Files
ww/test/wcc/833_inferred_array_global.c
Hojun-Cho ce3a25a0b4 test: contain sepwork scratch per-driver tmpdir, fix /tmp+in-repo leak (#8)
The wcc test drivers ran `ww build <bare-/tmp src>` with no -o, so the
compiler's <stem>.sepwork scratch landed beside the source and was never
cleaned: unbounded /tmp growth (2195 stale dirs observed) that fills tmpfs
and fabricates phantom test failures + silent harness aborts, and for
in-repo fixture builds leaked .sepwork into the tracked tree.

Each leaking build now writes its source + output inside a per-invocation
tmpdir, passes -o <tmpdir>/<stem> so the .sepwork lands inside it, and
rm -rf's the tmpdir on every exit path -- including fopen-fail and the
expected-fail reject builds (scratch is mkdir'd before the build can fail).
`ww run` and explicit-`-o`/byte-id helpers are left as-is; the 990/993
byte-id comparison logic is byte-for-byte unchanged.

Two items filed separately (this commit holds the no-Makefile / no-main.c
rail):
- #13: a stale <src>.s byte-id readback (749) silently no-ops since
  separate-compile emits .s to <ostem>.sepwork/__root.s; documented inline.
- #14: build-system Makefile recipes build selfhost/cmd/*/main.ww with no
  -o and leak main.sepwork in-tree (bounded, gitignored; own commit).

One concern -- sepwork leak hygiene -- across 228 drivers; uniform
transform applied per-file and two-round reviewed. make test: all 402
passed, zero net-new /tmp scratch, zero test-driven in-repo .sepwork.
2026-06-22 23:29:39 +09:00

