9a5654f70d
* ante: cherry-pick changes from state transition refactor * ante: test setup * ante: fixes * ante: test (wip) * ante: finish unit tests * ante: intrinsic gas test * ante: chaindecorators test (wip) * update tests * ante: cleanup tests * ante: add test consuption test
333 lines
12 KiB
Go
333 lines
12 KiB
Go
package ante
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import (
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"math/big"
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sdk "github.com/cosmos/cosmos-sdk/types"
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sdkerrors "github.com/cosmos/cosmos-sdk/types/errors"
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authante "github.com/cosmos/cosmos-sdk/x/auth/ante"
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evmtypes "github.com/cosmos/ethermint/x/evm/types"
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"github.com/ethereum/go-ethereum/common"
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"github.com/ethereum/go-ethereum/core"
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ethtypes "github.com/ethereum/go-ethereum/core/types"
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)
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// EVMKeeper defines the expected keeper interface used on the Eth AnteHandler
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type EVMKeeper interface {
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ChainID() *big.Int
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GetParams(ctx sdk.Context) evmtypes.Params
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GetChainConfig(ctx sdk.Context) (evmtypes.ChainConfig, bool)
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WithContext(ctx sdk.Context)
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ResetRefundTransient(ctx sdk.Context)
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}
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// EthSigVerificationDecorator validates an ethereum signature
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type EthSigVerificationDecorator struct {
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evmKeeper EVMKeeper
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}
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// NewEthSigVerificationDecorator creates a new EthSigVerificationDecorator
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func NewEthSigVerificationDecorator(ek EVMKeeper) EthSigVerificationDecorator {
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return EthSigVerificationDecorator{
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evmKeeper: ek,
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}
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}
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// AnteHandle validates checks that the registered chain id is the same as the one on the message, and
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// that the signer address matches the one defined on the message.
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func (esvd EthSigVerificationDecorator) AnteHandle(ctx sdk.Context, tx sdk.Tx, simulate bool, next sdk.AnteHandler) (newCtx sdk.Context, err error) {
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// no need to verify signatures on recheck tx
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if ctx.IsReCheckTx() {
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return next(ctx, tx, simulate)
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}
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// get and set account must be called with an infinite gas meter in order to prevent
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// additional gas from being deducted.
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infCtx := ctx.WithGasMeter(sdk.NewInfiniteGasMeter())
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chainID := esvd.evmKeeper.ChainID()
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config, found := esvd.evmKeeper.GetChainConfig(infCtx)
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if !found {
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return ctx, evmtypes.ErrChainConfigNotFound
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}
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ethCfg := config.EthereumConfig(chainID)
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blockNum := big.NewInt(ctx.BlockHeight())
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signer := ethtypes.MakeSigner(ethCfg, blockNum)
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for _, msg := range tx.GetMsgs() {
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msgEthTx, ok := msg.(*evmtypes.MsgEthereumTx)
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if !ok {
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return ctx, sdkerrors.Wrapf(sdkerrors.ErrUnknownRequest, "invalid transaction type %T, expected %T", tx, &evmtypes.MsgEthereumTx{})
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}
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if _, err := signer.Sender(msgEthTx.AsTransaction()); err != nil {
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return ctx, sdkerrors.Wrap(sdkerrors.ErrorInvalidSigner, err.Error())
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}
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}
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return next(ctx, tx, simulate)
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}
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// EthAccountVerificationDecorator validates an account balance checks
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type EthAccountVerificationDecorator struct {
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ak AccountKeeper
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bankKeeper BankKeeper
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evmKeeper EVMKeeper
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}
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// NewEthAccountVerificationDecorator creates a new EthAccountVerificationDecorator
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func NewEthAccountVerificationDecorator(ak AccountKeeper, bankKeeper BankKeeper, ek EVMKeeper) EthAccountVerificationDecorator {
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return EthAccountVerificationDecorator{
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ak: ak,
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bankKeeper: bankKeeper,
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evmKeeper: ek,
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}
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}
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// AnteHandle validates the signature and returns sender address
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func (avd EthAccountVerificationDecorator) AnteHandle(ctx sdk.Context, tx sdk.Tx, simulate bool, next sdk.AnteHandler) (newCtx sdk.Context, err error) {
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if !ctx.IsCheckTx() {
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return next(ctx, tx, simulate)
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}
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// get and set account must be called with an infinite gas meter in order to prevent
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// additional gas from being deducted.
