package common
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import (
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"fmt"
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"math/big"
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ethCrypto "github.com/ethereum/go-ethereum/crypto"
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"github.com/hermeznetwork/tracerr"
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)
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// L2Tx is a struct that represents an already forged L2 tx
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type L2Tx struct {
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// Stored in DB: mandatory fileds
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TxID TxID `meddler:"id"`
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BatchNum BatchNum `meddler:"batch_num"` // batchNum in which this tx was forged.
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Position int `meddler:"position"`
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FromIdx Idx `meddler:"from_idx"`
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ToIdx Idx `meddler:"to_idx"`
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// TokenID is filled by the TxProcessor
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TokenID TokenID `meddler:"token_id"`
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Amount *big.Int `meddler:"amount,bigint"`
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Fee FeeSelector `meddler:"fee"`
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// Nonce is filled by the TxProcessor
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Nonce Nonce `meddler:"nonce"`
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Type TxType `meddler:"type"`
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EthBlockNum int64 `meddler:"eth_block_num"` // EthereumBlockNumber in which this L2Tx was added to the queue
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}
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// NewL2Tx returns the given L2Tx with the TxId & Type parameters calculated
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// from the L2Tx values
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func NewL2Tx(tx *L2Tx) (*L2Tx, error) {
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txTypeOld := tx.Type
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if err := tx.SetType(); err != nil {
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return nil, tracerr.Wrap(err)
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}
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// If original Type doesn't match the correct one, return error
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if txTypeOld != "" && txTypeOld != tx.Type {
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return nil, tracerr.Wrap(fmt.Errorf("L2Tx.Type: %s, should be: %s",
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tx.Type, txTypeOld))
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}
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txIDOld := tx.TxID
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if err := tx.SetID(); err != nil {
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return nil, tracerr.Wrap(err)
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}
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// If original TxID doesn't match the correct one, return error
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if txIDOld != (TxID{}) && txIDOld != tx.TxID {
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return tx, tracerr.Wrap(fmt.Errorf("L2Tx.TxID: %s, should be: %s",
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tx.TxID.String(), txIDOld.String()))
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}
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return tx, nil
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}
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// SetType sets the type of the transaction. Uses (FromIdx, Nonce).
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func (tx *L2Tx) SetType() error {
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if tx.ToIdx == Idx(1) {
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tx.Type = TxTypeExit
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} else if tx.ToIdx >= IdxUserThreshold {
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tx.Type = TxTypeTransfer
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} else {
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return tracerr.Wrap(fmt.Errorf(
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"cannot determine type of L2Tx, invalid ToIdx value: %d", tx.ToIdx))
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}
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return nil
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}
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// SetID sets the ID of the transaction
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func (tx *L2Tx) SetID() error {
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txID, err := tx.CalculateTxID()
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if err != nil {
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return err
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}
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tx.TxID = txID
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return nil
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}
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// CalculateTxID returns the TxID of the transaction. This method is used to
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// set the TxID for L2Tx and for PoolL2Tx.
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func (tx L2Tx) CalculateTxID() ([TxIDLen]byte, error) {
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var txID TxID
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var b []byte
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// FromIdx
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fromIdxBytes, err := tx.FromIdx.Bytes()
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if err != nil {
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return txID, tracerr.Wrap(err)
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}
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b = append(b, fromIdxBytes[:]...)
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// TokenID
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b = append(b, tx.TokenID.Bytes()[:]...)
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// Amount
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amountFloat40, err := NewFloat40(tx.Amount)
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if err != nil {
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return txID, tracerr.Wrap(fmt.Errorf("%s: %d", err, tx.Amount))
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}
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amountFloat40Bytes, err := amountFloat40.Bytes()
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if err != nil {
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return txID, tracerr.Wrap(err)
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}
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b = append(b, amountFloat40Bytes...)
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// Nonce
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nonceBytes, err := tx.Nonce.Bytes()
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if err != nil {
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return txID, tracerr.Wrap(err)
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}
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b = append(b, nonceBytes[:]...)
