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Bench test for EllSwift ECDH
Co-authored-by: Dhruv Mehta <856960+dhruv@users.noreply.github.com>
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4 changed files with 61 additions and 0 deletions
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@ -18,6 +18,7 @@ bench_bench_bitcoin_SOURCES = \
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bench/bench.cpp \
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bench/bench.cpp \
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bench/bench.h \
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bench/bench.h \
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bench/bench_bitcoin.cpp \
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bench/bench_bitcoin.cpp \
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bench/bip324_ecdh.cpp \
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bench/block_assemble.cpp \
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bench/block_assemble.cpp \
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bench/ccoins_caching.cpp \
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bench/ccoins_caching.cpp \
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bench/chacha20.cpp \
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bench/chacha20.cpp \
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51
src/bench/bip324_ecdh.cpp
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51
src/bench/bip324_ecdh.cpp
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@ -0,0 +1,51 @@
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// Copyright (c) 2022 The Bitcoin Core developers
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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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#include <bench/bench.h>
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#include <key.h>
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#include <pubkey.h>
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#include <random.h>
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#include <span.h>
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#include <array>
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#include <cstddef>
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static void BIP324_ECDH(benchmark::Bench& bench)
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{
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ECC_Start();
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FastRandomContext rng;
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std::array<std::byte, 32> key_data;
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std::array<std::byte, EllSwiftPubKey::size()> our_ellswift_data;
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std::array<std::byte, EllSwiftPubKey::size()> their_ellswift_data;
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rng.fillrand(key_data);
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rng.fillrand(our_ellswift_data);
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rng.fillrand(their_ellswift_data);
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bench.batch(1).unit("ecdh").run([&] {
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CKey key;
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key.Set(UCharCast(key_data.data()), UCharCast(key_data.data()) + 32, true);
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EllSwiftPubKey our_ellswift(our_ellswift_data);
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EllSwiftPubKey their_ellswift(their_ellswift_data);
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auto ret = key.ComputeBIP324ECDHSecret(their_ellswift, our_ellswift, true);
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// To make sure that the computation is not the same on every iteration (ellswift decoding
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// is variable-time), distribute bytes from the shared secret over the 3 inputs. The most
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// important one is their_ellswift, because that one is actually decoded, so it's given most
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// bytes. The data is copied into the middle, so that both halves are affected:
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// - Copy 8 bytes from the resulting shared secret into middle of the private key.
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std::copy(ret.begin(), ret.begin() + 8, key_data.begin() + 12);
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// - Copy 8 bytes from the resulting shared secret into the middle of our ellswift key.
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std::copy(ret.begin() + 8, ret.begin() + 16, our_ellswift_data.begin() + 28);
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// - Copy 16 bytes from the resulting shared secret into the middle of their ellswift key.
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std::copy(ret.begin() + 16, ret.end(), their_ellswift_data.begin() + 24);
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});
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ECC_Stop();
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}
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BENCHMARK(BIP324_ECDH, benchmark::PriorityLevel::HIGH);
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@ -599,6 +599,12 @@ std::vector<unsigned char> FastRandomContext::randbytes(size_t len)
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return ret;
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return ret;
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}
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}
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void FastRandomContext::fillrand(Span<std::byte> output)
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{
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if (requires_seed) RandomSeed();
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rng.Keystream(UCharCast(output.data()), output.size());
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}
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FastRandomContext::FastRandomContext(const uint256& seed) noexcept : requires_seed(false), bitbuf_size(0)
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FastRandomContext::FastRandomContext(const uint256& seed) noexcept : requires_seed(false), bitbuf_size(0)
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{
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{
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rng.SetKey32(seed.begin());
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rng.SetKey32(seed.begin());
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@ -213,6 +213,9 @@ public:
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/** Generate random bytes. */
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/** Generate random bytes. */
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std::vector<unsigned char> randbytes(size_t len);
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std::vector<unsigned char> randbytes(size_t len);
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/** Fill a byte Span with random bytes. */
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void fillrand(Span<std::byte> output);
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/** Generate a random 32-bit integer. */
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/** Generate a random 32-bit integer. */
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uint32_t rand32() noexcept { return randbits(32); }
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uint32_t rand32() noexcept { return randbits(32); }
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