cgindex read one word for a str/slice ELEMENT of a chained index (xs[i][j], f().s[i]) — the element-kind gate keyed on node shape and missed non-simple bases, dropping the 24B/16B header load (review finding #22). Key on the element-type stamp; 989_chainidx_run pins cs==ww (red 3/8 pre-fix).
197 lines
6.1 KiB
C
197 lines
6.1 KiB
C
/*
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* 989_chainidx_run — F7-c3 (#22): a CHAINED index `m[i][k]` whose element
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* is a str/slice must load the full 24B/16B header, both stages.
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*
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* THE BUG (cat-A silent miscompile, gate-blind): cgindex
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* (selfhost/cmd/wcc/cgenexpr.ww) has a dedicated arm for a chained index
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* (the outer index's base is itself an N_INDEX). That arm read the
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* checker-stamped element tinfo for esz/signedness/float-ness but NOT for
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* elemisstr/elemisslice — so a chained index over [N][M]str / [N][M][]T
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* loaded only the .ptr word and left .len/.cap as stale BX/CX. cstage's
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* idx_eff path classifies the element uniformly (type_isstr/type_isslice),
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* so it loaded the full header and ran correct — the cat-A divergence.
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* 990-997 stay green because the bootstrap corpus never chains an index
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* to a str/slice element; only a runtime row catches it. THE FIX: the
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* chained-index arm stamps elemisstr/elemisslice off the SAME element
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* tinfo it already reads for esz, aligning wwstage UP.
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*
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* NB: the [N][M] arrays are built by per-element store — the nested array
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* literal `[[..],[..]]` is independently #270-1c-blocked (orthogonal).
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*
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* Rows (each builds+runs on cstage `ww` and, when present, wwstage `ww_ww`;
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* rule-10 — both stages must agree AND hit want_exit):
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* row | shape | want
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* -------------------+------------------------------------+------
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* chain_str_read | let s = m[1][1]; len(s) m:[2][2]str | 5 [#22 bug]
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* chain_str_call | take(m[1][1]) m:[2][2]str | 5 [#22+#46:
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* | needs the c2 push AND this c3 read]
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* chain_slice_read | let xs = m[1][1]; len(xs) m:[2][2][]int | 7 [#22 bug]
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* chain_scalar_read | m[1][1] m:[2][2]int | 42 (control:
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* | the scalar chained index the arm already handled —
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* | c3 must not regress its byte-id)
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*/
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include <unistd.h>
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#include <sys/stat.h>
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#include <sys/wait.h>
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static int
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runwait(const char *cmd)
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{
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int rc = system(cmd);
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if (rc == -1) return -1;
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if (WIFEXITED(rc)) return WEXITSTATUS(rc);
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return -1;
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}
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struct row {
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const char *label;
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const char *src;
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int want_exit;
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};
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static const struct row rows[] = {
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/* (1) #22 — chained str element READ. m[1][1] = "ddddd", len 5. The
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* chained-index arm dropped the .len load → garbage. */
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{ "chain_str_read",
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"package main;\n"
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"export fn main() int = {\n"
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" let m: [2][2]str;\n"
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" m[0][0] = \"aa\"; m[0][1] = \"bbb\";\n"
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" m[1][0] = \"c\"; m[1][1] = \"ddddd\";\n"
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" let s: str = m[1][1];\n"
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" return len(s): int;\n"
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"};\n",
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5 },
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/* (2) #22+#46 — chained str element as a CALL ARG. Needs both the c2
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* push-side recognizer (nodeisstr N_INDEX arm) AND this c3 read-side
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* header load; pinned here where both halves are present. len 5. */
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{ "chain_str_call",
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"package main;\n"
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"fn take(s: str) int = { return len(s): int; };\n"
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"export fn main() int = {\n"
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" let m: [2][2]str;\n"
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" m[0][0] = \"aa\"; m[0][1] = \"bbb\";\n"
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" m[1][0] = \"c\"; m[1][1] = \"ddddd\";\n"
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" return take(m[1][1]);\n"
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"};\n",
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5 },
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/* (3) #22 — chained slice element READ. m[1][1] = b (len 7). The arm
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* dropped the .len/.cap load for the 24B slice header. */
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{ "chain_slice_read",
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"package main;\n"
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"export fn main() int = {\n"
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" let a: []int = [1, 2];\n"
