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224 lines
9 KiB
Go
224 lines
9 KiB
Go
// Copyright 2015 The go-ethereum Authors
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// This file is part of the go-ethereum library.
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//
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// The go-ethereum library is free software: you can redistribute it and/or modify
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// it under the terms of the GNU Lesser General Public License as published by
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// the Free Software Foundation, either version 3 of the License, or
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// (at your option) any later version.
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//
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// The go-ethereum library is distributed in the hope that it will be useful,
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// but WITHOUT ANY WARRANTY; without even the implied warranty of
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// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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// GNU Lesser General Public License for more details.
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//
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// You should have received a copy of the GNU Lesser General Public License
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// along with the go-ethereum library. If not, see <http://www.gnu.org/licenses/>.
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package core
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import (
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"errors"
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"fmt"
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"github.com/ethereum/go-ethereum/consensus"
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"github.com/ethereum/go-ethereum/core/state"
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"github.com/ethereum/go-ethereum/core/types"
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"github.com/ethereum/go-ethereum/params"
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"github.com/ethereum/go-ethereum/trie"
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)
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// BlockValidator is responsible for validating block headers, uncles and
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// processed state.
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//
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// BlockValidator implements Validator.
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type BlockValidator struct {
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config *params.ChainConfig // Chain configuration options
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bc *BlockChain // Canonical block chain
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}
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// NewBlockValidator returns a new block validator which is safe for re-use
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func NewBlockValidator(config *params.ChainConfig, blockchain *BlockChain) *BlockValidator {
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validator := &BlockValidator{
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config: config,
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bc: blockchain,
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}
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return validator
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}
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// ValidateBody validates the given block's uncles and verifies the block
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// header's transaction and uncle roots. The headers are assumed to be already
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// validated at this point.
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func (v *BlockValidator) ValidateBody(block *types.Block) error {
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// check EIP 7934 RLP-encoded block size cap
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if v.config.IsOsaka(block.Number(), block.Time()) && block.Size() > params.MaxBlockSize {
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return ErrBlockOversized
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}
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// Check whether the block is already imported.
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if v.bc.HasBlockAndState(block.Hash(), block.NumberU64()) {
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return ErrKnownBlock
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}
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// Header validity is known at this point. Here we verify that uncles, transactions
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// and withdrawals given in the block body match the header.
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header := block.Header()
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if err := v.bc.engine.VerifyUncles(v.bc, block); err != nil {
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return err
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}
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if hash := types.CalcUncleHash(block.Uncles()); hash != header.UncleHash {
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return fmt.Errorf("uncle root hash mismatch (header value %x, calculated %x)", header.UncleHash, hash)
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}
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if hash := types.DeriveSha(block.Transactions(), trie.NewStackTrie(nil)); hash != header.TxHash {
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return fmt.Errorf("transaction root hash mismatch (header value %x, calculated %x)", header.TxHash, hash)
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}
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// Withdrawals are present after the Shanghai fork.
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if header.WithdrawalsHash != nil {
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// Withdrawals list must be present in body after Shanghai.
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if block.Withdrawals() == nil {
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return errors.New("missing withdrawals in block body")
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}
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if hash := types.DeriveSha(block.Withdrawals(), trie.NewStackTrie(nil)); hash != *header.WithdrawalsHash {
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return fmt.Errorf("withdrawals root hash mismatch (header value %x, calculated %x)", *header.WithdrawalsHash, hash)
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}
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} else if block.Withdrawals() != nil {
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// Withdrawals are not allowed prior to Shanghai fork
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return errors.New("withdrawals present in block body")
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}
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// Blob transactions may be present after the Cancun fork.
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var blobs int
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for i, tx := range block.Transactions() {
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// Count the number of blobs to validate against the header's blobGasUsed
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blobs += len(tx.BlobHashes())
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// If the tx is a blob tx, it must NOT have a sidecar attached to be valid in a block.
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if tx.BlobTxSidecar() != nil {
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return fmt.Errorf("unexpected blob sidecar in transaction at index %d", i)
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}
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// The individual checks for blob validity (version-check + not empty)
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// happens in state transition.
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}
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// Check blob gas usage.
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if header.BlobGasUsed != nil {
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if want := *header.BlobGasUsed / params.BlobTxBlobGasPerBlob; uint64(blobs) != want { // div because the header is surely good vs the body might be bloated
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return fmt.Errorf("blob gas used mismatch (header %v, calculated %v)", *header.BlobGasUsed, blobs*params.BlobTxBlobGasPerBlob)
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}
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} else {
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if blobs > 0 {
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return errors.New("data blobs present in block body")
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}
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}
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// block access lists must be present after the Amsterdam hard fork
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if v.config.IsAmsterdam(block.Number(), block.Time()) {
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if block.Body().AccessList == nil {
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return fmt.Errorf("access list not present in block body")
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} else if block.Header().BlockAccessListHash == nil {
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return fmt.Errorf("access list hash not present in block header")
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} else if *block.Header().BlockAccessListHash != block.Body().AccessList.Hash() {
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return fmt.Errorf("access list hash mismatch. local: %x. remote: %x\n", block.Body().AccessList.Hash(), *block.Header().BlockAccessListHash)
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} else if err := block.Body().AccessList.Validate(); err != nil {
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return fmt.Errorf("invalid block access list: %v", err)
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}
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} else if !v.bc.cfg.EnableBALForTesting {
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// if --experimental.bal is not enabled, block headers cannot have access list hash and bodies cannot have access lists.
