github.com/electroneum/electroneum-sc@v0.0.0-20230105223411-3bc1d078281e/internal/ethapi/api.go (about)

     1  // Copyright 2015 The go-ethereum Authors
     2  // This file is part of the go-ethereum library.
     3  //
     4  // The go-ethereum library is free software: you can redistribute it and/or modify
     5  // it under the terms of the GNU Lesser General Public License as published by
     6  // the Free Software Foundation, either version 3 of the License, or
     7  // (at your option) any later version.
     8  //
     9  // The go-ethereum library is distributed in the hope that it will be useful,
    10  // but WITHOUT ANY WARRANTY; without even the implied warranty of
    11  // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
    12  // GNU Lesser General Public License for more details.
    13  //
    14  // You should have received a copy of the GNU Lesser General Public License
    15  // along with the go-ethereum library. If not, see <http://www.gnu.org/licenses/>.
    16  
    17  package ethapi
    18  
    19  import (
    20  	"context"
    21  	"errors"
    22  	"fmt"
    23  	"math/big"
    24  	"strings"
    25  	"time"
    26  
    27  	"github.com/davecgh/go-spew/spew"
    28  	"github.com/electroneum/electroneum-sc/accounts"
    29  	"github.com/electroneum/electroneum-sc/accounts/abi"
    30  	"github.com/electroneum/electroneum-sc/accounts/keystore"
    31  	"github.com/electroneum/electroneum-sc/accounts/scwallet"
    32  	"github.com/electroneum/electroneum-sc/common"
    33  	"github.com/electroneum/electroneum-sc/common/hexutil"
    34  	"github.com/electroneum/electroneum-sc/common/math"
    35  	"github.com/electroneum/electroneum-sc/consensus/ethash"
    36  	"github.com/electroneum/electroneum-sc/consensus/misc"
    37  	"github.com/electroneum/electroneum-sc/core"
    38  	"github.com/electroneum/electroneum-sc/core/state"
    39  	"github.com/electroneum/electroneum-sc/core/types"
    40  	"github.com/electroneum/electroneum-sc/core/vm"
    41  	"github.com/electroneum/electroneum-sc/crypto"
    42  	"github.com/electroneum/electroneum-sc/eth/tracers/logger"
    43  	"github.com/electroneum/electroneum-sc/log"
    44  	"github.com/electroneum/electroneum-sc/p2p"
    45  	"github.com/electroneum/electroneum-sc/params"
    46  	"github.com/electroneum/electroneum-sc/rlp"
    47  	"github.com/electroneum/electroneum-sc/rpc"
    48  	"github.com/tyler-smith/go-bip39"
    49  )
    50  
    51  // PublicEthereumAPI provides an API to access Ethereum related information.
    52  // It offers only methods that operate on public data that is freely available to anyone.
    53  type PublicEthereumAPI struct {
    54  	b Backend
    55  }
    56  
    57  // NewPublicEthereumAPI creates a new Ethereum protocol API.
    58  func NewPublicEthereumAPI(b Backend) *PublicEthereumAPI {
    59  	return &PublicEthereumAPI{b}
    60  }
    61  
    62  // GasPrice returns a suggestion for a gas price for legacy transactions.
    63  func (s *PublicEthereumAPI) GasPrice(ctx context.Context) (*hexutil.Big, error) {
    64  	tipcap, err := s.b.SuggestGasTipCap(ctx)
    65  	if err != nil {
    66  		return nil, err
    67  	}
    68  	if head := s.b.CurrentHeader(); head.BaseFee != nil {
    69  		tipcap.Add(tipcap, head.BaseFee)
    70  	}
    71  	return (*hexutil.Big)(tipcap), err
    72  }
    73  
    74  // MaxPriorityFeePerGas returns a suggestion for a gas tip cap for dynamic fee transactions.
    75  func (s *PublicEthereumAPI) MaxPriorityFeePerGas(ctx context.Context) (*hexutil.Big, error) {
    76  	tipcap, err := s.b.SuggestGasTipCap(ctx)
    77  	if err != nil {
    78  		return nil, err
    79  	}
    80  	return (*hexutil.Big)(tipcap), err
    81  }
    82  
    83  type feeHistoryResult struct {
    84  	OldestBlock  *hexutil.Big     `json:"oldestBlock"`
    85  	Reward       [][]*hexutil.Big `json:"reward,omitempty"`
    86  	BaseFee      []*hexutil.Big   `json:"baseFeePerGas,omitempty"`
    87  	GasUsedRatio []float64        `json:"gasUsedRatio"`
    88  }
    89  
    90  func (s *PublicEthereumAPI) FeeHistory(ctx context.Context, blockCount rpc.DecimalOrHex, lastBlock rpc.BlockNumber, rewardPercentiles []float64) (*feeHistoryResult, error) {
    91  	oldest, reward, baseFee, gasUsed, err := s.b.FeeHistory(ctx, int(blockCount), lastBlock, rewardPercentiles)
    92  	if err != nil {
    93  		return nil, err
    94  	}
    95  	results := &feeHistoryResult{
    96  		OldestBlock:  (*hexutil.Big)(oldest),
    97  		GasUsedRatio: gasUsed,
    98  	}
    99  	if reward != nil {
   100  		results.Reward = make([][]*hexutil.Big, len(reward))
   101  		for i, w := range reward {
   102  			results.Reward[i] = make([]*hexutil.Big, len(w))
   103  			for j, v := range w {
   104  				results.Reward[i][j] = (*hexutil.Big)(v)
   105  			}
   106  		}
   107  	}
   108  	if baseFee != nil {
   109  		results.BaseFee = make([]*hexutil.Big, len(baseFee))
   110  		for i, v := range baseFee {
   111  			results.BaseFee[i] = (*hexutil.Big)(v)
   112  		}
   113  	}
   114  	return results, nil
   115  }
   116  
   117  // Syncing returns false in case the node is currently not syncing with the network. It can be up to date or has not
   118  // yet received the latest block headers from its pears. In case it is synchronizing:
   119  // - startingBlock: block number this node started to synchronise from
   120  // - currentBlock:  block number this node is currently importing
   121  // - highestBlock:  block number of the highest block header this node has received from peers
   122  // - pulledStates:  number of state entries processed until now
   123  // - knownStates:   number of known state entries that still need to be pulled
   124  func (s *PublicEthereumAPI) Syncing() (interface{}, error) {
   125  	progress := s.b.SyncProgress()
   126  
   127  	// Return not syncing if the synchronisation already completed
   128  	if progress.CurrentBlock >= progress.HighestBlock {
   129  		return false, nil
   130  	}
   131  	// Otherwise gather the block sync stats
   132  	return map[string]interface{}{
   133  		"startingBlock":       hexutil.Uint64(progress.StartingBlock),
   134  		"currentBlock":        hexutil.Uint64(progress.CurrentBlock),
   135  		"highestBlock":        hexutil.Uint64(progress.HighestBlock),
   136  		"syncedAccounts":      hexutil.Uint64(progress.SyncedAccounts),
   137  		"syncedAccountBytes":  hexutil.Uint64(progress.SyncedAccountBytes),
   138  		"syncedBytecodes":     hexutil.Uint64(progress.SyncedBytecodes),
   139  		"syncedBytecodeBytes": hexutil.Uint64(progress.SyncedBytecodeBytes),
   140  		"syncedStorage":       hexutil.Uint64(progress.SyncedStorage),
   141  		"syncedStorageBytes":  hexutil.Uint64(progress.SyncedStorageBytes),
   142  		"healedTrienodes":     hexutil.Uint64(progress.HealedTrienodes),
   143  		"healedTrienodeBytes": hexutil.Uint64(progress.HealedTrienodeBytes),
   144  		"healedBytecodes":     hexutil.Uint64(progress.HealedBytecodes),
   145  		"healedBytecodeBytes": hexutil.Uint64(progress.HealedBytecodeBytes),
   146  		"healingTrienodes":    hexutil.Uint64(progress.HealingTrienodes),
   147  		"healingBytecode":     hexutil.Uint64(progress.HealingBytecode),
   148  	}, nil
   149  }
   150  
   151  // PublicTxPoolAPI offers and API for the transaction pool. It only operates on data that is non confidential.
