thread the worklist through one of the cell's own pointer slots"
* technique (requires the codegen to know which slot of each ctor is
* "free to repurpose" — non-trivial since AILang ctors are heterogeneous
* and slot 0 is always the tag). The runtime-helper approach keeps the
* IR-level body of `drop_<m>_<T>` small: three calls (new / push / pop /
* free) drive the loop.
*
* Precedent: Lean 4's `lean_dec_ref_cold` and Roc's iterative-free path
* both use a worklist to break tail recursion in their drop cascades.
* Lean threads the worklist through field slots (the "in-place" variant);
* we use a separate heap buffer because AILang's ctor layout makes slot
* repurposing fragile. The semantic invariant matches: every cell whose
* refcount reaches zero is dec'd exactly once, regardless of cascade
* depth, without consuming proportional C stack space.
*
* Single-threaded; non-atomic. Same scope as the rest of `runtime/rc.c`.
* --------------------------------------------------------------------------- */
typedef struct {
void **data; /* heap buffer of `cap` pointers; null once freed */
size_t len; /* number of live entries (always <= cap) */
size_t cap; /* current capacity in slots */
} ailang_drop_worklist_t;
/* Initial capacity. 16 slots * 8 bytes = 128 bytes — small enough that
* very-shallow drops don't waste memory, large enough that 16-deep
* cascades (very common) never realloc. Doubled on overflow. */
#define DROP_WORKLIST_INIT_CAP ((size_t)16)
void *ailang_drop_worklist_new(void) {
ailang_drop_worklist_t *wl = malloc(sizeof(ailang_drop_worklist_t));
if (wl == NULL) {
fprintf(stderr,
"ailang_drop_worklist_new: out of memory (header)\n");
abort();
}
wl->data = malloc(DROP_WORKLIST_INIT_CAP * sizeof(void *));
if (wl->data == NULL) {
fprintf(stderr,
"ailang_drop_worklist_new: out of memory (initial buffer)\n");
abort();
}
wl->len = 0;
wl->cap = DROP_WORKLIST_INIT_CAP;
return (void *)wl;
}
/* Push `payload` onto the worklist. Skips null payloads — pushed nulls
* would dispatch on `load i64, ptr null` at pop time and segfault, so
* we filter here. The check is symmetric with `ailang_rc_dec`'s null
* guard (a null payload is a no-op everywhere in the rc runtime). */
void ailang_drop_worklist_push(void *wl_opaque, void *payload) {
if (payload == NULL) {
return;
}
ailang_drop_worklist_t *wl = (ailang_drop_worklist_t *)wl_opaque;
if (wl->len == wl->cap) {
size_t new_cap = wl->cap * 2;
void **new_data = realloc(wl->data, new_cap * sizeof(void *));
if (new_data == NULL) {
fprintf(stderr,
"ailang_drop_worklist_push: out of memory (grow to %zu slots)\n",
new_cap);
abort();
}
wl->data = new_data;
wl->cap = new_cap;
}
wl->data[wl->len] = payload;
wl->len += 1;
}
/* Pop one payload from the worklist. Returns NULL when the worklist is
* empty. Since `push` filters nulls, a returned null is unambiguous and
* can be used by the IR body as the loop-exit sentinel. */
void *ailang_drop_worklist_pop(void *wl_opaque) {
ailang_drop_worklist_t *wl = (ailang_drop_worklist_t *)wl_opaque;
if (wl->len == 0) {
return NULL;
}
wl->len -= 1;
return wl->data[wl->len];
}
/* Free the worklist itself. Called once at the end of the iterative
* drop loop. Does NOT free any payloads still in the buffer — the IR
* body must drain the buffer first via repeated `pop` calls before
* calling free. */
void ailang_drop_worklist_free(void *wl_opaque) {
if (wl_opaque == NULL) {
return;
}
ailang_drop_worklist_t *wl = (ailang_drop_worklist_t *)wl_opaque;
free(wl->data);
free(wl);
}