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Merge #18112: Convert blockencodings.h to new serialization framework
353f376277
Partial #18112: Add CustomUintFormattere574fff53e
Partial #18112: Add DifferenceFormatter10633398f2
Partial #18112: Make VectorFormatter support stateful formatters56dd9f04c7
Partial #18112: Convert CCompactSize to proper formatter3ca574cef0
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bfe5971359
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@ -11,18 +11,29 @@
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class CTxMemPool;
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// Dumb helper to handle CTransaction compression at serialize-time
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struct TransactionCompressor {
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private:
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CTransactionRef& tx;
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// Transaction compression schemes for compact block relay can be introduced by writing
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// an actual formatter here.
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using TransactionCompression = DefaultFormatter;
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class DifferenceFormatter
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{
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uint64_t m_shift = 0;
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public:
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explicit TransactionCompressor(CTransactionRef& txIn) : tx(txIn) {}
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ADD_SERIALIZE_METHODS;
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template <typename Stream, typename Operation>
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inline void SerializationOp(Stream& s, Operation ser_action) {
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READWRITE(tx); //TODO: Compress tx encoding
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template<typename Stream, typename I>
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void Ser(Stream& s, I v)
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{
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if (v < m_shift || v >= std::numeric_limits<uint64_t>::max()) throw std::ios_base::failure("differential value overflow");
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WriteCompactSize(s, v - m_shift);
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m_shift = uint64_t(v) + 1;
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}
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template<typename Stream, typename I>
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void Unser(Stream& s, I& v)
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{
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uint64_t n = ReadCompactSize(s);
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m_shift += n;
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if (m_shift < n || m_shift >= std::numeric_limits<uint64_t>::max() || m_shift < std::numeric_limits<I>::min() || m_shift > std::numeric_limits<I>::max()) throw std::ios_base::failure("differential value overflow");
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v = I(m_shift++);
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}
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};
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@ -32,39 +43,9 @@ public:
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uint256 blockhash;
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std::vector<uint16_t> indexes;
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ADD_SERIALIZE_METHODS;
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template <typename Stream, typename Operation>
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inline void SerializationOp(Stream& s, Operation ser_action) {
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READWRITE(blockhash);
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uint64_t indexes_size = (uint64_t)indexes.size();
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READWRITE(COMPACTSIZE(indexes_size));
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if (ser_action.ForRead()) {
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size_t i = 0;
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while (indexes.size() < indexes_size) {
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indexes.resize(std::min((uint64_t)(1000 + indexes.size()), indexes_size));
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for (; i < indexes.size(); i++) {
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uint64_t index = 0;
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READWRITE(COMPACTSIZE(index));
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if (index > std::numeric_limits<uint16_t>::max())
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throw std::ios_base::failure("index overflowed 16 bits");
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indexes[i] = index;
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}
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}
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int32_t offset = 0;
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for (size_t j = 0; j < indexes.size(); j++) {
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if (int32_t(indexes[j]) + offset > std::numeric_limits<uint16_t>::max())
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throw std::ios_base::failure("indexes overflowed 16 bits");
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indexes[j] = indexes[j] + offset;
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offset = int32_t(indexes[j]) + 1;
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}
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} else {
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for (size_t i = 0; i < indexes.size(); i++) {
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uint64_t index = indexes[i] - (i == 0 ? 0 : (indexes[i - 1] + 1));
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READWRITE(COMPACTSIZE(index));
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}
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}
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SERIALIZE_METHODS(BlockTransactionsRequest, obj)
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{
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READWRITE(obj.blockhash, Using<VectorFormatter<DifferenceFormatter>>(obj.indexes));
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}
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};
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@ -78,24 +59,9 @@ public:
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explicit BlockTransactions(const BlockTransactionsRequest& req) :
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blockhash(req.blockhash), txn(req.indexes.size()) {}
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ADD_SERIALIZE_METHODS;
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template <typename Stream, typename Operation>
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inline void SerializationOp(Stream& s, Operation ser_action) {
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READWRITE(blockhash);
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uint64_t txn_size = (uint64_t)txn.size();
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READWRITE(COMPACTSIZE(txn_size));
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if (ser_action.ForRead()) {
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size_t i = 0;
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while (txn.size() < txn_size) {
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txn.resize(std::min((uint64_t)(1000 + txn.size()), txn_size));
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for (; i < txn.size(); i++)
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READWRITE(TransactionCompressor(txn[i]));
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}
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} else {
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for (size_t i = 0; i < txn.size(); i++)