   152  type PublicTxPoolAPI struct {
   153  	b Backend
   154  }
   155  
   156  // NewPublicTxPoolAPI creates a new tx pool service that gives information about the transaction pool.
   157  func NewPublicTxPoolAPI(b Backend) *PublicTxPoolAPI {
   158  	return &PublicTxPoolAPI{b}
   159  }
   160  
   161  // Content returns the transactions contained within the transaction pool.
   162  func (s *PublicTxPoolAPI) Content() map[string]map[string]map[string]*RPCTransaction {
   163  	content := map[string]map[string]map[string]*RPCTransaction{
   164  		"pending": make(map[string]map[string]*RPCTransaction),
   165  		"queued":  make(map[string]map[string]*RPCTransaction),
   166  	}
   167  	pending, queue := s.b.TxPoolContent()
   168  	curHeader := s.b.CurrentHeader()
   169  	// Flatten the pending transactions
   170  	for account, txs := range pending {
   171  		dump := make(map[string]*RPCTransaction)
   172  		for _, tx := range txs {
   173  			dump[fmt.Sprintf("%d", tx.Nonce())] = newRPCPendingTransaction(tx, curHeader, s.b.ChainConfig())
   174  		}
   175  		content["pending"][account.Hex()] = dump
   176  	}
   177  	// Flatten the queued transactions
   178  	for account, txs := range queue {
   179  		dump := make(map[string]*RPCTransaction)
   180  		for _, tx := range txs {
   181  			dump[fmt.Sprintf("%d", tx.Nonce())] = newRPCPendingTransaction(tx, curHeader, s.b.ChainConfig())
   182  		}
   183  		content["queued"][account.Hex()] = dump
   184  	}
   185  	return content
   186  }
   187  
   188  // ContentFrom returns the transactions contained within the transaction pool.
   189  func (s *PublicTxPoolAPI) ContentFrom(addr common.Address) map[string]map[string]*RPCTransaction {
   190  	content := make(map[string]map[string]*RPCTransaction, 2)
   191  	pending, queue := s.b.TxPoolContentFrom(addr)
   192  	curHeader := s.b.CurrentHeader()
   193  
   194  	// Build the pending transactions
   195  	dump := make(map[string]*RPCTransaction, len(pending))
   196  	for _, tx := range pending {
   197  		dump[fmt.Sprintf("%d", tx.Nonce())] = newRPCPendingTransaction(tx, curHeader, s.b.ChainConfig())
   198  	}
   199  	content["pending"] = dump
   200  
   201  	// Build the queued transactions
   202  	dump = make(map[string]*RPCTransaction, len(queue))
   203  	for _, tx := range queue {
   204  		dump[fmt.Sprintf("%d", tx.Nonce())] = newRPCPendingTransaction(tx, curHeader, s.b.ChainConfig())
   205  	}
   206  	content["queued"] = dump
   207  
   208  	return content
   209  }
   210  
   211  // Status returns the number of pending and queued transaction in the pool.
   212  func (s *PublicTxPoolAPI) Status() map[string]hexutil.Uint {
   213  	pending, queue := s.b.Stats()
   214  	return map[string]hexutil.Uint{
   215  		"pending": hexutil.Uint(pending),
   216  		"queued":  hexutil.Uint(queue),
   217  	}
   218  }
   219  
   220  // Inspect retrieves the content of the transaction pool and flattens it into an
   221  // easily inspectable list.
   222  func (s *PublicTxPoolAPI) Inspect() map[string]map[string]map[string]string {
   223  	content := map[string]map[string]map[string]string{
   224  		"pending": make(map[string]map[string]string),
   225  		"queued":  make(map[string]map[string]string),
   226  	}
   227  	pending, queue := s.b.TxPoolContent()
   228  
   229  	// Define a formatter to flatten a transaction into a string
   230  	var format = func(tx *types.Transaction) string {
   231  		if to := tx.To(); to != nil {
   232  			return fmt.Sprintf("%s: %v wei + %v gas × %v wei", tx.To().Hex(), tx.Value(), tx.Gas(), tx.GasPrice())
   233  		}
   234  		return fmt.Sprintf("contract creation: %v wei + %v gas × %v wei", tx.Value(), tx.Gas(), tx.GasPrice())
   235  	}
   236  	// Flatten the pending transactions
   237  	for account, txs := range pending {
   238  		dump := make(map[string]string)
   239  		for _, tx := range txs {
   240  			dump[fmt.Sprintf("%d", tx.Nonce())] = format(tx)
   241  		}
   242  		content["pending"][account.Hex()] = dump
   243  	}
   244  	// Flatten the queued transactions
   245  	for account, txs := range queue {
   246  		dump := make(map[string]string)
   247  		for _, tx := range txs {
   248  			dump[fmt.Sprintf("%d", tx.Nonce())] = format(tx)
   249  		}
   250  		content["queued"][account.Hex()] = dump
   251  	}
   252  	return content
   253  }
   254  
   255  // PublicAccountAPI provides an API to access accounts managed by this node.
   256  // It offers only methods that can retrieve accounts.
   257  type PublicAccountAPI struct {
   258  	am *accounts.Manager
   259  }
   260  
   261  // NewPublicAccountAPI creates a new PublicAccountAPI.
   262  func NewPublicAccountAPI(am *accounts.Manager) *PublicAccountAPI {
   263  	return &PublicAccountAPI{am: am}
   264  }
   265  
   266  // Accounts returns the collection of accounts this node manages
   267  func (s *PublicAccountAPI) Accounts() []common.Address {
   268  	return s.am.Accounts()
   269  }
   270  
   271  // PrivateAccountAPI provides an API to access accounts managed by this node.
   272  // It offers methods to create, (un)lock en list accounts. Some methods accept
   273  // passwords and are therefore considered private by default.
   274  type PrivateAccountAPI struct {
   275  	am        *accounts.Manager
   276  	nonceLock *AddrLocker
   277  	b         Backend
   278  }
   279  
   280  // NewPrivateAccountAPI create a new PrivateAccountAPI.
   281  func NewPrivateAccountAPI(b Backend, nonceLock *AddrLocker) *PrivateAccountAPI {
   282  	return &PrivateAccountAPI{
   283  		am:        b.AccountManager(),
   284  		nonceLock: nonceLock,
   285  		b:         b,
   286  	}
   287  }
   288  
   289  // ListAccounts will return a list of addresses for accounts this node manages.
   290  func (s *PrivateAccountAPI) ListAccounts() []common.Address {
   291  	return s.am.Accounts()
   292  }
   293  
   294  // rawWallet is a JSON representation of an accounts.Wallet interface, with its
   295  // data contents extracted into plain fields.