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if block.Body().AccessList != nil {
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return fmt.Errorf("access list not allowed in block body if not in amsterdam or --experimental.bal is set")
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} else if block.Header().BlockAccessListHash != nil {
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return fmt.Errorf("access list hash in block header not allowed when --experimental.bal is set")
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}
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} else {
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// if --experimental.bal is enabled, the BAL hash is not allowed in the header.
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// this is in order that Geth can import pre-existing chains augmented with BALs
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// and not have a hash mismatch.
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if block.Header().BlockAccessListHash != nil {
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return fmt.Errorf("access list hash in block header not allowed pre-amsterdam")
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}
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}
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// Ancestor block must be known.
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if !v.bc.HasBlockAndState(block.ParentHash(), block.NumberU64()-1) {
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if !v.bc.HasBlock(block.ParentHash(), block.NumberU64()-1) {
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return consensus.ErrUnknownAncestor
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}
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return consensus.ErrPrunedAncestor
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}
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return nil
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}
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// ValidateState validates the various changes that happen after a state transition,
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// such as amount of used gas, the receipt roots and the state root itself.
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func (v *BlockValidator) ValidateState(block *types.Block, statedb *state.StateDB, res *ProcessResult, validateStateRoot, stateless bool) error {
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if res == nil {
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return errors.New("nil ProcessResult value")
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}
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header := block.Header()
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if block.GasUsed() != res.GasUsed {
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return fmt.Errorf("invalid gas used (remote: %d local: %d)", block.GasUsed(), res.GasUsed)
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}
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// Validate the received block's bloom with the one derived from the generated receipts.
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// For valid blocks this should always validate to true.
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//
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// Receipts must go through MakeReceipt to calculate the receipt's bloom
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// already. Merge the receipt's bloom together instead of recalculating
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// everything.
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rbloom := types.MergeBloom(res.Receipts)
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if rbloom != header.Bloom {
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return fmt.Errorf("invalid bloom (remote: %x local: %x)", header.Bloom, rbloom)
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}
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// In stateless mode, return early because the receipt and state root are not
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// provided through the witness, rather the cross validator needs to return it.
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if stateless {
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return nil
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}
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// The receipt Trie's root (R = (Tr [[H1, R1], ... [Hn, Rn]]))
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receiptSha := types.DeriveSha(res.Receipts, trie.NewStackTrie(nil))
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if receiptSha != header.ReceiptHash {
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return fmt.Errorf("invalid receipt root hash (remote: %x local: %x)", header.ReceiptHash, receiptSha)
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}
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// Validate the parsed requests match the expected header value.
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if header.RequestsHash != nil {
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reqhash := types.CalcRequestsHash(res.Requests)
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if reqhash != *header.RequestsHash {
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return fmt.Errorf("invalid requests hash (remote: %x local: %x)", *header.RequestsHash, reqhash)
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}
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} else if res.Requests != nil {
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return errors.New("block has requests before prague fork")
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}
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if validateStateRoot {
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// Validate the state root against the received state root and throw
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// an error if they don't match.
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if root := statedb.IntermediateRoot(v.config.IsEIP158(header.Number)); header.Root != root {
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return fmt.Errorf("invalid merkle root (remote: %x local: %x) dberr: %w", header.Root, root, statedb.Error())
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}
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}
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return nil
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}
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// CalcGasLimit computes the gas limit of the next block after parent. It aims
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// to keep the baseline gas close to the provided target, and increase it towards
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// the target if the baseline gas is lower.
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func CalcGasLimit(parentGasLimit, desiredLimit uint64) uint64 {
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delta := parentGasLimit/params.GasLimitBoundDivisor - 1
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limit := parentGasLimit
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if desiredLimit < params.MinGasLimit {
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desiredLimit = params.MinGasLimit
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}
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// If we're outside our allowed gas range, we try to hone towards them
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if limit < desiredLimit {
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limit = parentGasLimit + delta
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if limit > desiredLimit {
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limit = desiredLimit
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}
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return limit
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}
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if limit > desiredLimit {
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limit = parentGasLimit - delta
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if limit < desiredLimit {
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limit = desiredLimit
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}
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}
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return limit
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}
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