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READWRITE(TransactionCompressor(txn[i]));
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}
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SERIALIZE_METHODS(BlockTransactions, obj)
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{
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READWRITE(obj.blockhash, Using<VectorFormatter<TransactionCompression>>(obj.txn));
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}
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};
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@ -106,17 +72,7 @@ struct PrefilledTransaction {
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uint16_t index;
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CTransactionRef tx;
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ADD_SERIALIZE_METHODS;
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template <typename Stream, typename Operation>
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inline void SerializationOp(Stream& s, Operation ser_action) {
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uint64_t idx = index;
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READWRITE(COMPACTSIZE(idx));
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if (idx > std::numeric_limits<uint16_t>::max())
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throw std::ios_base::failure("index overflowed 16-bits");
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index = idx;
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READWRITE(TransactionCompressor(tx));
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}
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SERIALIZE_METHODS(PrefilledTransaction, obj) { READWRITE(COMPACTSIZE(obj.index), Using<TransactionCompression>(obj.tx)); }
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};
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typedef enum ReadStatus_t
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@ -154,43 +110,15 @@ public:
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size_t BlockTxCount() const { return shorttxids.size() + prefilledtxn.size(); }
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ADD_SERIALIZE_METHODS;
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template <typename Stream, typename Operation>
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inline void SerializationOp(Stream& s, Operation ser_action) {
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READWRITE(header);
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READWRITE(nonce);
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uint64_t shorttxids_size = (uint64_t)shorttxids.size();
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READWRITE(COMPACTSIZE(shorttxids_size));
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SERIALIZE_METHODS(CBlockHeaderAndShortTxIDs, obj)
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{
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READWRITE(obj.header, obj.nonce, Using<VectorFormatter<CustomUintFormatter<SHORTTXIDS_LENGTH>>>(obj.shorttxids), obj.prefilledtxn);
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if (ser_action.ForRead()) {
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size_t i = 0;
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while (shorttxids.size() < shorttxids_size) {
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shorttxids.resize(std::min((uint64_t)(1000 + shorttxids.size()), shorttxids_size));
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for (; i < shorttxids.size(); i++) {
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uint32_t lsb = 0; uint16_t msb = 0;
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READWRITE(lsb);
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READWRITE(msb);
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shorttxids[i] = (uint64_t(msb) << 32) | uint64_t(lsb);
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static_assert(SHORTTXIDS_LENGTH == 6, "shorttxids serialization assumes 6-byte shorttxids");
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}
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}
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} else {
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for (size_t i = 0; i < shorttxids.size(); i++) {
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uint32_t lsb = shorttxids[i] & 0xffffffff;
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uint16_t msb = (shorttxids[i] >> 32) & 0xffff;
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READWRITE(lsb);
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READWRITE(msb);
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}
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}
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READWRITE(prefilledtxn);
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if (BlockTxCount() > std::numeric_limits<uint16_t>::max())
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if (obj.BlockTxCount() > std::numeric_limits<uint16_t>::max()) {
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throw std::ios_base::failure("indexes overflowed 16 bits");
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if (ser_action.ForRead())
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FillShortTxIDSelector();
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}
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obj.FillShortTxIDSelector();
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}
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}
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};
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@ -452,15 +452,20 @@ public:
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return first;
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}
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void push_back(const T& value) {
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template<typename... Args>
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void emplace_back(Args&&... args) {
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size_type new_size = size() + 1;
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if (capacity() < new_size) {
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change_capacity(new_size + (new_size >> 1));
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}
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new(item_ptr(size())) T(value);
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new(item_ptr(size())) T(std::forward<Args>(args)...);
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_size++;
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}
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void push_back(const T& value) {
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emplace_back(value);
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}
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void pop_back() {
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erase(end() - 1, end());
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}
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@ -504,7 +504,7 @@ static inline Wrapper<Formatter, T&> Using(T&& t) { return Wrapper<Formatter, T&
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#define FIXEDVARINTSBITSET(obj, size) CFixedVarIntsBitSet(REF(obj), (size))
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#define AUTOBITSET(obj, size) CAutoBitSet(REF(obj), (size))
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#define VARINT(obj, ...) Using<VarIntFormatter<__VA_ARGS__>>(obj)
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#define COMPACTSIZE(obj) CCompactSize(REF(obj))
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#define COMPACTSIZE(obj) Using<CompactSizeFormatter>(obj)
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#define LIMITED_STRING(obj,n) LimitedString< n >(REF(obj))
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class CFixedBitSet
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@ -678,6 +678,28 @@ struct VarIntFormatter
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}