   296  type rawWallet struct {
   297  	URL      string             `json:"url"`
   298  	Status   string             `json:"status"`
   299  	Failure  string             `json:"failure,omitempty"`
   300  	Accounts []accounts.Account `json:"accounts,omitempty"`
   301  }
   302  
   303  // ListWallets will return a list of wallets this node manages.
   304  func (s *PrivateAccountAPI) ListWallets() []rawWallet {
   305  	wallets := make([]rawWallet, 0) // return [] instead of nil if empty
   306  	for _, wallet := range s.am.Wallets() {
   307  		status, failure := wallet.Status()
   308  
   309  		raw := rawWallet{
   310  			URL:      wallet.URL().String(),
   311  			Status:   status,
   312  			Accounts: wallet.Accounts(),
   313  		}
   314  		if failure != nil {
   315  			raw.Failure = failure.Error()
   316  		}
   317  		wallets = append(wallets, raw)
   318  	}
   319  	return wallets
   320  }
   321  
   322  // OpenWallet initiates a hardware wallet opening procedure, establishing a USB
   323  // connection and attempting to authenticate via the provided passphrase. Note,
   324  // the method may return an extra challenge requiring a second open (e.g. the
   325  // Trezor PIN matrix challenge).
   326  func (s *PrivateAccountAPI) OpenWallet(url string, passphrase *string) error {
   327  	wallet, err := s.am.Wallet(url)
   328  	if err != nil {
   329  		return err
   330  	}
   331  	pass := ""
   332  	if passphrase != nil {
   333  		pass = *passphrase
   334  	}
   335  	return wallet.Open(pass)
   336  }
   337  
   338  // DeriveAccount requests a HD wallet to derive a new account, optionally pinning
   339  // it for later reuse.
   340  func (s *PrivateAccountAPI) DeriveAccount(url string, path string, pin *bool) (accounts.Account, error) {
   341  	wallet, err := s.am.Wallet(url)
   342  	if err != nil {
   343  		return accounts.Account{}, err
   344  	}
   345  	derivPath, err := accounts.ParseDerivationPath(path)
   346  	if err != nil {
   347  		return accounts.Account{}, err
   348  	}
   349  	if pin == nil {
   350  		pin = new(bool)
   351  	}
   352  	return wallet.Derive(derivPath, *pin)
   353  }
   354  
   355  // NewAccount will create a new account and returns the address for the new account.
   356  func (s *PrivateAccountAPI) NewAccount(password string) (common.Address, error) {
   357  	ks, err := fetchKeystore(s.am)
   358  	if err != nil {
   359  		return common.Address{}, err
   360  	}
   361  	acc, err := ks.NewAccount(password)
   362  	if err == nil {
   363  		log.Info("Your new key was generated", "address", acc.Address)
   364  		log.Warn("Please backup your key file!", "path", acc.URL.Path)
   365  		log.Warn("Please remember your password!")
   366  		return acc.Address, nil
   367  	}
   368  	return common.Address{}, err
   369  }
   370  
   371  // fetchKeystore retrieves the encrypted keystore from the account manager.
   372  func fetchKeystore(am *accounts.Manager) (*keystore.KeyStore, error) {
   373  	if ks := am.Backends(keystore.KeyStoreType); len(ks) > 0 {
   374  		return ks[0].(*keystore.KeyStore), nil
   375  	}
   376  	return nil, errors.New("local keystore not used")
   377  }
   378  
   379  // ImportRawKey stores the given hex encoded ECDSA key into the key directory,
   380  // encrypting it with the passphrase.
   381  func (s *PrivateAccountAPI) ImportRawKey(privkey string, password string) (common.Address, error) {
   382  	key, err := crypto.HexToECDSA(privkey)
   383  	if err != nil {
   384  		return common.Address{}, err
   385  	}
   386  	ks, err := fetchKeystore(s.am)
   387  	if err != nil {
   388  		return common.Address{}, err
   389  	}
   390  	acc, err := ks.ImportECDSA(key, password)
   391  	return acc.Address, err
   392  }
   393  
   394  // UnlockAccount will unlock the account associated with the given address with
   395  // the given password for duration seconds. If duration is nil it will use a
   396  // default of 300 seconds. It returns an indication if the account was unlocked.
   397  func (s *PrivateAccountAPI) UnlockAccount(ctx context.Context, addr common.Address, password string, duration *uint64) (bool, error) {
   398  	// When the API is exposed by external RPC(http, ws etc), unless the user
   399  	// explicitly specifies to allow the insecure account unlocking, otherwise
   400  	// it is disabled.
   401  	if s.b.ExtRPCEnabled() && !s.b.AccountManager().Config().InsecureUnlockAllowed {
   402  		return false, errors.New("account unlock with HTTP access is forbidden")
   403  	}
   404  
   405  	const max = uint64(time.Duration(math.MaxInt64) / time.Second)
   406  	var d time.Duration
   407  	if duration == nil {
   408  		d = 300 * time.Second
   409  	} else if *duration > max {
   410  		return false, errors.New("unlock duration too large")
   411  	} else {
   412  		d = time.Duration(*duration) * time.Second
   413  	}
   414  	ks, err := fetchKeystore(s.am)
   415  	if err != nil {
   416  		return false, err
   417  	}
   418  	err = ks.TimedUnlock(accounts.Account{Address: addr}, password, d)
   419  	if err != nil {
   420  		log.Warn("Failed account unlock attempt", "address", addr, "err", err)
   421  	}
   422  	return err == nil, err
   423  }
   424  
   425  // LockAccount will lock the account associated with the given address when it's unlocked.
   426  func (s *PrivateAccountAPI) LockAccount(addr common.Address) bool {
   427  	if ks, err := fetchKeystore(s.am); err == nil {
   428  		return ks.Lock(addr) == nil
   429  	}
   430  	return false
   431  }
   432  
   433  // signTransaction sets defaults and signs the given transaction
   434  // NOTE: the caller needs to ensure that the nonceLock is held, if applicable,
   435  // and release it after the transaction has been submitted to the tx pool
   436  func (s *PrivateAccountAPI) signTransaction(ctx context.Context, args *TransactionArgs, passwd string) (*types.Transaction, error) {
   437  	// Look up the wallet containing the requested signer
   438  	account := accounts.Account{Address: args.from()}
   439  	wallet, err := s.am.Find(account)
   440  	if err != nil {
   441  		return nil, err
   442  	}
   443  	// Set some sanity defaults and terminate on failure
   444  	if err := args.setDefaults(ctx, s.b); err != nil {
   445  		return nil, err
   446  	}
   447  	// Assemble the transaction and sign with the wallet
   448  	tx := args.toTransaction()
   449  
   450  	return wallet.SignTxWithPassphrase(account, passwd, tx, s.b.ChainConfig().ChainID)
   451  }
   452  
   453  // SendTransaction will create a transaction from the given arguments and
   454  // tries to sign it with the key associated with args.From. If the given
   455  // passwd isn't able to decrypt the key it fails.
   456  func (s *PrivateAccountAPI) SendTransaction(ctx context.Context, args TransactionArgs, passwd string) (common.Hash, error) {
   457  	if args.Nonce == nil {
   458  		// Hold the addresse's mutex around signing to prevent concurrent assignment of
   459  		// the same nonce to multiple accounts.
