mirror of
https://gitlab.com/pulsechaincom/erigon-pulse.git
synced 2024-12-25 13:07:17 +00:00
430 lines
13 KiB
Go
430 lines
13 KiB
Go
package commands
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import (
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"context"
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"errors"
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"fmt"
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"math/big"
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"github.com/holiman/uint256"
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"github.com/ledgerwatch/erigon-lib/gointerfaces"
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txpool_proto "github.com/ledgerwatch/erigon-lib/gointerfaces/txpool"
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"github.com/ledgerwatch/erigon-lib/kv"
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"github.com/ledgerwatch/erigon/common"
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"github.com/ledgerwatch/erigon/common/hexutil"
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"github.com/ledgerwatch/erigon/core"
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"github.com/ledgerwatch/erigon/core/state"
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"github.com/ledgerwatch/erigon/core/types"
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"github.com/ledgerwatch/erigon/core/vm"
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"github.com/ledgerwatch/erigon/crypto"
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"github.com/ledgerwatch/erigon/eth/tracers/logger"
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"github.com/ledgerwatch/erigon/ethdb"
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"github.com/ledgerwatch/erigon/internal/ethapi"
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"github.com/ledgerwatch/erigon/params"
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"github.com/ledgerwatch/erigon/rpc"
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"github.com/ledgerwatch/erigon/turbo/rpchelper"
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"github.com/ledgerwatch/erigon/turbo/transactions"
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"github.com/ledgerwatch/log/v3"
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"google.golang.org/grpc"
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)
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// Call implements eth_call. Executes a new message call immediately without creating a transaction on the block chain.
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func (api *APIImpl) Call(ctx context.Context, args ethapi.CallArgs, blockNrOrHash rpc.BlockNumberOrHash, overrides *ethapi.StateOverrides) (hexutil.Bytes, error) {
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tx, err := api.db.BeginRo(ctx)
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if err != nil {
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return nil, err
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}
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defer tx.Rollback()
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chainConfig, err := api.chainConfig(tx)
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if err != nil {
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return nil, err
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}
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if args.Gas == nil || uint64(*args.Gas) == 0 {
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args.Gas = (*hexutil.Uint64)(&api.GasCap)
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}
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contractHasTEVM := func(contractHash common.Hash) (bool, error) { return false, nil }
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if api.TevmEnabled {
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contractHasTEVM = ethdb.GetHasTEVM(tx)
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}
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blockNumber, hash, _, err := rpchelper.GetCanonicalBlockNumber(blockNrOrHash, tx, api.filters) // DoCall cannot be executed on non-canonical blocks
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if err != nil {
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return nil, err
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}
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block, err := api.BaseAPI.blockWithSenders(tx, hash, blockNumber)
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if err != nil {
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return nil, err
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}
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if block == nil {
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return nil, nil
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}
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result, err := transactions.DoCall(ctx, args, tx, blockNrOrHash, block, overrides, api.GasCap, chainConfig, api.filters, api.stateCache, contractHasTEVM, api._blockReader)
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if err != nil {
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return nil, err
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}
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// If the result contains a revert reason, try to unpack and return it.
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if len(result.Revert()) > 0 {
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return nil, ethapi.NewRevertError(result)
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}
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return result.Return(), result.Err
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}
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// headerByNumberOrHash - intent to read recent headers only
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func headerByNumberOrHash(tx kv.Tx, blockNrOrHash rpc.BlockNumberOrHash, api *APIImpl) (*types.Header, error) {
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blockNum, _, _, err := rpchelper.GetBlockNumber(blockNrOrHash, tx, api.filters)
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if err != nil {
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return nil, err
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}
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block, err := api.blockByNumberWithSenders(tx, blockNum)
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if err != nil {
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return nil, err
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}
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return block.Header(), nil
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}
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// EstimateGas implements eth_estimateGas. Returns an estimate of how much gas is necessary to allow the transaction to complete. The transaction will not be added to the blockchain.
