mirror of
https://github.com/asg017/sqlite-vec.git
synced 2026-04-25 08:46:49 +02:00
165 lines
5.5 KiB
C
165 lines
5.5 KiB
C
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/**
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* Fuzz target for DiskANN int8 quantizer edge cases.
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*
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* The binary quantizer is simple (sign bit), but the int8 quantizer has
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* interesting arithmetic:
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* i8_val = (i8)(((src - (-1.0f)) / step) - 128.0f)
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* where step = 2.0f / 255.0f
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*
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* Edge cases in this formula:
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* - src values outside [-1, 1] cause clamping issues (no explicit clamp!)
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* - src = NaN, +Inf, -Inf (from corrupted vectors or div-by-zero)
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* - src very close to boundaries (-1.0, 1.0) -- rounding
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* - The cast to i8 can overflow for extreme src values
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*
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* Also exercises int8 distance functions:
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* - distance_l2_sqr_int8: accumulates squared differences, possible overflow
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* - distance_cosine_int8: dot product with normalization
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* - distance_l1_int8: absolute differences
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*
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* This fuzzer also tests the cosine distance metric path which the
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* other fuzzers (using L2 default) don't cover.
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*/
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#include <stdint.h>
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#include <stddef.h>
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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 <math.h>
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#include "sqlite-vec.h"
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#include "sqlite3.h"
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#include <assert.h>
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static uint8_t fuzz_byte(const uint8_t **data, size_t *size, uint8_t def) {
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if (*size == 0) return def;
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uint8_t b = **data;
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(*data)++;
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(*size)--;
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return b;
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}
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static float fuzz_extreme_float(const uint8_t **data, size_t *size) {
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uint8_t mode = fuzz_byte(data, size, 0) % 8;
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uint8_t raw = fuzz_byte(data, size, 0);
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switch (mode) {
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case 0: return (float)((int8_t)raw) / 10.0f; /* Normal range */
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case 1: return (float)((int8_t)raw) * 100.0f; /* Large values */
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case 2: return (float)((int8_t)raw) / 1000.0f; /* Tiny values near 0 */
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case 3: return -1.0f; /* Exact boundary */
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case 4: return 1.0f; /* Exact boundary */
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case 5: return 0.0f; /* Zero */
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case 6: return (float)raw / 255.0f; /* [0, 1] range */
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case 7: return -(float)raw / 255.0f; /* [-1, 0] range */
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}
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return 0.0f;
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}
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int LLVMFuzzerTestOneInput(const uint8_t *data, size_t size) {
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if (size < 40) return 0;
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int rc;
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sqlite3 *db;
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rc = sqlite3_open(":memory:", &db);
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assert(rc == SQLITE_OK);
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rc = sqlite3_vec_init(db, NULL, NULL);
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assert(rc == SQLITE_OK);
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/* Test both distance metrics with int8 quantizer */
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uint8_t metric_choice = fuzz_byte(&data, &size, 0) % 2;
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const char *metric = metric_choice ? "cosine" : "L2";
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int dims = 8 + (fuzz_byte(&data, &size, 0) % 3) * 8; /* 8, 16, or 24 */
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char sql[512];
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snprintf(sql, sizeof(sql),
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"CREATE VIRTUAL TABLE v USING vec0("
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"emb float[%d] distance_metric=%s "
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"INDEXED BY diskann(neighbor_quantizer=int8, n_neighbors=8, search_list_size=16))",
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dims, metric);
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rc = sqlite3_exec(db, sql, NULL, NULL, NULL);
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if (rc != SQLITE_OK) { sqlite3_close(db); return 0; }
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sqlite3_stmt *stmtInsert = NULL, *stmtKnn = NULL, *stmtDelete = NULL;
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sqlite3_prepare_v2(db,
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"INSERT INTO v(rowid, emb) VALUES (?, ?)", -1, &stmtInsert, NULL);
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sqlite3_prepare_v2(db,
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"SELECT rowid, distance FROM v WHERE emb MATCH ? AND k = ?",
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-1, &stmtKnn, NULL);
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sqlite3_prepare_v2(db,
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"DELETE FROM v WHERE rowid = ?", -1, &stmtDelete, NULL);
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if (!stmtInsert || !stmtKnn || !stmtDelete) goto cleanup;
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/* Insert vectors with extreme float values to stress quantization */
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float *vec = malloc(dims * sizeof(float));
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if (!vec) goto cleanup;
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for (int i = 1; i <= 16; i++) {
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for (int j = 0; j < dims; j++) {
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vec[j] = fuzz_extreme_float(&data, &size);
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}
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sqlite3_reset(stmtInsert);
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sqlite3_bind_int64(stmtInsert, 1, i);
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sqlite3_bind_blob(stmtInsert, 2, vec, dims * sizeof(float), SQLITE_TRANSIENT);
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sqlite3_step(stmtInsert);
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}
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/* Fuzz-driven operations */
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while (size >= 2) {
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uint8_t op = fuzz_byte(&data, &size, 0) % 4;
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uint8_t param = fuzz_byte(&data, &size, 0);
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switch (op) {
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case 0: { /* KNN with extreme query values */
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for (int j = 0; j < dims; j++) {
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vec[j] = fuzz_extreme_float(&data, &size);
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}
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int k = (param % 10) + 1;
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sqlite3_reset(stmtKnn);
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sqlite3_bind_blob(stmtKnn, 1, vec, dims * sizeof(float), SQLITE_TRANSIENT);
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sqlite3_bind_int(stmtKnn, 2, k);
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while (sqlite3_step(stmtKnn) == SQLITE_ROW) {}
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break;
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}
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case 1: { /* Insert with extreme values */
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int64_t rowid = (int64_t)(param % 32) + 1;
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for (int j = 0; j < dims; j++) {
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vec[j] = fuzz_extreme_float(&data, &size);
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}
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sqlite3_reset(stmtInsert);
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sqlite3_bind_int64(stmtInsert, 1, rowid);
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sqlite3_bind_blob(stmtInsert, 2, vec, dims * sizeof(float), SQLITE_TRANSIENT);
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sqlite3_step(stmtInsert);
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break;
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}
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case 2: { /* Delete */
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int64_t rowid = (int64_t)(param % 32) + 1;
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sqlite3_reset(stmtDelete);
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sqlite3_bind_int64(stmtDelete, 1, rowid);
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sqlite3_step(stmtDelete);
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break;
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}
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case 3: { /* KNN with all-zero or all-same-value query */
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float val = (param % 3 == 0) ? 0.0f :
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(param % 3 == 1) ? 1.0f : -1.0f;
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for (int j = 0; j < dims; j++) vec[j] = val;
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sqlite3_reset(stmtKnn);
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sqlite3_bind_blob(stmtKnn, 1, vec, dims * sizeof(float), SQLITE_TRANSIENT);
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sqlite3_bind_int(stmtKnn, 2, 5);
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while (sqlite3_step(stmtKnn) == SQLITE_ROW) {}
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break;
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}
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}
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}
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free(vec);
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cleanup:
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sqlite3_finalize(stmtInsert);
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sqlite3_finalize(stmtKnn);
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sqlite3_finalize(stmtDelete);
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sqlite3_close(db);
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return 0;
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}
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