   460  		s.nonceLock.LockAddr(args.from())
   461  		defer s.nonceLock.UnlockAddr(args.from())
   462  	}
   463  	signed, err := s.signTransaction(ctx, &args, passwd)
   464  	if err != nil {
   465  		log.Warn("Failed transaction send attempt", "from", args.from(), "to", args.To, "value", args.Value.ToInt(), "err", err)
   466  		return common.Hash{}, err
   467  	}
   468  	return SubmitTransaction(ctx, s.b, signed)
   469  }
   470  
   471  // SignTransaction will create a transaction from the given arguments and
   472  // tries to sign it with the key associated with args.From. If the given passwd isn't
   473  // able to decrypt the key it fails. The transaction is returned in RLP-form, not broadcast
   474  // to other nodes
   475  func (s *PrivateAccountAPI) SignTransaction(ctx context.Context, args TransactionArgs, passwd string) (*SignTransactionResult, error) {
   476  	// No need to obtain the noncelock mutex, since we won't be sending this
   477  	// tx into the transaction pool, but right back to the user
   478  	if args.From == nil {
   479  		return nil, fmt.Errorf("sender not specified")
   480  	}
   481  	if args.Gas == nil {
   482  		return nil, fmt.Errorf("gas not specified")
   483  	}
   484  	if args.GasPrice == nil && (args.MaxFeePerGas == nil || args.MaxPriorityFeePerGas == nil) {
   485  		return nil, fmt.Errorf("missing gasPrice or maxFeePerGas/maxPriorityFeePerGas")
   486  	}
   487  	if args.Nonce == nil {
   488  		return nil, fmt.Errorf("nonce not specified")
   489  	}
   490  	// Before actually signing the transaction, ensure the transaction fee is reasonable.
   491  	tx := args.toTransaction()
   492  	if err := checkTxFee(tx.GasPrice(), tx.Gas(), s.b.RPCTxFeeCap()); err != nil {
   493  		return nil, err
   494  	}
   495  	signed, err := s.signTransaction(ctx, &args, passwd)
   496  	if err != nil {
   497  		log.Warn("Failed transaction sign attempt", "from", args.from(), "to", args.To, "value", args.Value.ToInt(), "err", err)
   498  		return nil, err
   499  	}
   500  	data, err := signed.MarshalBinary()
   501  	if err != nil {
   502  		return nil, err
   503  	}
   504  	return &SignTransactionResult{data, signed}, nil
   505  }
   506  
   507  // Sign calculates an Ethereum ECDSA signature for:
   508  // keccack256("\x19Ethereum Signed Message:\n" + len(message) + message))
   509  //
   510  // Note, the produced signature conforms to the secp256k1 curve R, S and V values,
   511  // where the V value will be 27 or 28 for legacy reasons.
   512  //
   513  // The key used to calculate the signature is decrypted with the given password.
   514  //
   515  // https://github.com/electroneum/electroneum-sc/wiki/Management-APIs#personal_sign
   516  func (s *PrivateAccountAPI) Sign(ctx context.Context, data hexutil.Bytes, addr common.Address, passwd string) (hexutil.Bytes, error) {
   517  	// Look up the wallet containing the requested signer
   518  	account := accounts.Account{Address: addr}
   519  
   520  	wallet, err := s.b.AccountManager().Find(account)
   521  	if err != nil {
   522  		return nil, err
   523  	}
   524  	// Assemble sign the data with the wallet
   525  	signature, err := wallet.SignTextWithPassphrase(account, passwd, data)
   526  	if err != nil {
   527  		log.Warn("Failed data sign attempt", "address", addr, "err", err)
   528  		return nil, err
   529  	}
   530  	signature[crypto.RecoveryIDOffset] += 27 // Transform V from 0/1 to 27/28 according to the yellow paper
   531  	return signature, nil
   532  }
   533  
   534  // EcRecover returns the address for the account that was used to create the signature.
   535  // Note, this function is compatible with eth_sign and personal_sign. As such it recovers
   536  // the address of:
   537  // hash = keccak256("\x19Ethereum Signed Message:\n"${message length}${message})
   538  // addr = ecrecover(hash, signature)
   539  //
   540  // Note, the signature must conform to the secp256k1 curve R, S and V values, where
   541  // the V value must be 27 or 28 for legacy reasons.
   542  //
   543  // https://github.com/electroneum/electroneum-sc/wiki/Management-APIs#personal_ecRecover
   544  func (s *PrivateAccountAPI) EcRecover(ctx context.Context, data, sig hexutil.Bytes) (common.Address, error) {
   545  	if len(sig) != crypto.SignatureLength {
   546  		return common.Address{}, fmt.Errorf("signature must be %d bytes long", crypto.SignatureLength)
   547  	}
   548  	if sig[crypto.RecoveryIDOffset] != 27 && sig[crypto.RecoveryIDOffset] != 28 {
   549  		return common.Address{}, fmt.Errorf("invalid Ethereum signature (V is not 27 or 28)")
   550  	}
   551  	sig[crypto.RecoveryIDOffset] -= 27 // Transform yellow paper V from 27/28 to 0/1
   552  
   553  	rpk, err := crypto.SigToPub(accounts.TextHash(data), sig)
   554  	if err != nil {
   555  		return common.Address{}, err
   556  	}
   557  	return crypto.PubkeyToAddress(*rpk), nil
   558  }
   559  
   560  // SignAndSendTransaction was renamed to SendTransaction. This method is deprecated
   561  // and will be removed in the future. It primary goal is to give clients time to update.
   562  func (s *PrivateAccountAPI) SignAndSendTransaction(ctx context.Context, args TransactionArgs, passwd string) (common.Hash, error) {
   563  	return s.SendTransaction(ctx, args, passwd)
   564  }
   565  
   566  // InitializeWallet initializes a new wallet at the provided URL, by generating and returning a new private key.
   567  func (s *PrivateAccountAPI) InitializeWallet(ctx context.Context, url string) (string, error) {
   568  	wallet, err := s.am.Wallet(url)
   569  	if err != nil {
   570  		return "", err
   571  	}
   572  
   573  	entropy, err := bip39.NewEntropy(256)
   574  	if err != nil {
   575  		return "", err
   576  	}
   577  
   578  	mnemonic, err := bip39.NewMnemonic(entropy)
   579  	if err != nil {
   580  		return "", err
   581  	}
   582  
   583  	seed := bip39.NewSeed(mnemonic, "")
   584  
   585  	switch wallet := wallet.(type) {
   586  	case *scwallet.Wallet:
   587  		return mnemonic, wallet.Initialize(seed)
   588  	default:
   589  		return "", fmt.Errorf("specified wallet does not support initialization")
   590  	}
   591  }
   592  
   593  // Unpair deletes a pairing between wallet and geth.
   594  func (s *PrivateAccountAPI) Unpair(ctx context.Context, url string, pin string) error {
   595  	wallet, err := s.am.Wallet(url)
   596  	if err != nil {
   597  		return err
   598  	}
   599  
   600  	switch wallet := wallet.(type) {
   601  	case *scwallet.Wallet:
   602  		return wallet.Unpair([]byte(pin))
   603  	default:
   604  		return fmt.Errorf("specified wallet does not support pairing")
   605  	}
   606  }
   607  
   608  // PublicBlockChainAPI provides an API to access the Ethereum blockchain.
   609  // It offers only methods that operate on public data that is freely available to anyone.
   610  type PublicBlockChainAPI struct {
   611  	b Backend
   612  }
   613  
   614  // NewPublicBlockChainAPI creates a new Ethereum blockchain API.
   615  func NewPublicBlockChainAPI(b Backend) *PublicBlockChainAPI {
   616  	return &PublicBlockChainAPI{b}
   617  }
   618  
   619  // ChainId is the EIP-155 replay-protection chain id for the current ethereum chain config.
