Support splitting exhaustive tests across cores
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@ -12,10 +12,12 @@
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void test_exhaustive_recovery_sign(const secp256k1_context *ctx, const secp256k1_ge *group) {
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int i, j, k;
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uint64_t iter = 0;
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/* Loop */
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for (i = 1; i < EXHAUSTIVE_TEST_ORDER; i++) { /* message */
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for (j = 1; j < EXHAUSTIVE_TEST_ORDER; j++) { /* key */
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if (skip_section(&iter)) continue;
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for (k = 1; k < EXHAUSTIVE_TEST_ORDER; k++) { /* nonce */
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const int starting_k = k;
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secp256k1_fe r_dot_y_normalized;
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@ -80,6 +82,7 @@ void test_exhaustive_recovery_sign(const secp256k1_context *ctx, const secp256k1
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void test_exhaustive_recovery_verify(const secp256k1_context *ctx, const secp256k1_ge *group) {
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/* This is essentially a copy of test_exhaustive_verify, with recovery added */
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int s, r, msg, key;
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uint64_t iter = 0;
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for (s = 1; s < EXHAUSTIVE_TEST_ORDER; s++) {
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for (r = 1; r < EXHAUSTIVE_TEST_ORDER; r++) {
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for (msg = 1; msg < EXHAUSTIVE_TEST_ORDER; msg++) {
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@ -94,6 +97,8 @@ void test_exhaustive_recovery_verify(const secp256k1_context *ctx, const secp256
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int k, should_verify;
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unsigned char msg32[32];
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if (skip_section(&iter)) continue;
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secp256k1_scalar_set_int(&s_s, s);
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secp256k1_scalar_set_int(&r_s, r);
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secp256k1_scalar_set_int(&msg_s, msg);
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@ -114,7 +114,7 @@ static void secp256k1_rand_flip(unsigned char *b, size_t len) {
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static void secp256k1_rand_init(const char* hexseed) {
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unsigned char seed16[16] = {0};
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if (hexseed) {
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if (hexseed && strlen(hexseed) != 0) {
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int pos = 0;
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while (pos < 16 && hexseed[0] != 0 && hexseed[1] != 0) {
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unsigned short sh;
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@ -66,6 +66,15 @@ void random_fe(secp256k1_fe *x) {
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}
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/** END stolen from tests.c */
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static uint32_t num_cores = 1;
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static uint32_t this_core = 0;
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SECP256K1_INLINE static int skip_section(uint64_t* iter) {
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if (num_cores == 1) return 0;
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*iter += 0xe7037ed1a0b428dbULL;
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return ((((uint32_t)*iter ^ (*iter >> 32)) * num_cores) >> 32) != this_core;
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}
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int secp256k1_nonce_function_smallint(unsigned char *nonce32, const unsigned char *msg32,
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const unsigned char *key32, const unsigned char *algo16,
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void *data, unsigned int attempt) {
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@ -99,6 +108,7 @@ void test_exhaustive_endomorphism(const secp256k1_ge *group) {
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void test_exhaustive_addition(const secp256k1_ge *group, const secp256k1_gej *groupj) {
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int i, j;
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uint64_t iter = 0;
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/* Sanity-check (and check infinity functions) */
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CHECK(secp256k1_ge_is_infinity(&group[0]));
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@ -111,6 +121,7 @@ void test_exhaustive_addition(const secp256k1_ge *group, const secp256k1_gej *gr
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/* Check all addition formulae */
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for (j = 0; j < EXHAUSTIVE_TEST_ORDER; j++) {
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secp256k1_fe fe_inv;
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if (skip_section(&iter)) continue;
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secp256k1_fe_inv(&fe_inv, &groupj[j].z);
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for (i = 0; i < EXHAUSTIVE_TEST_ORDER; i++) {
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secp256k1_ge zless_gej;
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@ -157,8 +168,10 @@ void test_exhaustive_addition(const secp256k1_ge *group, const secp256k1_gej *gr