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func (api *APIImpl) EstimateGas(ctx context.Context, argsOrNil *ethapi.CallArgs, blockNrOrHash *rpc.BlockNumberOrHash) (hexutil.Uint64, error) {
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var args ethapi.CallArgs
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// if we actually get CallArgs here, we use them
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if argsOrNil != nil {
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args = *argsOrNil
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}
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bNrOrHash := rpc.BlockNumberOrHashWithNumber(rpc.PendingBlockNumber)
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if blockNrOrHash != nil {
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bNrOrHash = *blockNrOrHash
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}
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dbtx, err := api.db.BeginRo(ctx)
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if err != nil {
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return 0, err
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}
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defer dbtx.Rollback()
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// Binary search the gas requirement, as it may be higher than the amount used
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var (
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lo = params.TxGas - 1
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hi uint64
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cap uint64
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)
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// Use zero address if sender unspecified.
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if args.From == nil {
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args.From = new(common.Address)
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}
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// Determine the highest gas limit can be used during the estimation.
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if args.Gas != nil && uint64(*args.Gas) >= params.TxGas {
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hi = uint64(*args.Gas)
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} else {
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// Retrieve the block to act as the gas ceiling
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h, err := headerByNumberOrHash(dbtx, bNrOrHash, api)
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if err != nil {
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return 0, err
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}
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hi = h.GasLimit
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}
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var feeCap *big.Int
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if args.GasPrice != nil && (args.MaxFeePerGas != nil || args.MaxPriorityFeePerGas != nil) {
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return 0, errors.New("both gasPrice and (maxFeePerGas or maxPriorityFeePerGas) specified")
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} else if args.GasPrice != nil {
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feeCap = args.GasPrice.ToInt()
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} else if args.MaxFeePerGas != nil {
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feeCap = args.MaxFeePerGas.ToInt()
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} else {
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feeCap = common.Big0
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}
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// Recap the highest gas limit with account's available balance.
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if feeCap.Sign() != 0 {
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cacheView, err := api.stateCache.View(ctx, dbtx)
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if err != nil {
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return 0, err
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}
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stateReader := state.NewCachedReader2(cacheView, dbtx)
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state := state.New(stateReader)
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if state == nil {
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return 0, fmt.Errorf("can't get the current state")
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}
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balance := state.GetBalance(*args.From) // from can't be nil
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available := balance.ToBig()
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if args.Value != nil {
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if args.Value.ToInt().Cmp(available) >= 0 {
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return 0, errors.New("insufficient funds for transfer")
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}
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available.Sub(available, args.Value.ToInt())
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}
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allowance := new(big.Int).Div(available, feeCap)
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// If the allowance is larger than maximum uint64, skip checking
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if allowance.IsUint64() && hi > allowance.Uint64() {
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transfer := args.Value
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if transfer == nil {
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transfer = new(hexutil.Big)
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}
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log.Warn("Gas estimation capped by limited funds", "original", hi, "balance", balance,
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"sent", transfer.ToInt(), "maxFeePerGas", feeCap, "fundable", allowance)
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hi = allowance.Uint64()
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}
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}
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// Recap the highest gas allowance with specified gascap.
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if hi > api.GasCap {
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log.Warn("Caller gas above allowance, capping", "requested", hi, "cap", api.GasCap)
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hi = api.GasCap
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}
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cap = hi
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var lastBlockNum = rpc.LatestBlockNumber
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chainConfig, err := api.chainConfig(dbtx)
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if err != nil {
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return 0, err
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}
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contractHasTEVM := func(contractHash common.Hash) (bool, error) { return false, nil }
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if api.TevmEnabled {
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contractHasTEVM = ethdb.GetHasTEVM(dbtx)
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}
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// Create a helper to check if a gas allowance results in an executable transaction
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executable := func(gas uint64) (bool, *core.ExecutionResult, error) {
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args.Gas = (*hexutil.Uint64)(&gas)
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numOrHash := rpc.BlockNumberOrHash{BlockNumber: &lastBlockNum}
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blockNumber, hash, _, err := rpchelper.GetCanonicalBlockNumber(numOrHash, dbtx, api.filters) // DoCall cannot be executed on non-canonical blocks
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if err != nil {
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return false, nil, err
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}
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block, err := api.BaseAPI.blockWithSenders(dbtx, hash, blockNumber)
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if err != nil {
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return false, nil, err
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}
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if block == nil {
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return false, nil, nil
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}
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result, err := transactions.DoCall(ctx, args, dbtx, numOrHash, block, nil,
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api.GasCap, chainConfig, api.filters, api.stateCache, contractHasTEVM, api._blockReader)
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if err != nil {
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if errors.Is(err, core.ErrIntrinsicGas) {
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// Special case, raise gas limit
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return true, nil, nil
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}
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// Bail out
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return true, nil, err
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}
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return result.Failed(), result, nil
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}
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// Execute the binary search and hone in on an executable gas limit
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for lo+1 < hi {
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mid := (hi + lo) / 2
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failed, _, err := executable(mid)
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// If the error is not nil(consensus error), it means the provided message
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// call or transaction will never be accepted no matter how much gas it is
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// assigened. Return the error directly, don't struggle any more.