   620  func (api *PublicBlockChainAPI) ChainId() (*hexutil.Big, error) {
   621  	// if current block is at or past the EIP-155 replay-protection fork block, return chainID from config
   622  	if config := api.b.ChainConfig(); config.IsEIP155(api.b.CurrentBlock().Number()) {
   623  		return (*hexutil.Big)(config.ChainID), nil
   624  	}
   625  	return nil, fmt.Errorf("chain not synced beyond EIP-155 replay-protection fork block")
   626  }
   627  
   628  // BlockNumber returns the block number of the chain head.
   629  func (s *PublicBlockChainAPI) BlockNumber() hexutil.Uint64 {
   630  	header, _ := s.b.HeaderByNumber(context.Background(), rpc.LatestBlockNumber) // latest header should always be available
   631  	return hexutil.Uint64(header.Number.Uint64())
   632  }
   633  
   634  // GetBalance returns the amount of wei for the given address in the state of the
   635  // given block number. The rpc.LatestBlockNumber and rpc.PendingBlockNumber meta
   636  // block numbers are also allowed.
   637  func (s *PublicBlockChainAPI) GetBalance(ctx context.Context, address common.Address, blockNrOrHash rpc.BlockNumberOrHash) (*hexutil.Big, error) {
   638  	state, _, err := s.b.StateAndHeaderByNumberOrHash(ctx, blockNrOrHash)
   639  	if state == nil || err != nil {
   640  		return nil, err
   641  	}
   642  	return (*hexutil.Big)(state.GetBalance(address)), state.Error()
   643  }
   644  
   645  // Result structs for GetProof
   646  type AccountResult struct {
   647  	Address      common.Address  `json:"address"`
   648  	AccountProof []string        `json:"accountProof"`
   649  	Balance      *hexutil.Big    `json:"balance"`
   650  	CodeHash     common.Hash     `json:"codeHash"`
   651  	Nonce        hexutil.Uint64  `json:"nonce"`
   652  	StorageHash  common.Hash     `json:"storageHash"`
   653  	StorageProof []StorageResult `json:"storageProof"`
   654  }
   655  
   656  type StorageResult struct {
   657  	Key   string       `json:"key"`
   658  	Value *hexutil.Big `json:"value"`
   659  	Proof []string     `json:"proof"`
   660  }
   661  
   662  // GetProof returns the Merkle-proof for a given account and optionally some storage keys.
   663  func (s *PublicBlockChainAPI) GetProof(ctx context.Context, address common.Address, storageKeys []string, blockNrOrHash rpc.BlockNumberOrHash) (*AccountResult, error) {
   664  	state, _, err := s.b.StateAndHeaderByNumberOrHash(ctx, blockNrOrHash)
   665  	if state == nil || err != nil {
   666  		return nil, err
   667  	}
   668  
   669  	storageTrie := state.StorageTrie(address)
   670  	storageHash := types.EmptyRootHash
   671  	codeHash := state.GetCodeHash(address)
   672  	storageProof := make([]StorageResult, len(storageKeys))
   673  
   674  	// if we have a storageTrie, (which means the account exists), we can update the storagehash
   675  	if storageTrie != nil {
   676  		storageHash = storageTrie.Hash()
   677  	} else {
   678  		// no storageTrie means the account does not exist, so the codeHash is the hash of an empty bytearray.
   679  		codeHash = crypto.Keccak256Hash(nil)
   680  	}
   681  
   682  	// create the proof for the storageKeys
   683  	for i, key := range storageKeys {
   684  		if storageTrie != nil {
   685  			proof, storageError := state.GetStorageProof(address, common.HexToHash(key))
   686  			if storageError != nil {
   687  				return nil, storageError
   688  			}
   689  			storageProof[i] = StorageResult{key, (*hexutil.Big)(state.GetState(address, common.HexToHash(key)).Big()), toHexSlice(proof)}
   690  		} else {
   691  			storageProof[i] = StorageResult{key, &hexutil.Big{}, []string{}}
   692  		}
   693  	}
   694  
   695  	// create the accountProof
   696  	accountProof, proofErr := state.GetProof(address)
   697  	if proofErr != nil {
   698  		return nil, proofErr
   699  	}
   700  
   701  	return &AccountResult{
   702  		Address:      address,
   703  		AccountProof: toHexSlice(accountProof),
   704  		Balance:      (*hexutil.Big)(state.GetBalance(address)),
   705  		CodeHash:     codeHash,
   706  		Nonce:        hexutil.Uint64(state.GetNonce(address)),
   707  		StorageHash:  storageHash,
   708  		StorageProof: storageProof,
   709  	}, state.Error()
   710  }
   711  
   712  // GetHeaderByNumber returns the requested canonical block header.
   713  // * When blockNr is -1 the chain head is returned.
   714  // * When blockNr is -2 the pending chain head is returned.
   715  func (s *PublicBlockChainAPI) GetHeaderByNumber(ctx context.Context, number rpc.BlockNumber) (map[string]interface{}, error) {
   716  	header, err := s.b.HeaderByNumber(ctx, number)
   717  	if header != nil && err == nil {
   718  		response := s.rpcMarshalHeader(ctx, header)
   719  		if number == rpc.PendingBlockNumber {
   720  			// Pending header need to nil out a few fields
   721  			for _, field := range []string{"hash", "nonce", "miner"} {
   722  				response[field] = nil
   723  			}
   724  		}
   725  		return response, err
   726  	}
   727  	return nil, err
   728  }
   729  
   730  // GetHeaderByHash returns the requested header by hash.
   731  func (s *PublicBlockChainAPI) GetHeaderByHash(ctx context.Context, hash common.Hash) map[string]interface{} {
   732  	header, _ := s.b.HeaderByHash(ctx, hash)
   733  	if header != nil {
   734  		return s.rpcMarshalHeader(ctx, header)
   735  	}
   736  	return nil
   737  }
   738  
   739  // GetBlockByNumber returns the requested canonical block.
   740  //   - When blockNr is -1 the chain head is returned.
   741  //   - When blockNr is -2 the pending chain head is returned.
   742  //   - When fullTx is true all transactions in the block are returned, otherwise
   743  //     only the transaction hash is returned
   744  func (s *PublicBlockChainAPI) GetBlockByNumber(ctx context.Context, number rpc.BlockNumber, fullTx bool) (map[string]interface{}, error) {
   745  	block, err := s.b.BlockByNumber(ctx, number)
   746  	if block != nil && err == nil {
   747  		response, err := s.rpcMarshalBlock(ctx, block, true, fullTx)
   748  		if err == nil && number == rpc.PendingBlockNumber {
   749  			// Pending blocks need to nil out a few fields
   750  			for _, field := range []string{"hash", "nonce", "miner"} {
   751  				response[field] = nil
   752  			}
   753  		}
   754  		return response, err
   755  	}
   756  	return nil, err
   757  }
   758  
   759  // GetBlockByHash returns the requested block. When fullTx is true all transactions in the block are returned in full
   760  // detail, otherwise only the transaction hash is returned.
   761  func (s *PublicBlockChainAPI) GetBlockByHash(ctx context.Context, hash common.Hash, fullTx bool) (map[string]interface{}, error) {
   762  	block, err := s.b.BlockByHash(ctx, hash)
   763  	if block != nil {
   764  		return s.rpcMarshalBlock(ctx, block, true, fullTx)
   765  	}
   766  	return nil, err
   767  }
   768  
   769  // GetUncleByBlockNumberAndIndex returns the uncle block for the given block hash and index.
