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https://gitlab.com/pulsechaincom/go-pulse.git
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core: typos and comments improve
1. fix typos 2. methods recevier of struct should be same 3. comments improve (cherry picked from commit 1ba979539582a00b7fd1a7c8a37a6852e59eac0d)
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07aae19e5d
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File diff suppressed because it is too large
Load Diff
@ -18,7 +18,7 @@ package core
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import "github.com/ethereum/go-ethereum/common"
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// Set of manually tracked bad hashes (usually hard forks)
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// BadHashes represent a set of manually tracked bad hashes (usually hard forks)
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var BadHashes = map[common.Hash]bool{
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common.HexToHash("05bef30ef572270f654746da22639a7a0c97dd97a7050b9e252391996aaeb689"): true,
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common.HexToHash("7d05d08cbc596a2e5e4f13b80a743e53e09221b5323c3a61946b20873e58583f"): true,
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@ -98,10 +98,10 @@ func (b *BlockGen) Number() *big.Int {
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return new(big.Int).Set(b.header.Number)
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}
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// AddUncheckedReceipts forcefully adds a receipts to the block without a
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// AddUncheckedReceipt forcefully adds a receipts to the block without a
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// backing transaction.
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//
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// AddUncheckedReceipts will cause consensus failures when used during real
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// AddUncheckedReceipt will cause consensus failures when used during real
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// chain processing. This is best used in conjunction with raw block insertion.
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func (b *BlockGen) AddUncheckedReceipt(receipt *types.Receipt) {
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b.receipts = append(b.receipts, receipt)
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@ -64,7 +64,7 @@ var (
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oldBlockReceiptsPrefix = []byte("receipts-block-")
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oldBlockHashPrefix = []byte("block-hash-") // [deprecated by the header/block split, remove eventually]
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ChainConfigNotFoundErr = errors.New("ChainConfig not found") // general config not found error
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ErrChainConfigNotFound = errors.New("ChainConfig not found") // general config not found error
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mipmapBloomMu sync.Mutex // protect against race condition when updating mipmap blooms
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@ -546,7 +546,7 @@ func mipmapKey(num, level uint64) []byte {
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return append(mipmapPre, append(lkey, key.Bytes()...)...)
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}
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// WriteMapmapBloom writes each address included in the receipts' logs to the
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// WriteMipmapBloom writes each address included in the receipts' logs to the
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// MIP bloom bin.
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func WriteMipmapBloom(db ethdb.Database, number uint64, receipts types.Receipts) error {
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mipmapBloomMu.Lock()
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@ -638,7 +638,7 @@ func WriteChainConfig(db ethdb.Database, hash common.Hash, cfg *params.ChainConf
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func GetChainConfig(db ethdb.Database, hash common.Hash) (*params.ChainConfig, error) {
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jsonChainConfig, _ := db.Get(append(configPrefix, hash[:]...))
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if len(jsonChainConfig) == 0 {
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return nil, ChainConfigNotFoundErr
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return nil, ErrChainConfigNotFound
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}
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var config params.ChainConfig
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@ -41,7 +41,7 @@ type NewMinedBlockEvent struct{ Block *types.Block }
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// RemovedTransactionEvent is posted when a reorg happens
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type RemovedTransactionEvent struct{ Txs types.Transactions }
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// RemovedLogEvent is posted when a reorg happens
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// RemovedLogsEvent is posted when a reorg happens
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type RemovedLogsEvent struct{ Logs []*types.Log }
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type ChainEvent struct {
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@ -20,4 +20,4 @@ import (
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"math/big"
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)
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var BlockReward *big.Int = big.NewInt(5e+18)
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var BlockReward = big.NewInt(5e+18)
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@ -133,7 +133,7 @@ func SetupGenesisBlock(db ethdb.Database, genesis *Genesis) (*params.ChainConfig
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newcfg := genesis.configOrDefault(stored)
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storedcfg, err := GetChainConfig(db, stored)
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if err != nil {
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if err == ChainConfigNotFoundErr {
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if err == ErrChainConfigNotFound {
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// This case happens if a genesis write was interrupted.
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log.Warn("Found genesis block without chain config")
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err = WriteChainConfig(db, stored, newcfg)
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@ -201,15 +201,6 @@ func (hc *HeaderChain) WriteHeader(header *types.Header) (status WriteStatus, er
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// header writes should be protected by the parent chain mutex individually.