239 lines
7.1 KiB
C

/*
* 833_inferred_array_global — an inferred-type (annotation-less) module-global
* `let xs = [10, 20, 30];` whose init is an ARRAY literal must compile and run
* exactly as the explicit-typed `let xs: [3]int = [10, 20, 30]` does. The
* array twin of #135/#150-B (inferred float / inferred scalar global).
* WWSTAGE-ONLY bug (cstage already correct post-#150-B).
*
* Root (selfhost/cmd/wcc/check.ww exprtype N_ARRLIT, ~3294): for an inferred
* array let, exprtype synthesizes the array type — an N_TARRAY whose lhs is
* the element TNAME and whose rhs is a fresh N_INTLIT count node — and stamps
* e.type_ and arr.type_, but NEVER the count node's type_. checkletassign
* plants this synthesized arr on the inferred let's n.lhs; the pass-3
* asserttyped walker then descends arr.rhs (the count N_INTLIT, an expr kind)
* with type_ == nil and trips `asserttyped: int` — a HARD loud build failure.
* wwstage could not compile an inferred array global at all. An explicit
* `[3]int` works because resolvewalk stamps its parser-built count node.
*
* The fix (check.ww, checker-only): stamp the synthesized count node's type_.
* The element TNAME needs no stamp (N_TNAME is not an asserttyped expr kind).
* cgen reads arr.rhs.uval, so the stamp is byte-id-inert: once the checker
* accepts the inferred array identically to an explicit one, the existing
* [N]T-global cgen path emits the IDENTICAL `.s`. cstage is UNTOUCHED.
*
* row | shape | want
* -----------+---------------------------------------------+-----
* int_idx | let xs = [10,20,30]; xs[1] (the bug) | 20
* int_len | let xs = [10,20,30]; xs.len | 3
* u8_elem | let bs = [1u8,2u8,3u8]; bs[2] (narrow elem) | 3
* ctrl_expl | let xs: [3]int = [10,20,30]; xs[1] (explicit)| 20
*
* Pre-fix the inferred rows ran wwstage=LOUD (asserttyped exit 1) and
* cstage=correct (cs≠ww); post-fix all four run in both stages and the
* inferred rows' `.s` is byte-identical between stages (and to the explicit
* form). ctrl_expl guards the explicit-[N]T path didn't regress and is the
* byte-id reference the inferred rows must match.
*/
#include <stdio.h>
#include <stdlib.h>
#include <unistd.h>
#include <sys/stat.h>
#include <sys/wait.h>
static int
runwait(const char *cmd)
{
int rc = system(cmd);
if (rc == -1) return -1;
if (WIFEXITED(rc)) return WEXITSTATUS(rc);
return -1;
}
struct row { const char *label; const char *src; int want; };
static const struct row rows[] = {
/* int_idx — the bug: inferred array global indexed, cast to int.
* Pre-fix wwstage tripped asserttyped (exit 1); cstage 20. */
{ "int_idx",
"package main;\n"
"let xs = [10, 20, 30];\n"
"export fn main() i32 = {\n"
"\treturn xs[1]: i32;\n"
"};\n",
20 },
/* int_len — inferred array global .len pseudo-field read. */
{ "int_len",
"package main;\n"
"let xs = [10, 20, 30];\n"
"export fn main() i32 = {\n"
"\treturn xs.len: i32;\n"
"};\n",
3 },
/* u8_elem — narrow (u8-default) element; the synthesized element
* type defaults to u8 here, exercising a non-int stride. */
{ "u8_elem",
"package main;\n"
"let bs = [1u8, 2u8, 3u8];\n"
"export fn main() i32 = {\n"
"\treturn bs[2]: i32;\n"
"};\n",
3 },
/* ctrl_expl — explicit [3]int annotation; already worked. The
* byte-id reference the inferred int rows must match. No-regress. */
{ "ctrl_expl",
"package main;\n"
"let xs: [3]int = [10, 20, 30];\n"
"export fn main() i32 = {\n"
"\treturn xs[1]: i32;\n"
"};\n",
20 },
};
static int
run_driver(const char *driver, const struct row *r, int i)
{
char tmpdir[64], src[128], outbin[128], rmcmd[160], cmd[1024];
snprintf(tmpdir, sizeof tmpdir, "/tmp/iag_%d_d_%d", getpid(), i);
mkdir(tmpdir, 0755);
snprintf(src, sizeof src, "%s/iag_%d_%d.ww", tmpdir, getpid(), i);
snprintf(outbin, sizeof outbin, "%s/iag_%d_%d", tmpdir, getpid(), i);
snprintf(rmcmd, sizeof rmcmd, "rm -rf %s", tmpdir);
FILE *f = fopen(src, "wb");
if (!f) { runwait(rmcmd); return -1; }
fputs(r->src, f);
fclose(f);
snprintf(cmd, sizeof cmd, "%s build -o %s %s 2>/dev/null",
driver, outbin, src);
if (runwait(cmd) != 0) {
fprintf(stderr, "row[%s]: build via %s failed\n",
r->label, driver);
runwait(rmcmd);
return -1;
}
int got = runwait(outbin);
runwait(rmcmd);
return got;
}
/* asm_byte_identical — w6c vs w6c_ww .s for the same source must match. */
static int
asm_byte_identical(const char *bin, const struct row *r, int i)
{
char src[64], cs[64], ws[64], cmd[1024];
snprintf(src, sizeof src, "/tmp/iag_asm_%d_%d.ww", getpid(), i);
snprintf(cs, sizeof cs, "/tmp/iag_asm_%d_%d_c.s", getpid(), i);
snprintf(ws, sizeof ws, "/tmp/iag_asm_%d_%d_w.s", getpid(), i);
FILE *f = fopen(src, "wb");
if (!f) return -1;
fputs(r->src, f);
fclose(f);
snprintf(cmd, sizeof cmd, "%s/w6c -o %s %s 2>/dev/null", bin, cs, src);
if (runwait(cmd) != 0) {
fprintf(stderr, "row[%s]: w6c errored\n", r->label);
unlink(src);
return -1;
}
snprintf(cmd, sizeof cmd, "%s/w6c_ww -o %s %s 2>/dev/null",
bin, ws, src);
if (runwait(cmd) != 0) {
fprintf(stderr, "row[%s]: w6c_ww errored\n", r->label);
unlink(src); unlink(cs);
return -1;
}
FILE *fc = fopen(cs, "rb");
FILE *fw = fopen(ws, "rb");
int rc = 0;
if (!fc || !fw) {
rc = -1;
} else {
for (;;) {
int a = fgetc(fc);
int b = fgetc(fw);
if (a != b) { rc = -1; break; }
if (a == EOF) break;
}
}
if (fc) fclose(fc);
if (fw) fclose(fw);
if (rc != 0)
fprintf(stderr, "row[%s]: cstage vs wwstage asm differs\n",
r->label);
unlink(src); unlink(cs); unlink(ws);
return rc;
}
int
main(void)
{
const char *bin = getenv("BIN");
if (!bin) bin = "out/bin";
char absbin[1024];
if (bin[0] != '/') {
char cwd[1024];
if (getcwd(cwd, sizeof cwd) == NULL) return 1;
snprintf(absbin, sizeof absbin, "%s/%s", cwd, bin);
bin = absbin;
}
char cdrv[1024];
snprintf(cdrv, sizeof cdrv, "%s/ww", bin);
char wdrv[1024];
snprintf(wdrv, sizeof wdrv, "%s/ww_ww", bin);
struct { const char *name; const char *path; int gated_on_existence; }
drivers[] = {
{ "cstage", cdrv, 0 },
{ "wwstage", wdrv, 1 },
{ NULL, NULL, 0 },
};
int n = (int)(sizeof rows / sizeof rows[0]);
int total = 0, fail = 0;
for (int d = 0; drivers[d].name; d++) {
if (drivers[d].gated_on_existence
&& access(drivers[d].path, X_OK) != 0) {
fprintf(stderr, "inferred_array_global: skip %s (no %s)\n",
drivers[d].name, drivers[d].path);
continue;
}
for (int i = 0; i < n; i++) {
int got = run_driver(drivers[d].path, &rows[i], i);
total++;
if (got != rows[i].want) {
fprintf(stderr,
"inferred_array_global[%s][%s]: exit=%d want=%d\n",
drivers[d].name, rows[i].label,
got, rows[i].want);
fail++;
}
}
}
if (access(wdrv, X_OK) == 0) {
for (int i = 0; i < n; i++) {
total++;
if (asm_byte_identical(bin, &rows[i], i) != 0)
fail++;
}
}
if (fail) {
fprintf(stderr,
"inferred_array_global: %d/%d fixtures failed\n", fail, total);
return 1;
}
printf("inferred_array_global: %d/%d ok\n", total, total);
return 0;
}