   770  func (s *PublicBlockChainAPI) GetUncleByBlockNumberAndIndex(ctx context.Context, blockNr rpc.BlockNumber, index hexutil.Uint) (map[string]interface{}, error) {
   771  	block, err := s.b.BlockByNumber(ctx, blockNr)
   772  	if block != nil {
   773  		uncles := block.Uncles()
   774  		if index >= hexutil.Uint(len(uncles)) {
   775  			log.Debug("Requested uncle not found", "number", blockNr, "hash", block.Hash(), "index", index)
   776  			return nil, nil
   777  		}
   778  		block = types.NewBlockWithHeader(uncles[index])
   779  		return s.rpcMarshalBlock(ctx, block, false, false)
   780  	}
   781  	return nil, err
   782  }
   783  
   784  // GetUncleByBlockHashAndIndex returns the uncle block for the given block hash and index.
   785  func (s *PublicBlockChainAPI) GetUncleByBlockHashAndIndex(ctx context.Context, blockHash common.Hash, index hexutil.Uint) (map[string]interface{}, error) {
   786  	block, err := s.b.BlockByHash(ctx, blockHash)
   787  	if block != nil {
   788  		uncles := block.Uncles()
   789  		if index >= hexutil.Uint(len(uncles)) {
   790  			log.Debug("Requested uncle not found", "number", block.Number(), "hash", blockHash, "index", index)
   791  			return nil, nil
   792  		}
   793  		block = types.NewBlockWithHeader(uncles[index])
   794  		return s.rpcMarshalBlock(ctx, block, false, false)
   795  	}
   796  	return nil, err
   797  }
   798  
   799  // GetUncleCountByBlockNumber returns number of uncles in the block for the given block number
   800  func (s *PublicBlockChainAPI) GetUncleCountByBlockNumber(ctx context.Context, blockNr rpc.BlockNumber) *hexutil.Uint {
   801  	if block, _ := s.b.BlockByNumber(ctx, blockNr); block != nil {
   802  		n := hexutil.Uint(len(block.Uncles()))
   803  		return &n
   804  	}
   805  	return nil
   806  }
   807  
   808  // GetUncleCountByBlockHash returns number of uncles in the block for the given block hash
   809  func (s *PublicBlockChainAPI) GetUncleCountByBlockHash(ctx context.Context, blockHash common.Hash) *hexutil.Uint {
   810  	if block, _ := s.b.BlockByHash(ctx, blockHash); block != nil {
   811  		n := hexutil.Uint(len(block.Uncles()))
   812  		return &n
   813  	}
   814  	return nil
   815  }
   816  
   817  // GetCode returns the code stored at the given address in the state for the given block number.
   818  func (s *PublicBlockChainAPI) GetCode(ctx context.Context, address common.Address, blockNrOrHash rpc.BlockNumberOrHash) (hexutil.Bytes, error) {
   819  	state, _, err := s.b.StateAndHeaderByNumberOrHash(ctx, blockNrOrHash)
   820  	if state == nil || err != nil {
   821  		return nil, err
   822  	}
   823  	code := state.GetCode(address)
   824  	return code, state.Error()
   825  }
   826  
   827  // GetStorageAt returns the storage from the state at the given address, key and
   828  // block number. The rpc.LatestBlockNumber and rpc.PendingBlockNumber meta block
   829  // numbers are also allowed.
   830  func (s *PublicBlockChainAPI) GetStorageAt(ctx context.Context, address common.Address, key string, blockNrOrHash rpc.BlockNumberOrHash) (hexutil.Bytes, error) {
   831  	state, _, err := s.b.StateAndHeaderByNumberOrHash(ctx, blockNrOrHash)
   832  	if state == nil || err != nil {
   833  		return nil, err
   834  	}
   835  	res := state.GetState(address, common.HexToHash(key))
   836  	return res[:], state.Error()
   837  }
   838  
   839  // OverrideAccount indicates the overriding fields of account during the execution
   840  // of a message call.
   841  // Note, state and stateDiff can't be specified at the same time. If state is
   842  // set, message execution will only use the data in the given state. Otherwise
   843  // if statDiff is set, all diff will be applied first and then execute the call
   844  // message.
   845  type OverrideAccount struct {
   846  	Nonce     *hexutil.Uint64              `json:"nonce"`
   847  	Code      *hexutil.Bytes               `json:"code"`
   848  	Balance   **hexutil.Big                `json:"balance"`
   849  	State     *map[common.Hash]common.Hash `json:"state"`
   850  	StateDiff *map[common.Hash]common.Hash `json:"stateDiff"`
   851  }
   852  
   853  // StateOverride is the collection of overridden accounts.
   854  type StateOverride map[common.Address]OverrideAccount
   855  
   856  // Apply overrides the fields of specified accounts into the given state.
   857  func (diff *StateOverride) Apply(state *state.StateDB) error {
   858  	if diff == nil {
   859  		return nil
   860  	}
   861  	for addr, account := range *diff {
   862  		// Override account nonce.
   863  		if account.Nonce != nil {
   864  			state.SetNonce(addr, uint64(*account.Nonce))
   865  		}
   866  		// Override account(contract) code.
   867  		if account.Code != nil {
   868  			state.SetCode(addr, *account.Code)
   869  		}
   870  		// Override account balance.
   871  		if account.Balance != nil {
   872  			state.SetBalance(addr, (*big.Int)(*account.Balance))
   873  		}
   874  		if account.State != nil && account.StateDiff != nil {
   875  			return fmt.Errorf("account %s has both 'state' and 'stateDiff'", addr.Hex())
   876  		}
   877  		// Replace entire state if caller requires.
   878  		if account.State != nil {
   879  			state.SetStorage(addr, *account.State)
   880  		}
   881  		// Apply state diff into specified accounts.
   882  		if account.StateDiff != nil {
   883  			for key, value := range *account.StateDiff {
   884  				state.SetState(addr, key, value)
   885  			}
   886  		}
   887  	}
   888  	return nil
   889  }
   890  
   891  func DoCall(ctx context.Context, b Backend, args TransactionArgs, blockNrOrHash rpc.BlockNumberOrHash, overrides *StateOverride, timeout time.Duration, globalGasCap uint64) (*core.ExecutionResult, error) {
   892  	defer func(start time.Time) { log.Debug("Executing EVM call finished", "runtime", time.Since(start)) }(time.Now())
   893  
   894  	state, header, err := b.StateAndHeaderByNumberOrHash(ctx, blockNrOrHash)
   895  	if state == nil || err != nil {
   896  		return nil, err
   897  	}
   898  	if err := overrides.Apply(state); err != nil {
   899  		return nil, err
   900  	}
   901  	// Setup context so it may be cancelled the call has completed
   902  	// or, in case of unmetered gas, setup a context with a timeout.
   903  	var cancel context.CancelFunc
   904  	if timeout > 0 {
   905  		ctx, cancel = context.WithTimeout(ctx, timeout)
   906  	} else {
   907  		ctx, cancel = context.WithCancel(ctx)
   908  	}
   909  	// Make sure the context is cancelled when the call has completed
   910  	// this makes sure resources are cleaned up.
   911  	defer cancel()
   912  
   913  	// Get a new instance of the EVM.
   914  	msg, err := args.ToMessage(globalGasCap, header.BaseFee)
   915  	if err != nil {
   916  		return nil, err
   917  	}
   918  	evm, vmError, err := b.GetEVM(ctx, msg, state, header, &vm.Config{NoBaseFee: true})
   919  	if err != nil {
   920  		return nil, err
   921  	}
   922  	// Wait for the context to be done and cancel the evm. Even if the
   923  	// EVM has finished, cancelling may be done (repeatedly)
   924  	go func() {
   925  		<-ctx.Done()
   926  		evm.Cancel()
   927  	}()
   928  
   929  	// Execute the message.