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" let b: []int = [9, 9, 9, 9, 9, 9, 9];\n"
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" let m: [2][2][]int;\n"
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" m[0][0] = a; m[0][1] = a;\n"
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" m[1][0] = a; m[1][1] = b;\n"
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" let xs: []int = m[1][1];\n"
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" return len(xs): int;\n"
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"};\n",
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7 },
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/* (4) control — chained SCALAR element. The arm already handled the
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* scalar esz; c3 must not regress its byte-id. m[1][1] == 42. */
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{ "chain_scalar_read",
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"package main;\n"
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"export fn main() int = {\n"
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" let m: [2][2]int;\n"
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" m[0][0] = 1; m[0][1] = 2;\n"
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" m[1][0] = 3; m[1][1] = 42;\n"
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" return m[1][1]: int;\n"
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"};\n",
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42 },
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};
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/* run_build — build+run `src` via `driver`; returns the binary's exit
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* code, or -1 on a build failure. */
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static int
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run_build(const char *driver, const struct row *r, int i)
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{
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char src[64], tmpdir[64], cmd[1024];
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snprintf(src, sizeof src, "/tmp/chainidx_%d_%d.ww", getpid(), i);
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snprintf(tmpdir, sizeof tmpdir, "/tmp/chainidx_%d_d_%d", getpid(), i);
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FILE *f = fopen(src, "wb");
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if (!f) return -2;
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fputs(r->src, f);
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fclose(f);
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mkdir(tmpdir, 0755);
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snprintf(cmd, sizeof cmd, "cd %s && %s build %s 2>/dev/null",
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tmpdir, driver, src);
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int brc = runwait(cmd);
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const char *base = strrchr(src, '/');
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base = base ? base + 1 : src;
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char outbin[128];
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snprintf(outbin, sizeof outbin, "%s/%s", tmpdir, base);
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char *dot = strrchr(outbin, '.');
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if (dot && strcmp(dot, ".ww") == 0) *dot = '\0';
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int got = -1;
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if (brc == 0) got = runwait(outbin);
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unlink(src); unlink(outbin); rmdir(tmpdir);
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return brc == 0 ? got : -1;
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}
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int
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main(void)
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{
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const char *bin = getenv("BIN");
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if (!bin) bin = "out/bin";
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char absbin[1024];
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if (bin[0] != '/') {
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char cwd[1024];
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if (getcwd(cwd, sizeof cwd) == NULL) return 1;
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snprintf(absbin, sizeof absbin, "%s/%s", cwd, bin);
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bin = absbin;
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}
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char cdrv[1024], wdrv[1024];
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snprintf(cdrv, sizeof cdrv, "%s/ww", bin);
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snprintf(wdrv, sizeof wdrv, "%s/ww_ww", bin);
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struct { const char *name; const char *drv; int gated; }
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drivers[] = {
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{ "cstage", cdrv, 0 },
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{ "wwstage", wdrv, 1 },
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{ NULL, NULL, 0 },
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};
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int n = (int)(sizeof rows / sizeof rows[0]);
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int total = 0, fail = 0;
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for (int d = 0; drivers[d].name; d++) {
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if (drivers[d].gated && access(drivers[d].drv, X_OK) != 0) {
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fprintf(stderr, "chainidx_run: skip %s (no %s)\n",
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drivers[d].name, drivers[d].drv);
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continue;
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}
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for (int i = 0; i < n; i++) {
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total++;
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int got = run_build(drivers[d].drv, &rows[i], i);
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if (got != rows[i].want_exit) {
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fprintf(stderr, "chainidx_run[%s][%s]: exit=%d "
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"want=%d\n", drivers[d].name, rows[i].label,
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got, rows[i].want_exit);
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fail++;
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}
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}
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}
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if (fail) {
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fprintf(stderr, "chainidx_run: %d/%d fixtures failed\n",
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fail, total);
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return 1;
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}
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printf("chainidx_run: %d/%d ok\n", total, total);
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return 0;
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}
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