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};
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template<int Bytes>
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struct CustomUintFormatter
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{
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static_assert(Bytes > 0 && Bytes <= 8, "CustomUintFormatter Bytes out of range");
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static constexpr uint64_t MAX = 0xffffffffffffffff >> (8 * (8 - Bytes));
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template <typename Stream, typename I> void Ser(Stream& s, I v)
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{
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if (v < 0 || v > MAX) throw std::ios_base::failure("CustomUintFormatter value out of range");
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uint64_t raw = htole64(v);
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s.write((const char*)&raw, Bytes);
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}
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template <typename Stream, typename I> void Unser(Stream& s, I& v)
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{
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static_assert(std::numeric_limits<I>::max() >= MAX && std::numeric_limits<I>::min() <= 0, "CustomUintFormatter type too small");
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uint64_t raw = 0;
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s.read((char*)&raw, Bytes);
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v = le64toh(raw);
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}
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};
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/** Serialization wrapper class for big-endian integers.
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*
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* Use this wrapper around integer types that are stored in memory in native
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@ -712,25 +734,26 @@ public:
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}
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};
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class CCompactSize
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/** Formatter for integers in CompactSize format. */
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struct CompactSizeFormatter
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{
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protected:
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uint64_t &n;
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public:
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explicit CCompactSize(uint64_t& nIn) : n(nIn) { }
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unsigned int GetSerializeSize() const {
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return GetSizeOfCompactSize(n);
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template<typename Stream, typename I>
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void Unser(Stream& s, I& v)
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{
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uint64_t n = ReadCompactSize<Stream>(s);
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if (n < std::numeric_limits<I>::min() || n > std::numeric_limits<I>::max()) {
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throw std::ios_base::failure("CompactSize exceeds limit of type");
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}
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v = n;
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}
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template<typename Stream>
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void Serialize(Stream &s) const {
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WriteCompactSize<Stream>(s, n);
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}
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template<typename Stream, typename I>
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void Ser(Stream& s, I v)
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{
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static_assert(std::is_unsigned<I>::value, "CompactSize only supported for unsigned integers");
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static_assert(std::numeric_limits<I>::max() <= std::numeric_limits<uint64_t>::max(), "CompactSize only supports 64-bit integers and below");
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template<typename Stream>
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void Unserialize(Stream& s) {
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n = ReadCompactSize<Stream>(s);
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WriteCompactSize<Stream>(s, v);
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}
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};
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@ -777,7 +800,7 @@ BigEndian<I> WrapBigEndian(I& n) { return BigEndian<I>(n); }
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* as a vector of VarInt-encoded integers.
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*
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* V is not required to be an std::vector type. It works for any class that
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* exposes a value_type, size, reserve, push_back, and const iterators.
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* exposes a value_type, size, reserve, emplace_back, back, and const iterators.
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*/
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template<class Formatter>
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struct VectorFormatter
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@ -785,15 +808,17 @@ struct VectorFormatter
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template<typename Stream, typename V>
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void Ser(Stream& s, const V& v)
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{
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Formatter formatter;
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WriteCompactSize(s, v.size());
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for (const typename V::value_type& elem : v) {
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s << Using<Formatter>(elem);
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formatter.Ser(s, elem);
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}
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}
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template<typename Stream, typename V>
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void Unser(Stream& s, V& v)
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{
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Formatter formatter;
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v.clear();
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size_t size = ReadCompactSize(s);
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size_t allocated = 0;
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@ -805,9 +830,8 @@ struct VectorFormatter
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allocated = std::min(size, allocated + MAX_VECTOR_ALLOCATE / sizeof(typename V::value_type));
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v.reserve(allocated);
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while (v.size() < allocated) {
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typename V::value_type val;
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s >> Using<Formatter>(val);
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v.push_back(std::move(val));
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v.emplace_back();
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formatter.Unser(s, v.back());
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}
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}
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};
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