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213 lines
8.4 KiB
C++
213 lines
8.4 KiB
C++
// Copyright (c) 2009-2010 Satoshi Nakamoto
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// Copyright (c) 2009-2019 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 <script/sigcache.h>
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#include <pubkey.h>
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#include <random.h>
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#include <uint256.h>
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#include <util/system.h>
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#include <cuckoocache.h>
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#include <boost/thread/shared_mutex.hpp>
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namespace {
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/**
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* Valid signature cache, to avoid doing expensive ECDSA signature checking
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* twice for every transaction (once when accepted into memory pool, and
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* again when accepted into the block chain)
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*/
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class CSignatureCache
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{
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private:
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//! Entries are SHA256(nonce || signature hash || public key || signature):
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CSHA256 m_salted_hasher;
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typedef CuckooCache::cache<uint256, SignatureCacheHasher> map_type;
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map_type setValid;
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boost::shared_mutex cs_sigcache;
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public:
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CSignatureCache()
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{
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uint256 nonce = GetRandHash();
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// We want the nonce to be 64 bytes long to force the hasher to process
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// this chunk, which makes later hash computations more efficient. We
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// just write our 32-byte entropy twice to fill the 64 bytes.
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m_salted_hasher.Write(nonce.begin(), 32);
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m_salted_hasher.Write(nonce.begin(), 32);
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}
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void
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ComputeEntry(uint256& entry, const uint256 &hash, const std::vector<unsigned char>& vchSig, const CPubKey& pubkey)
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{
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CSHA256 hasher = m_salted_hasher;
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hasher.Write(hash.begin(), 32).Write(&pubkey[0], pubkey.size()).Write(&vchSig[0], vchSig.size()).Finalize(entry.begin());
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}
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// ELEMENTS:
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void ComputeEntry(uint256& entry, const std::vector<unsigned char>& proof, const std::vector<unsigned char>& commitment) {
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CSHA256 hasher = m_salted_hasher;
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hasher.Write(proof.data(), proof.size()).Write(commitment.data(), commitment.size()).Finalize(entry.begin());
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}
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void ComputeEntry(uint256& entry, const uint256 &hash, const std::vector<unsigned char>& proof, const std::vector<unsigned char>& commitment) {
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CSHA256 hasher = m_salted_hasher;
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hasher.Write(hash.begin(), 32).Write(proof.data(), proof.size()).Write(commitment.data(), commitment.size()).Finalize(entry.begin());
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}
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bool
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Get(const uint256& entry, const bool erase)
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{
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boost::shared_lock<boost::shared_mutex> lock(cs_sigcache);
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return setValid.contains(entry, erase);
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}
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void Set(uint256& entry)
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{
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boost::unique_lock<boost::shared_mutex> lock(cs_sigcache);
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setValid.insert(entry);
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}
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uint32_t setup_bytes(size_t n)
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{
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return setValid.setup_bytes(n);
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}
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};
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/* In previous versions of this code, signatureCache was a local static variable
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* in CachingTransactionSignatureChecker::VerifySignature. We initialize
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* signatureCache outside of VerifySignature to avoid the atomic operation per
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* call overhead associated with local static variables even though
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* signatureCache could be made local to VerifySignature.
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*/
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static CSignatureCache signatureCache;
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// ELEMENTS:
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static CSignatureCache rangeProofCache;
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static CSignatureCache surjectionProofCache;
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} // namespace
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// To be called once in AppInitMain/BasicTestingSetup to initialize the
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// signatureCache.
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void InitSignatureCache()
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{
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// nMaxCacheSize is unsigned. If -maxsigcachesize is set to zero,
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// setup_bytes creates the minimum possible cache (2 elements).
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size_t nMaxCacheSize = std::min(std::max((int64_t)0, gArgs.GetArg("-maxsigcachesize", DEFAULT_MAX_SIG_CACHE_SIZE) / 2), MAX_MAX_SIG_CACHE_SIZE) * ((size_t) 1 << 20);
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size_t nElems = signatureCache.setup_bytes(nMaxCacheSize);
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LogPrintf("Using %zu MiB out of %zu/2 requested for signature cache, able to store %zu elements\n",
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(nElems*sizeof(uint256)) >>20, (nMaxCacheSize*2)>>20, nElems);
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}
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bool CachingTransactionSignatureChecker::VerifySignature(const std::vector<unsigned char>& vchSig, const CPubKey& pubkey, const uint256& sighash) const
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{
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uint256 entry;
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signatureCache.ComputeEntry(entry, sighash, vchSig, pubkey);
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if (signatureCache.Get(entry, !store))
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return true;
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if (!TransactionSignatureChecker::VerifySignature(vchSig, pubkey, sighash))
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return false;
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if (store)
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signatureCache.Set(entry);
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return true;
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}
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//
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// ELEMENTS CACHES
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// To be called once in AppInit2/TestingSetup to initialize the rangeproof cache
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void InitRangeproofCache()
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{
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// nMaxCacheSize is unsigned. If -maxsigcachesize is set to zero,
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// setup_bytes creates the minimum possible cache (2 elements).