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// Fee
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b = append(b, byte(tx.Fee))
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// calculate hash
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h := ethCrypto.Keccak256Hash(b).Bytes()
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txID[0] = TxIDPrefixL2Tx
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copy(txID[1:], h)
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return txID, nil
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}
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// Tx returns a *Tx from the L2Tx
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func (tx *L2Tx) Tx() *Tx {
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batchNum := new(BatchNum)
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*batchNum = tx.BatchNum
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fee := new(FeeSelector)
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*fee = tx.Fee
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nonce := new(Nonce)
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*nonce = tx.Nonce
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return &Tx{
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IsL1: false,
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TxID: tx.TxID,
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Type: tx.Type,
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Position: tx.Position,
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FromIdx: tx.FromIdx,
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ToIdx: tx.ToIdx,
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TokenID: tx.TokenID,
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Amount: tx.Amount,
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BatchNum: batchNum,
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EthBlockNum: tx.EthBlockNum,
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Fee: fee,
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Nonce: nonce,
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}
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}
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// PoolL2Tx returns the data structure of PoolL2Tx with the parameters of a
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// L2Tx filled
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func (tx L2Tx) PoolL2Tx() *PoolL2Tx {
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return &PoolL2Tx{
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TxID: tx.TxID,
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FromIdx: tx.FromIdx,
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ToIdx: tx.ToIdx,
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TokenID: tx.TokenID,
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Amount: tx.Amount,
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Fee: tx.Fee,
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Nonce: tx.Nonce,
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Type: tx.Type,
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}
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}
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// L2TxsToPoolL2Txs returns an array of []*PoolL2Tx from an array of []*L2Tx,
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// where the PoolL2Tx only have the parameters of a L2Tx filled.
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func L2TxsToPoolL2Txs(txs []L2Tx) []PoolL2Tx {
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var r []PoolL2Tx
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for _, tx := range txs {
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r = append(r, *tx.PoolL2Tx())
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}
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return r
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}
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// TxIDsFromL2Txs returns an array of TxID from the []L2Tx
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func TxIDsFromL2Txs(txs []L2Tx) []TxID {
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txIDs := make([]TxID, len(txs))
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for i, tx := range txs {
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txIDs[i] = tx.TxID
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}
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return txIDs
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}
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// BytesDataAvailability encodes a L2Tx into []byte for the Data Availability
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// [ fromIdx | toIdx | amountFloat40 | Fee ]
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func (tx L2Tx) BytesDataAvailability(nLevels uint32) ([]byte, error) {
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idxLen := nLevels / 8 //nolint:gomnd
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b := make([]byte, ((nLevels*2)+40+8)/8) //nolint:gomnd
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fromIdxBytes, err := tx.FromIdx.Bytes()
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if err != nil {
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return nil, tracerr.Wrap(err)
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}
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copy(b[0:idxLen], fromIdxBytes[6-idxLen:]) // [6-idxLen:] as is BigEndian
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toIdxBytes, err := tx.ToIdx.Bytes()
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if err != nil {
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return nil, tracerr.Wrap(err)
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}
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copy(b[idxLen:idxLen*2], toIdxBytes[6-idxLen:])
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amountFloat40, err := NewFloat40(tx.Amount)
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if err != nil {
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return nil, tracerr.Wrap(err)
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}
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amountFloat40Bytes, err := amountFloat40.Bytes()
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if err != nil {
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return nil, tracerr.Wrap(err)
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}
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copy(b[idxLen*2:idxLen*2+Float40BytesLength], amountFloat40Bytes)
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b[idxLen*2+Float40BytesLength] = byte(tx.Fee)
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return b[:], nil
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}
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// L2TxFromBytesDataAvailability decodes a L2Tx from []byte (Data Availability)
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func L2TxFromBytesDataAvailability(b []byte, nLevels int) (*L2Tx, error) {
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idxLen := nLevels / 8 //nolint:gomnd
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tx := &L2Tx{}
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var err error
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var paddedFromIdxBytes [6]byte
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copy(paddedFromIdxBytes[6-idxLen:], b[0:idxLen])
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tx.FromIdx, err = IdxFromBytes(paddedFromIdxBytes[:])
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if err != nil {
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return nil, tracerr.Wrap(err)
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}
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var paddedToIdxBytes [6]byte
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copy(paddedToIdxBytes[6-idxLen:6], b[idxLen:idxLen*2])
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tx.ToIdx, err = IdxFromBytes(paddedToIdxBytes[:])
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if err != nil {
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return nil, tracerr.Wrap(err)
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}
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tx.Amount, err = Float40FromBytes(b[idxLen*2 : idxLen*2+Float40BytesLength]).BigInt()
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if err != nil {
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return nil, tracerr.Wrap(err)
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}
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tx.Fee = FeeSelector(b[idxLen*2+Float40BytesLength])
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return tx, nil
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}
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