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196 lines
6.7 KiB
196 lines
6.7 KiB
/********************************************************************** |
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* Copyright (c) 2017 Pieter Wuille * |
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* Distributed under the MIT software license, see the accompanying * |
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* file COPYING or http://www.opensource.org/licenses/mit-license.php.* |
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**********************************************************************/ |
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#include <stdio.h> |
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#include "include/secp256k1.h" |
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#include "util.h" |
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#include "hash_impl.h" |
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#include "num_impl.h" |
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#include "field_impl.h" |
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#include "group_impl.h" |
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#include "scalar_impl.h" |
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#include "ecmult_impl.h" |
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#include "bench.h" |
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#include "secp256k1.c" |
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#define POINTS 32768 |
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#define ITERS 10000 |
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typedef struct { |
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/* Setup once in advance */ |
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secp256k1_context* ctx; |
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secp256k1_scratch_space* scratch; |
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secp256k1_scalar* scalars; |
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secp256k1_ge* pubkeys; |
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secp256k1_scalar* seckeys; |
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secp256k1_gej* expected_output; |
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secp256k1_ecmult_multi_func ecmult_multi; |
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/* Changes per test */ |
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size_t count; |
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int includes_g; |
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/* Changes per test iteration */ |
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size_t offset1; |
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size_t offset2; |
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/* Test output. */ |
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secp256k1_gej* output; |
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} bench_data; |
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static int bench_callback(secp256k1_scalar* sc, secp256k1_ge* ge, size_t idx, void* arg) { |
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bench_data* data = (bench_data*)arg; |
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if (data->includes_g) ++idx; |
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if (idx == 0) { |
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*sc = data->scalars[data->offset1]; |
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*ge = secp256k1_ge_const_g; |
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} else { |
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*sc = data->scalars[(data->offset1 + idx) % POINTS]; |
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*ge = data->pubkeys[(data->offset2 + idx - 1) % POINTS]; |
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} |
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return 1; |
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} |
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static void bench_ecmult(void* arg) { |
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bench_data* data = (bench_data*)arg; |
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size_t count = data->count; |
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int includes_g = data->includes_g; |
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size_t iters = 1 + ITERS / count; |
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size_t iter; |
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for (iter = 0; iter < iters; ++iter) { |
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data->ecmult_multi(&data->ctx->ecmult_ctx, data->scratch, &data->output[iter], data->includes_g ? &data->scalars[data->offset1] : NULL, bench_callback, arg, count - includes_g); |
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data->offset1 = (data->offset1 + count) % POINTS; |
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data->offset2 = (data->offset2 + count - 1) % POINTS; |
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} |
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} |
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static void bench_ecmult_setup(void* arg) { |
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bench_data* data = (bench_data*)arg; |
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data->offset1 = (data->count * 0x537b7f6f + 0x8f66a481) % POINTS; |
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data->offset2 = (data->count * 0x7f6f537b + 0x6a1a8f49) % POINTS; |
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} |
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static void bench_ecmult_teardown(void* arg) { |
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bench_data* data = (bench_data*)arg; |
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size_t iters = 1 + ITERS / data->count; |
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size_t iter; |
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/* Verify the results in teardown, to avoid doing comparisons while benchmarking. */ |
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for (iter = 0; iter < iters; ++iter) { |
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secp256k1_gej tmp; |
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secp256k1_gej_add_var(&tmp, &data->output[iter], &data->expected_output[iter], NULL); |
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CHECK(secp256k1_gej_is_infinity(&tmp)); |
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} |
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} |
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static void generate_scalar(uint32_t num, secp256k1_scalar* scalar) { |
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secp256k1_sha256 sha256; |
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unsigned char c[11] = {'e', 'c', 'm', 'u', 'l', 't', 0, 0, 0, 0}; |
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unsigned char buf[32]; |
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int overflow = 0; |
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c[6] = num; |
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c[7] = num >> 8; |
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c[8] = num >> 16; |
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c[9] = num >> 24; |
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secp256k1_sha256_initialize(&sha256); |
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secp256k1_sha256_write(&sha256, c, sizeof(c)); |
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secp256k1_sha256_finalize(&sha256, buf); |