   930  	gp := new(core.GasPool).AddGas(math.MaxUint64)
   931  	result, err := core.ApplyMessage(evm, msg, gp)
   932  	if err := vmError(); err != nil {
   933  		return nil, err
   934  	}
   935  
   936  	// If the timer caused an abort, return an appropriate error message
   937  	if evm.Cancelled() {
   938  		return nil, fmt.Errorf("execution aborted (timeout = %v)", timeout)
   939  	}
   940  	if err != nil {
   941  		return result, fmt.Errorf("err: %w (supplied gas %d)", err, msg.Gas())
   942  	}
   943  	return result, nil
   944  }
   945  
   946  func newRevertError(result *core.ExecutionResult) *revertError {
   947  	reason, errUnpack := abi.UnpackRevert(result.Revert())
   948  	err := errors.New("execution reverted")
   949  	if errUnpack == nil {
   950  		err = fmt.Errorf("execution reverted: %v", reason)
   951  	}
   952  	return &revertError{
   953  		error:  err,
   954  		reason: hexutil.Encode(result.Revert()),
   955  	}
   956  }
   957  
   958  // revertError is an API error that encompassas an EVM revertal with JSON error
   959  // code and a binary data blob.
   960  type revertError struct {
   961  	error
   962  	reason string // revert reason hex encoded
   963  }
   964  
   965  // ErrorCode returns the JSON error code for a revertal.
   966  // See: https://github.com/ethereum/wiki/wiki/JSON-RPC-Error-Codes-Improvement-Proposal
   967  func (e *revertError) ErrorCode() int {
   968  	return 3
   969  }
   970  
   971  // ErrorData returns the hex encoded revert reason.
   972  func (e *revertError) ErrorData() interface{} {
   973  	return e.reason
   974  }
   975  
   976  // Call executes the given transaction on the state for the given block number.
   977  //
   978  // Additionally, the caller can specify a batch of contract for fields overriding.
   979  //
   980  // Note, this function doesn't make and changes in the state/blockchain and is
   981  // useful to execute and retrieve values.
   982  func (s *PublicBlockChainAPI) Call(ctx context.Context, args TransactionArgs, blockNrOrHash rpc.BlockNumberOrHash, overrides *StateOverride) (hexutil.Bytes, error) {
   983  	result, err := DoCall(ctx, s.b, args, blockNrOrHash, overrides, s.b.RPCEVMTimeout(), s.b.RPCGasCap())
   984  	if err != nil {
   985  		return nil, err
   986  	}
   987  	// If the result contains a revert reason, try to unpack and return it.
   988  	if len(result.Revert()) > 0 {
   989  		return nil, newRevertError(result)
   990  	}
   991  	return result.Return(), result.Err
   992  }
   993  
   994  func DoEstimateGas(ctx context.Context, b Backend, args TransactionArgs, blockNrOrHash rpc.BlockNumberOrHash, gasCap uint64) (hexutil.Uint64, error) {
   995  	// Binary search the gas requirement, as it may be higher than the amount used
   996  	var (
   997  		lo  uint64 = params.TxGas - 1
   998  		hi  uint64
   999  		cap uint64
  1000  	)
  1001  	// Use zero address if sender unspecified.
  1002  	if args.From == nil {
  1003  		args.From = new(common.Address)
  1004  	}
  1005  	// Determine the highest gas limit can be used during the estimation.
  1006  	if args.Gas != nil && uint64(*args.Gas) >= params.TxGas {
  1007  		hi = uint64(*args.Gas)
  1008  	} else {
  1009  		// Retrieve the block to act as the gas ceiling
  1010  		block, err := b.BlockByNumberOrHash(ctx, blockNrOrHash)
  1011  		if err != nil {
  1012  			return 0, err
  1013  		}
  1014  		if block == nil {
  1015  			return 0, errors.New("block not found")
  1016  		}
  1017  		hi = block.GasLimit()
  1018  	}
  1019  	// Normalize the max fee per gas the call is willing to spend.
  1020  	var feeCap *big.Int
  1021  	if args.GasPrice != nil && (args.MaxFeePerGas != nil || args.MaxPriorityFeePerGas != nil) {
  1022  		return 0, errors.New("both gasPrice and (maxFeePerGas or maxPriorityFeePerGas) specified")
  1023  	} else if args.GasPrice != nil {
  1024  		feeCap = args.GasPrice.ToInt()
  1025  	} else if args.MaxFeePerGas != nil {
  1026  		feeCap = args.MaxFeePerGas.ToInt()
  1027  	} else {
  1028  		feeCap = common.Big0
  1029  	}
  1030  	// Recap the highest gas limit with account's available balance.
  1031  	if feeCap.BitLen() != 0 {
  1032  		state, _, err := b.StateAndHeaderByNumberOrHash(ctx, blockNrOrHash)
  1033  		if err != nil {
  1034  			return 0, err
  1035  		}
  1036  		balance := state.GetBalance(*args.From) // from can't be nil
  1037  		available := new(big.Int).Set(balance)
  1038  		if args.Value != nil {
  1039  			if args.Value.ToInt().Cmp(available) >= 0 {
  1040  				return 0, errors.New("insufficient funds for transfer")
  1041  			}
  1042  			available.Sub(available, args.Value.ToInt())
  1043  		}
  1044  		allowance := new(big.Int).Div(available, feeCap)
  1045  
  1046  		// If the allowance is larger than maximum uint64, skip checking
  1047  		if allowance.IsUint64() && hi > allowance.Uint64() {
  1048  			transfer := args.Value
  1049  			if transfer == nil {
  1050  				transfer = new(hexutil.Big)
  1051  			}
  1052  			log.Warn("Gas estimation capped by limited funds", "original", hi, "balance", balance,
  1053  				"sent", transfer.ToInt(), "maxFeePerGas", feeCap, "fundable", allowance)
  1054  			hi = allowance.Uint64()
  1055  		}
  1056  	}
  1057  	// Recap the highest gas allowance with specified gascap.
  1058  	if gasCap != 0 && hi > gasCap {
  1059  		log.Warn("Caller gas above allowance, capping", "requested", hi, "cap", gasCap)
  1060  		hi = gasCap
  1061  	}
  1062  	cap = hi
  1063  
  1064  	// Create a helper to check if a gas allowance results in an executable transaction
  1065  	executable := func(gas uint64) (bool, *core.ExecutionResult, error) {
  1066  		args.Gas = (*hexutil.Uint64)(&gas)
  1067  
  1068  		result, err := DoCall(ctx, b, args, blockNrOrHash, nil, 0, gasCap)
  1069  		if err != nil {
  1070  			if errors.Is(err, core.ErrIntrinsicGas) {
  1071  				return true, nil, nil // Special case, raise gas limit
  1072  			}
  1073  			return true, nil, err // Bail out
  1074  		}
  1075  		return result.Failed(), result, nil
  1076  	}
  1077  	// Execute the binary search and hone in on an executable gas limit
  1078  	for lo+1 < hi {
  1079  		mid := (hi + lo) / 2
  1080  		failed, _, err := executable(mid)
  1081  
  1082  		// If the error is not nil(consensus error), it means the provided message
  1083  		// call or transaction will never be accepted no matter how much gas it is
  1084  		// assigned. Return the error directly, don't struggle any more.