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type WhCallback func(*types.Header) error
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// InsertHeaderChain attempts to insert the given header chain in to the local
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// chain, possibly creating a reorg. If an error is returned, it will return the
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// index number of the failing header as well an error describing what went wrong.
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//
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// The verify parameter can be used to fine tune whether nonce verification
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// should be done or not. The reason behind the optional check is because some
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// of the header retrieval mechanisms already need to verfy nonces, as well as
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// because nonces can be verified sparsely, not needing to check each.
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func (hc *HeaderChain) ValidateHeaderChain(chain []*types.Header, checkFreq int) (int, error) {
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// Do a sanity check that the provided chain is actually ordered and linked
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for i := 1; i < len(chain); i++ {
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@ -257,6 +248,14 @@ func (hc *HeaderChain) ValidateHeaderChain(chain []*types.Header, checkFreq int)
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return 0, nil
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}
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// InsertHeaderChain attempts to insert the given header chain in to the local
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// chain, possibly creating a reorg. If an error is returned, it will return the
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// index number of the failing header as well an error describing what went wrong.
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//
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// The verify parameter can be used to fine tune whether nonce verification
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// should be done or not. The reason behind the optional check is because some
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// of the header retrieval mechanisms already need to verfy nonces, as well as
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// because nonces can be verified sparsely, not needing to check each.
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func (hc *HeaderChain) InsertHeaderChain(chain []*types.Header, writeHeader WhCallback, start time.Time) (int, error) {
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// Collect some import statistics to report on
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stats := struct{ processed, ignored int }{}
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@ -21,8 +21,6 @@ import (
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"fmt"
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"github.com/ethereum/go-ethereum/core/types"
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// "github.com/ethereum/go-ethereum/crypto"
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"github.com/ethereum/go-ethereum/ethdb"
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"github.com/ethereum/go-ethereum/event"
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)
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@ -38,24 +36,24 @@ type TestManager struct {
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Blocks []*types.Block
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}
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func (s *TestManager) IsListening() bool {
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func (tm *TestManager) IsListening() bool {
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return false
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}
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func (s *TestManager) IsMining() bool {
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func (tm *TestManager) IsMining() bool {
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return false
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}
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func (s *TestManager) PeerCount() int {
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func (tm *TestManager) PeerCount() int {
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return 0
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}
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func (s *TestManager) Peers() *list.List {
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func (tm *TestManager) Peers() *list.List {
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return list.New()
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}
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func (s *TestManager) BlockChain() *BlockChain {
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return s.blockChain
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func (tm *TestManager) BlockChain() *BlockChain {
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return tm.blockChain
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}
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func (tm *TestManager) TxPool() *TxPool {
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@ -134,112 +134,113 @@ func ApplyMessage(evm *vm.EVM, msg Message, gp *GasPool) ([]byte, *big.Int, erro
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return ret, gasUsed, err
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}
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func (self *StateTransition) from() vm.AccountRef {
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f := self.msg.From()
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if !self.state.Exist(f) {
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self.state.CreateAccount(f)
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func (st *StateTransition) from() vm.AccountRef {
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f := st.msg.From()
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if !st.state.Exist(f) {
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st.state.CreateAccount(f)
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}
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return vm.AccountRef(f)
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}
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func (self *StateTransition) to() vm.AccountRef {
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if self.msg == nil {
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func (st *StateTransition) to() vm.AccountRef {
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if st.msg == nil {
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return vm.AccountRef{}
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}
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to := self.msg.To()
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to := st.msg.To()
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if to == nil {
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return vm.AccountRef{} // contract creation
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}
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reference := vm.AccountRef(*to)
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if !self.state.Exist(*to) {
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self.state.CreateAccount(*to)
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if !st.state.Exist(*to) {
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st.state.CreateAccount(*to)
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}
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return reference
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}
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func (self *StateTransition) useGas(amount uint64) error {
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if self.gas < amount {
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func (st *StateTransition) useGas(amount uint64) error {
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if st.gas < amount {
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return vm.ErrOutOfGas
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}
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self.gas -= amount
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st.gas -= amount
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return nil
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}
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func (self *StateTransition) buyGas() error {
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mgas := self.msg.Gas()
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func (st *StateTransition) buyGas() error {
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mgas := st.msg.Gas()