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if err != nil {
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return 0, err
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}
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if failed {
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lo = mid
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} else {
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hi = mid
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}
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}
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// Reject the transaction as invalid if it still fails at the highest allowance
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if hi == cap {
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failed, result, err := executable(hi)
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if err != nil {
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return 0, err
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}
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if failed {
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if result != nil && !errors.Is(result.Err, vm.ErrOutOfGas) {
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if len(result.Revert()) > 0 {
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return 0, ethapi.NewRevertError(result)
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}
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return 0, result.Err
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}
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// Otherwise, the specified gas cap is too low
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return 0, fmt.Errorf("gas required exceeds allowance (%d)", cap)
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}
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}
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return hexutil.Uint64(hi), nil
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}
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// GetProof not implemented
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func (api *APIImpl) GetProof(ctx context.Context, address common.Address, storageKeys []string, blockNr rpc.BlockNumber) (*interface{}, error) {
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var stub interface{}
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return &stub, fmt.Errorf(NotImplemented, "eth_getProof")
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}
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// accessListResult returns an optional accesslist
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// Its the result of the `eth_createAccessList` RPC call.
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// It contains an error if the transaction itself failed.
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type accessListResult struct {
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Accesslist *types.AccessList `json:"accessList"`
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Error string `json:"error,omitempty"`
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GasUsed hexutil.Uint64 `json:"gasUsed"`
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}
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// CreateAccessList implements eth_createAccessList. It creates an access list for the given transaction.
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// If the accesslist creation fails an error is returned.
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// If the transaction itself fails, an vmErr is returned.
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func (api *APIImpl) CreateAccessList(ctx context.Context, args ethapi.CallArgs, blockNrOrHash *rpc.BlockNumberOrHash, optimizeGas *bool) (*accessListResult, error) {
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bNrOrHash := rpc.BlockNumberOrHashWithNumber(rpc.PendingBlockNumber)
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if blockNrOrHash != nil {
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bNrOrHash = *blockNrOrHash
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}
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tx, err := api.db.BeginRo(ctx)
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if err != nil {
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return nil, err
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}
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defer tx.Rollback()
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chainConfig, err := api.chainConfig(tx)
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if err != nil {
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return nil, err
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}
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contractHasTEVM := func(contractHash common.Hash) (bool, error) { return false, nil }
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if api.TevmEnabled {
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contractHasTEVM = ethdb.GetHasTEVM(tx)
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}
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blockNumber, hash, latest, err := rpchelper.GetCanonicalBlockNumber(bNrOrHash, tx, api.filters) // DoCall cannot be executed on non-canonical blocks
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if err != nil {
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return nil, err
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}
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block, err := api.BaseAPI.blockWithSenders(tx, hash, blockNumber)
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if err != nil {
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return nil, err
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}
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if block == nil {
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return nil, nil
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}
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var stateReader state.StateReader
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if latest {
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cacheView, err := api.stateCache.View(ctx, tx)
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if err != nil {
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return nil, err
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}
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stateReader = state.NewCachedReader2(cacheView, tx)
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} else {
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stateReader = state.NewPlainState(tx, blockNumber)
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}
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header := block.Header()
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// If the gas amount is not set, extract this as it will depend on access
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// lists and we'll need to reestimate every time
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nogas := args.Gas == nil
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var to common.Address
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if args.To != nil {
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to = *args.To
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} else {
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// Require nonce to calculate address of created contract
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if args.Nonce == nil {