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infCtx := ctx.WithGasMeter(sdk.NewInfiniteGasMeter())
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evmDenom := avd.evmKeeper.GetParams(infCtx).EvmDenom
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for _, msg := range tx.GetMsgs() {
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msgEthTx, ok := msg.(*evmtypes.MsgEthereumTx)
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if !ok {
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return ctx, sdkerrors.Wrapf(sdkerrors.ErrUnknownRequest, "invalid transaction type %T, expected %T", tx, &evmtypes.MsgEthereumTx{})
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}
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// sender address should be in the tx cache from the previous AnteHandle call
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from := msgEthTx.GetFrom()
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if from.Empty() {
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return ctx, sdkerrors.Wrapf(sdkerrors.ErrInvalidAddress, "from address cannot be empty")
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}
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acc := avd.ak.GetAccount(infCtx, from)
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if acc == nil {
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_ = avd.ak.NewAccountWithAddress(infCtx, from)
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}
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// validate sender has enough funds to pay for gas cost
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balance := avd.bankKeeper.GetBalance(infCtx, from, evmDenom)
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if balance.Amount.BigInt().Cmp(msgEthTx.Cost()) < 0 {
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return ctx, sdkerrors.Wrapf(
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sdkerrors.ErrInsufficientFunds,
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"sender balance < tx gas cost (%s < %s%s)", balance.String(), msgEthTx.Cost().String(), evmDenom,
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)
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}
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}
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return next(ctx, tx, simulate)
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}
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// EthNonceVerificationDecorator checks that the account nonce from the transaction matches
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// the sender account sequence.
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type EthNonceVerificationDecorator struct {
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ak AccountKeeper
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}
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// NewEthNonceVerificationDecorator creates a new EthNonceVerificationDecorator
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func NewEthNonceVerificationDecorator(ak AccountKeeper) EthNonceVerificationDecorator {
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return EthNonceVerificationDecorator{
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ak: ak,
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}
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}
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// AnteHandle validates that the transaction nonce is valid (equivalent to the sender account’s
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// current nonce).
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func (nvd EthNonceVerificationDecorator) AnteHandle(ctx sdk.Context, tx sdk.Tx, simulate bool, next sdk.AnteHandler) (newCtx sdk.Context, err error) {
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// no need to check the nonce on ReCheckTx
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if ctx.IsReCheckTx() {
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return next(ctx, tx, simulate)
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}
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// get and set account must be called with an infinite gas meter in order to prevent
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// additional gas from being deducted.
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infCtx := ctx.WithGasMeter(sdk.NewInfiniteGasMeter())
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for _, msg := range tx.GetMsgs() {
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msgEthTx, ok := msg.(*evmtypes.MsgEthereumTx)
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if !ok {
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return ctx, sdkerrors.Wrapf(sdkerrors.ErrUnknownRequest, "invalid transaction type %T, expected %T", tx, &evmtypes.MsgEthereumTx{})
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}
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// sender address should be in the tx cache from the previous AnteHandle call
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seq, err := nvd.ak.GetSequence(infCtx, msgEthTx.GetFrom())
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if err != nil {
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return ctx, err
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}
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// if multiple transactions are submitted in succession with increasing nonces,
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// all will be rejected except the first, since the first needs to be included in a block
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// before the sequence increments
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if msgEthTx.Data.Nonce != seq {
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return ctx, sdkerrors.Wrapf(
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sdkerrors.ErrInvalidSequence,
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"invalid nonce; got %d, expected %d", msgEthTx.Data.Nonce, seq,
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)
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}
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}
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return next(ctx, tx, simulate)
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}
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// EthGasConsumeDecorator validates enough intrinsic gas for the transaction and
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// gas consumption.
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type EthGasConsumeDecorator struct {
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ak AccountKeeper
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bankKeeper BankKeeper
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evmKeeper EVMKeeper
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}
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// NewEthGasConsumeDecorator creates a new EthGasConsumeDecorator
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func NewEthGasConsumeDecorator(ak AccountKeeper, bankKeeper BankKeeper, ek EVMKeeper) EthGasConsumeDecorator {
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return EthGasConsumeDecorator{
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ak: ak,
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bankKeeper: bankKeeper,
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evmKeeper: ek,
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}
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}
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// AnteHandle validates that the Ethereum tx message has enough to cover intrinsic gas
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// (during CheckTx only) and that the sender has enough balance to pay for the gas cost.
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//
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// Intrinsic gas for a transaction is the amount of gas
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// that the transaction uses before the transaction is executed. The gas is a
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// constant value of 21000 plus any cost inccured by additional bytes of data
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// supplied with the transaction.
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func (egcd EthGasConsumeDecorator) AnteHandle(ctx sdk.Context, tx sdk.Tx, simulate bool, next sdk.AnteHandler) (newCtx sdk.Context, err error) {
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// get and set account must be called with an infinite gas meter in order to prevent
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// additional gas from being deducted.