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secp256k1_scalar_set_b32(scalar, buf, &overflow); |
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CHECK(!overflow); |
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} |
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static void run_test(bench_data* data, size_t count, int includes_g) { |
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char str[32]; |
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static const secp256k1_scalar zero = SECP256K1_SCALAR_CONST(0, 0, 0, 0, 0, 0, 0, 0); |
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size_t iters = 1 + ITERS / count; |
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size_t iter; |
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data->count = count; |
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data->includes_g = includes_g; |
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/* Compute (the negation of) the expected results directly. */ |
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data->offset1 = (data->count * 0x537b7f6f + 0x8f66a481) % POINTS; |
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data->offset2 = (data->count * 0x7f6f537b + 0x6a1a8f49) % POINTS; |
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for (iter = 0; iter < iters; ++iter) { |
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secp256k1_scalar tmp; |
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secp256k1_scalar total = data->scalars[(data->offset1++) % POINTS]; |
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size_t i = 0; |
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for (i = 0; i + 1 < count; ++i) { |
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secp256k1_scalar_mul(&tmp, &data->seckeys[(data->offset2++) % POINTS], &data->scalars[(data->offset1++) % POINTS]); |
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secp256k1_scalar_add(&total, &total, &tmp); |
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} |
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secp256k1_scalar_negate(&total, &total); |
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secp256k1_ecmult(&data->ctx->ecmult_ctx, &data->expected_output[iter], NULL, &zero, &total); |
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} |
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/* Run the benchmark. */ |
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sprintf(str, includes_g ? "ecmult_%ig" : "ecmult_%i", (int)count); |
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run_benchmark(str, bench_ecmult, bench_ecmult_setup, bench_ecmult_teardown, data, 10, count * (1 + ITERS / count)); |
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} |
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int main(int argc, char **argv) { |
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bench_data data; |
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int i, p; |
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secp256k1_gej* pubkeys_gej; |
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size_t scratch_size; |
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if (argc > 1) { |
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if(have_flag(argc, argv, "pippenger_wnaf")) { |
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printf("Using pippenger_wnaf:\n"); |
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data.ecmult_multi = secp256k1_ecmult_pippenger_batch_single; |
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} else if(have_flag(argc, argv, "strauss_wnaf")) { |
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printf("Using strauss_wnaf:\n"); |
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data.ecmult_multi = secp256k1_ecmult_strauss_batch_single; |
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} |
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} else { |
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data.ecmult_multi = secp256k1_ecmult_multi_var; |
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} |
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/* Allocate stuff */ |
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data.ctx = secp256k1_context_create(SECP256K1_CONTEXT_SIGN | SECP256K1_CONTEXT_VERIFY); |
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scratch_size = secp256k1_strauss_scratch_size(POINTS) + STRAUSS_SCRATCH_OBJECTS*16; |
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data.scratch = secp256k1_scratch_space_create(data.ctx, scratch_size); |
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data.scalars = malloc(sizeof(secp256k1_scalar) * POINTS); |
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data.seckeys = malloc(sizeof(secp256k1_scalar) * POINTS); |
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data.pubkeys = malloc(sizeof(secp256k1_ge) * POINTS); |
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data.expected_output = malloc(sizeof(secp256k1_gej) * (ITERS + 1)); |
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data.output = malloc(sizeof(secp256k1_gej) * (ITERS + 1)); |
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/* Generate a set of scalars, and private/public keypairs. */ |
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pubkeys_gej = malloc(sizeof(secp256k1_gej) * POINTS); |
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secp256k1_gej_set_ge(&pubkeys_gej[0], &secp256k1_ge_const_g); |
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secp256k1_scalar_set_int(&data.seckeys[0], 1); |
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for (i = 0; i < POINTS; ++i) { |
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generate_scalar(i, &data.scalars[i]); |
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if (i) { |
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secp256k1_gej_double_var(&pubkeys_gej[i], &pubkeys_gej[i - 1], NULL); |
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secp256k1_scalar_add(&data.seckeys[i], &data.seckeys[i - 1], &data.seckeys[i - 1]); |
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} |
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} |
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secp256k1_ge_set_all_gej_var(data.pubkeys, pubkeys_gej, POINTS, &data.ctx->error_callback); |
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free(pubkeys_gej); |
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for (i = 1; i <= 8; ++i) { |
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run_test(&data, i, 1); |
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} |
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for (p = 0; p <= 11; ++p) { |
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for (i = 9; i <= 16; ++i) { |
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run_test(&data, i << p, 1); |
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} |
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} |
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secp256k1_context_destroy(data.ctx); |
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secp256k1_scratch_space_destroy(data.scratch); |
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free(data.scalars); |
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free(data.pubkeys); |
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free(data.seckeys); |
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free(data.output); |
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free(data.expected_output); |
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return(0); |
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}
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