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var nonce uint64
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reply, err := api.txPool.Nonce(ctx, &txpool_proto.NonceRequest{
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Address: gointerfaces.ConvertAddressToH160(*args.From),
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}, &grpc.EmptyCallOption{})
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if err != nil {
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return nil, err
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}
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if reply.Found {
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nonce = reply.Nonce + 1
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}
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args.Nonce = (*hexutil.Uint64)(&nonce)
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}
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to = crypto.CreateAddress(*args.From, uint64(*args.Nonce))
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}
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// Retrieve the precompiles since they don't need to be added to the access list
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precompiles := vm.ActivePrecompiles(chainConfig.Rules(blockNumber))
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// Create an initial tracer
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prevTracer := logger.NewAccessListTracer(nil, *args.From, to, precompiles)
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if args.AccessList != nil {
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prevTracer = logger.NewAccessListTracer(*args.AccessList, *args.From, to, precompiles)
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}
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for {
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state := state.New(stateReader)
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// Retrieve the current access list to expand
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accessList := prevTracer.AccessList()
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log.Trace("Creating access list", "input", accessList)
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// If no gas amount was specified, each unique access list needs it's own
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// gas calculation. This is quite expensive, but we need to be accurate
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// and it's convered by the sender only anyway.
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if nogas {
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args.Gas = nil
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}
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// Set the accesslist to the last al
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args.AccessList = &accessList
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baseFee, _ := uint256.FromBig(header.BaseFee)
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msg, err := args.ToMessage(api.GasCap, baseFee)
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if err != nil {
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return nil, err
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}
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// Apply the transaction with the access list tracer
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tracer := logger.NewAccessListTracer(accessList, *args.From, to, precompiles)
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config := vm.Config{Tracer: tracer, Debug: true, NoBaseFee: true}
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blockCtx, txCtx := transactions.GetEvmContext(msg, header, bNrOrHash.RequireCanonical, tx, contractHasTEVM, api._blockReader)
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evm := vm.NewEVM(blockCtx, txCtx, state, chainConfig, config)
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gp := new(core.GasPool).AddGas(msg.Gas())
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res, err := core.ApplyMessage(evm, msg, gp, true /* refunds */, false /* gasBailout */)
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if err != nil {
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return nil, err
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}
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if tracer.Equal(prevTracer) {
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var errString string
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if res.Err != nil {
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errString = res.Err.Error()
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}
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accessList := &accessListResult{Accesslist: &accessList, Error: errString, GasUsed: hexutil.Uint64(res.UsedGas)}
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if optimizeGas != nil && *optimizeGas {
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optimizeToInAccessList(accessList, to)
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}
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return accessList, nil
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}
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prevTracer = tracer
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}
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}
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// to address is warm already, so we can save by adding it to the access list
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// only if we are adding a lot of its storage slots as well
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func optimizeToInAccessList(accessList *accessListResult, to common.Address) {
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indexToRemove := -1
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for i := 0; i < len(*accessList.Accesslist); i++ {
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entry := (*accessList.Accesslist)[i]
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if entry.Address != to {
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continue
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}
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// https://eips.ethereum.org/EIPS/eip-2930#charging-less-for-accesses-in-the-access-list
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accessListSavingPerSlot := params.ColdSloadCostEIP2929 - params.WarmStorageReadCostEIP2929 - params.TxAccessListStorageKeyGas
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numSlots := uint64(len(entry.StorageKeys))
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if numSlots*accessListSavingPerSlot <= params.TxAccessListAddressGas {
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indexToRemove = i
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}
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}
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if indexToRemove >= 0 {
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*accessList.Accesslist = removeIndex(*accessList.Accesslist, indexToRemove)
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}
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}
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func removeIndex(s types.AccessList, index int) types.AccessList {
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return append(s[:index], s[index+1:]...)
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}
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