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infCtx := ctx.WithGasMeter(sdk.NewInfiniteGasMeter())
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if len(tx.GetMsgs()) != 1 {
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return ctx, sdkerrors.Wrapf(sdkerrors.ErrInvalidRequest, "only 1 ethereum msg supported per tx, got %d", len(tx.GetMsgs()))
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}
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// reset the refund gas value for the current transaction
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egcd.evmKeeper.ResetRefundTransient(infCtx)
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config, found := egcd.evmKeeper.GetChainConfig(infCtx)
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if !found {
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return ctx, evmtypes.ErrChainConfigNotFound
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}
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ethCfg := config.EthereumConfig(egcd.evmKeeper.ChainID())
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blockHeight := big.NewInt(ctx.BlockHeight())
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homestead := ethCfg.IsHomestead(blockHeight)
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istanbul := ethCfg.IsIstanbul(blockHeight)
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for _, msg := range tx.GetMsgs() {
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msgEthTx, ok := msg.(*evmtypes.MsgEthereumTx)
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if !ok {
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return ctx, sdkerrors.Wrapf(sdkerrors.ErrUnknownRequest, "invalid transaction type %T, expected %T", tx, &evmtypes.MsgEthereumTx{})
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}
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isContractCreation := msgEthTx.To() == nil
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// fetch sender account from signature
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signerAcc, err := authante.GetSignerAcc(infCtx, egcd.ak, msgEthTx.GetFrom())
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if err != nil {
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return ctx, err
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}
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gasLimit := msgEthTx.GetGas()
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var accessList ethtypes.AccessList
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if msgEthTx.Data.Accesses != nil {
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accessList = *msgEthTx.Data.Accesses.ToEthAccessList()
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}
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intrinsicGas, err := core.IntrinsicGas(msgEthTx.Data.Input, accessList, isContractCreation, homestead, istanbul)
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if err != nil {
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return ctx, sdkerrors.Wrap(err, "failed to compute intrinsic gas cost")
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}
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// intrinsic gas verification during CheckTx
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if ctx.IsCheckTx() && gasLimit < intrinsicGas {
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return ctx, sdkerrors.Wrapf(sdkerrors.ErrOutOfGas, "gas limit too low: %d (gas limit) < %d (intrinsic gas)", gasLimit, intrinsicGas)
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}
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// Cost calculates the fees paid to validators based on gas limit and price
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cost := msgEthTx.Fee() // fee = gas limit * gas price
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evmDenom := egcd.evmKeeper.GetParams(infCtx).EvmDenom
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feeAmt := sdk.Coins{sdk.NewCoin(evmDenom, sdk.NewIntFromBigInt(cost))}
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// deduct the full gas cost from the user balance
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if err := authante.DeductFees(egcd.bankKeeper, infCtx, signerAcc, feeAmt); err != nil {
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return ctx, err
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}
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// consume intrinsic gas for the current transaction. After runTx is executed on Baseapp, the
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// application will consume gas from the block gas pool.
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ctx.GasMeter().ConsumeGas(intrinsicGas, "intrinsic gas")
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}
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// generate a copy of the gas pool (i.e block gas meter) to see if we've run out of gas for this block
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// if current gas consumed is greater than the limit, this funcion panics and the error is recovered on the Baseapp
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gasPool := sdk.NewGasMeter(ctx.BlockGasMeter().Limit())
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gasPool.ConsumeGas(ctx.GasMeter().GasConsumedToLimit(), "gas pool check")
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// we know that we have enough gas on the pool to cover the intrinsic gas
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// set up the updated context to the evm Keeper
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egcd.evmKeeper.WithContext(ctx)
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return next(ctx, tx, simulate)
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}
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// EthIncrementSenderSequenceDecorator increments the sequence of the signers. The
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// main difference with the SDK's IncrementSequenceDecorator is that the MsgEthereumTx
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// doesn't implement the SigVerifiableTx interface.
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//
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// CONTRACT: must be called after msg.VerifySig in order to cache the sender address.
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type EthIncrementSenderSequenceDecorator struct {
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ak AccountKeeper
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}
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// NewEthIncrementSenderSequenceDecorator creates a new EthIncrementSenderSequenceDecorator.
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func NewEthIncrementSenderSequenceDecorator(ak AccountKeeper) EthIncrementSenderSequenceDecorator {
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return EthIncrementSenderSequenceDecorator{
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ak: ak,
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}
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}
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// AnteHandle handles incrementing the sequence of the sender.
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func (issd EthIncrementSenderSequenceDecorator) AnteHandle(ctx sdk.Context, tx sdk.Tx, simulate bool, next sdk.AnteHandler) (sdk.Context, error) {
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// get and set account must be called with an infinite gas meter in order to prevent
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// additional gas from being deducted.
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infCtx := ctx.WithGasMeter(sdk.NewInfiniteGasMeter())
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for _, msg := range tx.GetMsgs() {
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// increment sequence of all signers
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for _, addr := range msg.GetSigners() {
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acc := issd.ak.GetAccount(infCtx, addr)
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if acc == nil {
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return ctx, sdkerrors.Wrapf(
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sdkerrors.ErrUnknownAddress,
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"account %s (%s) is nil", common.BytesToAddress(addr.Bytes()), addr,
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)
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}
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if err := acc.SetSequence(acc.GetSequence() + 1); err != nil {
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return ctx, err
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}
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issd.ak.SetAccount(infCtx, acc)
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}
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}
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// set the original gas meter
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return next(ctx, tx, simulate)
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}
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