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if mgas.BitLen() > 64 {
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return vm.ErrOutOfGas
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}
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mgval := new(big.Int).Mul(mgas, self.gasPrice)
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mgval := new(big.Int).Mul(mgas, st.gasPrice)
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var (
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state = self.state
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sender = self.from()
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state = st.state
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sender = st.from()
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)
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if state.GetBalance(sender.Address()).Cmp(mgval) < 0 {
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return errInsufficientBalanceForGas
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}
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if err := self.gp.SubGas(mgas); err != nil {
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if err := st.gp.SubGas(mgas); err != nil {
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return err
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}
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self.gas += mgas.Uint64()
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st.gas += mgas.Uint64()
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self.initialGas.Set(mgas)
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st.initialGas.Set(mgas)
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state.SubBalance(sender.Address(), mgval)
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return nil
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}
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func (self *StateTransition) preCheck() error {
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msg := self.msg
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sender := self.from()
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func (st *StateTransition) preCheck() error {
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msg := st.msg
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sender := st.from()
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// Make sure this transaction's nonce is correct
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if msg.CheckNonce() {
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if n := self.state.GetNonce(sender.Address()); n != msg.Nonce() {
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if n := st.state.GetNonce(sender.Address()); n != msg.Nonce() {
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return fmt.Errorf("invalid nonce: have %d, expected %d", msg.Nonce(), n)
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}
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}
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return self.buyGas()
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return st.buyGas()
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}
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// TransitionDb will transition the state by applying the current message and returning the result
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// including the required gas for the operation as well as the used gas. It returns an error if it
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// failed. An error indicates a consensus issue.
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func (self *StateTransition) TransitionDb() (ret []byte, requiredGas, usedGas *big.Int, err error) {
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if err = self.preCheck(); err != nil {
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func (st *StateTransition) TransitionDb() (ret []byte, requiredGas, usedGas *big.Int, err error) {
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if err = st.preCheck(); err != nil {
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return
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}
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msg := self.msg
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sender := self.from() // err checked in preCheck
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msg := st.msg
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sender := st.from() // err checked in preCheck
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homestead := self.evm.ChainConfig().IsHomestead(self.evm.BlockNumber)
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homestead := st.evm.ChainConfig().IsHomestead(st.evm.BlockNumber)
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contractCreation := msg.To() == nil
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// Pay intrinsic gas
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// TODO convert to uint64
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intrinsicGas := IntrinsicGas(self.data, contractCreation, homestead)
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intrinsicGas := IntrinsicGas(st.data, contractCreation, homestead)
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if intrinsicGas.BitLen() > 64 {
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return nil, nil, nil, vm.ErrOutOfGas
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}
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if err = self.useGas(intrinsicGas.Uint64()); err != nil {
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if err = st.useGas(intrinsicGas.Uint64()); err != nil {
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return nil, nil, nil, err
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}
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var (
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evm = self.evm
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evm = st.evm
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// vm errors do not effect consensus and are therefor
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// not assigned to err, except for insufficient balance
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// error.
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vmerr error
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)
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if contractCreation {
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ret, _, self.gas, vmerr = evm.Create(sender, self.data, self.gas, self.value)
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ret, _, st.gas, vmerr = evm.Create(sender, st.data, st.gas, st.value)
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} else {
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// Increment the nonce for the next transaction
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self.state.SetNonce(sender.Address(), self.state.GetNonce(sender.Address())+1)
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ret, self.gas, vmerr = evm.Call(sender, self.to().Address(), self.data, self.gas, self.value)
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st.state.SetNonce(sender.Address(), st.state.GetNonce(sender.Address())+1)
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ret, st.gas, vmerr = evm.Call(sender, st.to().Address(), st.data, st.gas, st.value)
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}
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if vmerr != nil {
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log.Debug("VM returned with error", "err", err)
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@ -250,33 +251,33 @@ func (self *StateTransition) TransitionDb() (ret []byte, requiredGas, usedGas *b
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return nil, nil, nil, vmerr
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}
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}
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requiredGas = new(big.Int).Set(self.gasUsed())
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requiredGas = new(big.Int).Set(st.gasUsed())
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self.refundGas()
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self.state.AddBalance(self.evm.Coinbase, new(big.Int).Mul(self.gasUsed(), self.gasPrice))
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st.refundGas()
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st.state.AddBalance(st.evm.Coinbase, new(big.Int).Mul(st.gasUsed(), st.gasPrice))
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return ret, requiredGas, self.gasUsed(), err
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return ret, requiredGas, st.gasUsed(), err
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}
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func (self *StateTransition) refundGas() {
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func (st *StateTransition) refundGas() {
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// Return eth for remaining gas to the sender account,
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// exchanged at the original rate.