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size_t nMaxCacheSize = std::min(std::max((int64_t)0, gArgs.GetArg("-maxsigcachesize", DEFAULT_MAX_SIG_CACHE_SIZE)), MAX_MAX_SIG_CACHE_SIZE) * ((size_t) 1 << 20);
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size_t nElems = rangeProofCache.setup_bytes(nMaxCacheSize);
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LogPrintf("Using %zu MiB out of %zu requested for rangeproof cache, able to store %zu elements\n",
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(nElems*sizeof(uint256)) >>20, nMaxCacheSize>>20, nElems);
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}
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// To be called once in AppInit2/TestingSetup to initialize the surjectionrproof cache
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void InitSurjectionproofCache()
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{
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// nMaxCacheSize is unsigned. If -maxsigcachesize is set to zero,
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// setup_bytes creates the minimum possible cache (2 elements).
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size_t nMaxCacheSize = std::min(std::max((int64_t)0, gArgs.GetArg("-maxsigcachesize", DEFAULT_MAX_SIG_CACHE_SIZE)), MAX_MAX_SIG_CACHE_SIZE) * ((size_t) 1 << 20);
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size_t nElems = surjectionProofCache.setup_bytes(nMaxCacheSize);
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LogPrintf("Using %zu MiB out of %zu requested for surjectionproof cache, able to store %zu elements\n",
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(nElems*sizeof(uint256)) >>20, nMaxCacheSize>>20, nElems);
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}
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bool CachingRangeProofChecker::VerifyRangeProof(const std::vector<unsigned char>& vchRangeProof, const std::vector<unsigned char>& vchValueCommitment, const std::vector<unsigned char>& vchAssetCommitment, const CScript& scriptPubKey, const secp256k1_context* secp256k1_ctx_verify_amounts) const
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{
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uint256 entry;
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rangeProofCache.ComputeEntry(entry, vchRangeProof, vchValueCommitment);
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if (rangeProofCache.Get(entry, !store)) {
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return true;
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}
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if (vchRangeProof.size() == 0) {
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return false;
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}
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uint64_t min_value, max_value;
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secp256k1_pedersen_commitment commit;
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if (secp256k1_pedersen_commitment_parse(secp256k1_ctx_verify_amounts, &commit, &vchValueCommitment[0]) != 1)
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return false;
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secp256k1_generator tag;
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if (secp256k1_generator_parse(secp256k1_ctx_verify_amounts, &tag, &vchAssetCommitment[0]) != 1)
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return false;
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if (!secp256k1_rangeproof_verify(secp256k1_ctx_verify_amounts, &min_value, &max_value, &commit, vchRangeProof.data(), vchRangeProof.size(), scriptPubKey.size() ? &scriptPubKey.front() : NULL, scriptPubKey.size(), &tag)) {
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return false;
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}
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// An rangeproof is not valid if the output is spendable but the minimum number
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// is 0. This is to prevent people passing 0-value tokens around, or conjuring
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// reissuance tokens from nothing then attempting to reissue an asset.
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// ie reissuance doesn't require revealing value of reissuance output
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// Issuances proofs are always "unspendable" as they commit to an empty script.
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if (min_value == 0 && !scriptPubKey.IsUnspendable()) {
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return false;
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}
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if (store) {
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rangeProofCache.Set(entry);
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}
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return true;
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}
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bool CachingSurjectionProofChecker::VerifySurjectionProof(secp256k1_surjectionproof& proof, std::vector<secp256k1_generator>& vTags, secp256k1_generator& gen, const secp256k1_context* secp256k1_ctx_verify_amounts, const uint256& wtxid) const
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{
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// Serialize proof
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std::vector<unsigned char> vchproof;
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size_t proof_len = secp256k1_surjectionproof_serialized_size(secp256k1_ctx_verify_amounts, &proof);
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vchproof.resize(proof_len);
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assert(secp256k1_surjectionproof_serialize(secp256k1_ctx_verify_amounts, vchproof.data(), &proof_len, &proof) == 1);
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// wtxid commits to all data including surj targets
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// we need to specify the proof and output asset point to be unique
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uint256 entry;
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surjectionProofCache.ComputeEntry(entry, wtxid, vchproof, std::vector<unsigned char>(std::begin(gen.data), std::end(gen.data)));
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if (surjectionProofCache.Get(entry, !store)) {
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return true;
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}
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if (secp256k1_surjectionproof_verify(secp256k1_ctx_verify_amounts, &proof, vTags.data(), vTags.size(), &gen) != 1) {
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return false;
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}
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if (store) {
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surjectionProofCache.Set(entry);
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}
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return true;
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}
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// END ELEMENTS
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//
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