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void test_exhaustive_ecmult(const secp256k1_context *ctx, const secp256k1_ge *group, const secp256k1_gej *groupj) {
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int i, j, r_log;
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uint64_t iter = 0;
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for (r_log = 1; r_log < EXHAUSTIVE_TEST_ORDER; r_log++) {
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for (j = 0; j < EXHAUSTIVE_TEST_ORDER; j++) {
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if (skip_section(&iter)) continue;
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for (i = 0; i < EXHAUSTIVE_TEST_ORDER; i++) {
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secp256k1_gej tmp;
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secp256k1_scalar na, ng;
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@ -191,11 +204,13 @@ static int ecmult_multi_callback(secp256k1_scalar *sc, secp256k1_ge *pt, size_t
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void test_exhaustive_ecmult_multi(const secp256k1_context *ctx, const secp256k1_ge *group) {
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int i, j, k, x, y;
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uint64_t iter = 0;
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secp256k1_scratch *scratch = secp256k1_scratch_create(&ctx->error_callback, 4096);
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for (i = 0; i < EXHAUSTIVE_TEST_ORDER; i++) {
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for (j = 0; j < EXHAUSTIVE_TEST_ORDER; j++) {
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for (k = 0; k < EXHAUSTIVE_TEST_ORDER; k++) {
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for (x = 0; x < EXHAUSTIVE_TEST_ORDER; x++) {
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if (skip_section(&iter)) continue;
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for (y = 0; y < EXHAUSTIVE_TEST_ORDER; y++) {
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secp256k1_gej tmp;
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secp256k1_scalar g_sc;
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@ -229,6 +244,7 @@ void r_from_k(secp256k1_scalar *r, const secp256k1_ge *group, int k, int* overfl
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void test_exhaustive_verify(const secp256k1_context *ctx, const secp256k1_ge *group) {
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int s, r, msg, key;
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uint64_t iter = 0;
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for (s = 1; s < EXHAUSTIVE_TEST_ORDER; s++) {
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for (r = 1; r < EXHAUSTIVE_TEST_ORDER; r++) {
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for (msg = 1; msg < EXHAUSTIVE_TEST_ORDER; msg++) {
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@ -241,6 +257,8 @@ void test_exhaustive_verify(const secp256k1_context *ctx, const secp256k1_ge *gr
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int k, should_verify;
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unsigned char msg32[32];
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if (skip_section(&iter)) continue;
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secp256k1_scalar_set_int(&s_s, s);
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secp256k1_scalar_set_int(&r_s, r);
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secp256k1_scalar_set_int(&msg_s, msg);
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@ -279,10 +297,12 @@ void test_exhaustive_verify(const secp256k1_context *ctx, const secp256k1_ge *gr
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void test_exhaustive_sign(const secp256k1_context *ctx, const secp256k1_ge *group) {
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int i, j, k;
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uint64_t iter = 0;
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/* Loop */
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for (i = 1; i < EXHAUSTIVE_TEST_ORDER; i++) { /* message */
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for (j = 1; j < EXHAUSTIVE_TEST_ORDER; j++) { /* key */
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if (skip_section(&iter)) continue;
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for (k = 1; k < EXHAUSTIVE_TEST_ORDER; k++) { /* nonce */
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const int starting_k = k;
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secp256k1_ecdsa_signature sig;
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@ -344,6 +364,17 @@ int main(int argc, char** argv) {
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/* find random seed */
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secp256k1_rand_init(argc > 2 ? argv[2] : NULL);
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/* set up split processing */
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if (argc > 4) {
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num_cores = strtol(argv[3], NULL, 0);
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this_core = strtol(argv[4], NULL, 0);
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if (num_cores < 1 || this_core >= num_cores) {
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fprintf(stderr, "Usage: %s [count] [seed] [numcores] [thiscore]\n", argv[0]);
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return 1;
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}
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printf("running tests for core %lu (out of [0..%lu])\n", (unsigned long)this_core, (unsigned long)num_cores - 1);
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}
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while (count--) {
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/* Build context */
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ctx = secp256k1_context_create(SECP256K1_CONTEXT_SIGN | SECP256K1_CONTEXT_VERIFY);
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