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sender := self.from() // err already checked
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remaining := new(big.Int).Mul(new(big.Int).SetUint64(self.gas), self.gasPrice)
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self.state.AddBalance(sender.Address(), remaining)
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sender := st.from() // err already checked
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remaining := new(big.Int).Mul(new(big.Int).SetUint64(st.gas), st.gasPrice)
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st.state.AddBalance(sender.Address(), remaining)
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// Apply refund counter, capped to half of the used gas.
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uhalf := remaining.Div(self.gasUsed(), common.Big2)
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refund := math.BigMin(uhalf, self.state.GetRefund())
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self.gas += refund.Uint64()
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uhalf := remaining.Div(st.gasUsed(), common.Big2)
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refund := math.BigMin(uhalf, st.state.GetRefund())
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st.gas += refund.Uint64()
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self.state.AddBalance(sender.Address(), refund.Mul(refund, self.gasPrice))
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st.state.AddBalance(sender.Address(), refund.Mul(refund, st.gasPrice))
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// Also return remaining gas to the block gas counter so it is
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// available for the next transaction.
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self.gp.AddGas(new(big.Int).SetUint64(self.gas))
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st.gp.AddGas(new(big.Int).SetUint64(st.gas))
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}
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func (self *StateTransition) gasUsed() *big.Int {
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return new(big.Int).Sub(self.initialGas, new(big.Int).SetUint64(self.gas))
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func (st *StateTransition) gasUsed() *big.Int {
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return new(big.Int).Sub(st.initialGas, new(big.Int).SetUint64(st.gas))
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}
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@ -209,6 +209,7 @@ func (pool *TxPool) resetState() {
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pool.promoteExecutables(currentState)
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}
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// Stop stops a TxPool
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func (pool *TxPool) Stop() {
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pool.events.Unsubscribe()
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close(pool.quit)
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@ -238,6 +239,7 @@ func (pool *TxPool) SetGasPrice(price *big.Int) {
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log.Info("Transaction pool price threshold updated", "price", price)
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}
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// State returns the state of TxPool
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func (pool *TxPool) State() *state.ManagedState {
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pool.mu.RLock()
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defer pool.mu.RUnlock()
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@ -850,22 +852,22 @@ func newTxSet() *txSet {
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// contains returns true if the set contains the given transaction hash
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// (not thread safe, should be called from a locked environment)
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func (self *txSet) contains(hash common.Hash) bool {
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_, ok := self.txMap[hash]
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func (ts *txSet) contains(hash common.Hash) bool {
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_, ok := ts.txMap[hash]
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return ok
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}
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// add adds a transaction hash to the set, then removes entries older than txSetDuration
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// (not thread safe, should be called from a locked environment)
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func (self *txSet) add(hash common.Hash) {
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self.txMap[hash] = struct{}{}
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func (ts *txSet) add(hash common.Hash) {
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ts.txMap[hash] = struct{}{}
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now := time.Now()
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self.txOrd[self.addPtr] = txOrdType{hash: hash, time: now}
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self.addPtr++
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ts.txOrd[ts.addPtr] = txOrdType{hash: hash, time: now}
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ts.addPtr++
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delBefore := now.Add(-txSetDuration)
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for self.delPtr < self.addPtr && self.txOrd[self.delPtr].time.Before(delBefore) {
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delete(self.txMap, self.txOrd[self.delPtr].hash)
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delete(self.txOrd, self.delPtr)
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self.delPtr++
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for ts.delPtr < ts.addPtr && ts.txOrd[ts.delPtr].time.Before(delBefore) {
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delete(ts.txMap, ts.txOrd[ts.delPtr].hash)
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delete(ts.txOrd, ts.delPtr)
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ts.delPtr++
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}
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}
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