  1085  		if err != nil {
  1086  			return 0, err
  1087  		}
  1088  		if failed {
  1089  			lo = mid
  1090  		} else {
  1091  			hi = mid
  1092  		}
  1093  	}
  1094  	// Reject the transaction as invalid if it still fails at the highest allowance
  1095  	if hi == cap {
  1096  		failed, result, err := executable(hi)
  1097  		if err != nil {
  1098  			return 0, err
  1099  		}
  1100  		if failed {
  1101  			if result != nil && result.Err != vm.ErrOutOfGas {
  1102  				if len(result.Revert()) > 0 {
  1103  					return 0, newRevertError(result)
  1104  				}
  1105  				return 0, result.Err
  1106  			}
  1107  			// Otherwise, the specified gas cap is too low
  1108  			return 0, fmt.Errorf("gas required exceeds allowance (%d)", cap)
  1109  		}
  1110  	}
  1111  	return hexutil.Uint64(hi), nil
  1112  }
  1113  
  1114  // EstimateGas returns an estimate of the amount of gas needed to execute the
  1115  // given transaction against the current pending block.
  1116  func (s *PublicBlockChainAPI) EstimateGas(ctx context.Context, args TransactionArgs, blockNrOrHash *rpc.BlockNumberOrHash) (hexutil.Uint64, error) {
  1117  	bNrOrHash := rpc.BlockNumberOrHashWithNumber(rpc.PendingBlockNumber)
  1118  	if blockNrOrHash != nil {
  1119  		bNrOrHash = *blockNrOrHash
  1120  	}
  1121  	return DoEstimateGas(ctx, s.b, args, bNrOrHash, s.b.RPCGasCap())
  1122  }
  1123  
  1124  // RPCMarshalHeader converts the given header to the RPC output .
  1125  func RPCMarshalHeader(head *types.Header) map[string]interface{} {
  1126  	result := map[string]interface{}{
  1127  		"number":           (*hexutil.Big)(head.Number),
  1128  		"hash":             head.Hash(),
  1129  		"parentHash":       head.ParentHash,
  1130  		"nonce":            head.Nonce,
  1131  		"mixHash":          head.MixDigest,
  1132  		"sha3Uncles":       head.UncleHash,
  1133  		"logsBloom":        head.Bloom,
  1134  		"stateRoot":        head.Root,
  1135  		"miner":            head.Coinbase,
  1136  		"difficulty":       (*hexutil.Big)(head.Difficulty),
  1137  		"extraData":        hexutil.Bytes(head.Extra),
  1138  		"size":             hexutil.Uint64(head.Size()),
  1139  		"gasLimit":         hexutil.Uint64(head.GasLimit),
  1140  		"gasUsed":          hexutil.Uint64(head.GasUsed),
  1141  		"timestamp":        hexutil.Uint64(head.Time),
  1142  		"transactionsRoot": head.TxHash,
  1143  		"receiptsRoot":     head.ReceiptHash,
  1144  	}
  1145  
  1146  	if head.BaseFee != nil {
  1147  		result["baseFeePerGas"] = (*hexutil.Big)(head.BaseFee)
  1148  	}
  1149  
  1150  	return result
  1151  }
  1152  
  1153  // RPCMarshalBlock converts the given block to the RPC output which depends on fullTx. If inclTx is true transactions are
  1154  // returned. When fullTx is true the returned block contains full transaction details, otherwise it will only contain
  1155  // transaction hashes.
  1156  func RPCMarshalBlock(block *types.Block, inclTx bool, fullTx bool, config *params.ChainConfig) (map[string]interface{}, error) {
  1157  	fields := RPCMarshalHeader(block.Header())
  1158  	fields["size"] = hexutil.Uint64(block.Size())
  1159  
  1160  	if inclTx {
  1161  		formatTx := func(tx *types.Transaction) (interface{}, error) {
  1162  			return tx.Hash(), nil
  1163  		}
  1164  		if fullTx {
  1165  			formatTx = func(tx *types.Transaction) (interface{}, error) {
  1166  				return newRPCTransactionFromBlockHash(block, tx.Hash(), config), nil
  1167  			}
  1168  		}
  1169  		txs := block.Transactions()
  1170  		transactions := make([]interface{}, len(txs))
  1171  		var err error
  1172  		for i, tx := range txs {
  1173  			if transactions[i], err = formatTx(tx); err != nil {
  1174  				return nil, err
  1175  			}
  1176  		}
  1177  		fields["transactions"] = transactions
  1178  	}
  1179  	uncles := block.Uncles()
  1180  	uncleHashes := make([]common.Hash, len(uncles))
  1181  	for i, uncle := range uncles {
  1182  		uncleHashes[i] = uncle.Hash()
  1183  	}
  1184  	fields["uncles"] = uncleHashes
  1185  
  1186  	return fields, nil
  1187  }
  1188  
  1189  // rpcMarshalHeader uses the generalized output filler, then adds the total difficulty field, which requires
  1190  // a `PublicBlockchainAPI`.
  1191  func (s *PublicBlockChainAPI) rpcMarshalHeader(ctx context.Context, header *types.Header) map[string]interface{} {
  1192  	fields := RPCMarshalHeader(header)
  1193  	fields["totalDifficulty"] = (*hexutil.Big)(s.b.GetTd(ctx, header.Hash()))
  1194  	return fields
  1195  }
  1196  
  1197  // rpcMarshalBlock uses the generalized output filler, then adds the total difficulty field, which requires
  1198  // a `PublicBlockchainAPI`.
  1199  func (s *PublicBlockChainAPI) rpcMarshalBlock(ctx context.Context, b *types.Block, inclTx bool, fullTx bool) (map[string]interface{}, error) {
  1200  	fields, err := RPCMarshalBlock(b, inclTx, fullTx, s.b.ChainConfig())
  1201  	if err != nil {
  1202  		return nil, err
  1203  	}
  1204  	if inclTx {
  1205  		fields["totalDifficulty"] = (*hexutil.Big)(s.b.GetTd(ctx, b.Hash()))
  1206  	}
  1207  	return fields, err
  1208  }
  1209  
  1210  // RPCTransaction represents a transaction that will serialize to the RPC representation of a transaction
  1211  type RPCTransaction struct {
  1212  	BlockHash        *common.Hash      `json:"blockHash"`
  1213  	BlockNumber      *hexutil.Big      `json:"blockNumber"`
  1214  	From             common.Address    `json:"from"`
  1215  	Gas              hexutil.Uint64    `json:"gas"`
  1216  	GasPrice         *hexutil.Big      `json:"gasPrice"`
  1217  	GasFeeCap        *hexutil.Big      `json:"maxFeePerGas,omitempty"`
  1218  	GasTipCap        *hexutil.Big      `json:"maxPriorityFeePerGas,omitempty"`
  1219  	Hash             common.Hash       `json:"hash"`
  1220  	Input            hexutil.Bytes     `json:"input"`
  1221  	Nonce            hexutil.Uint64    `json:"nonce"`
  1222  	To               *common.Address   `json:"to"`
  1223  	TransactionIndex *hexutil.Uint64   `json:"transactionIndex"`
  1224  	Value            *hexutil.Big      `json:"value"`
  1225  	Type             hexutil.Uint64    `json:"type"`
  1226  	Accesses         *types.AccessList `json:"accessList,omitempty"`
  1227  	ChainID          *hexutil.Big      `json:"chainId,omitempty"`
  1228  	V                *hexutil.Big      `json:"v"`
  1229  	R                *hexutil.Big      `json:"r"`
  1230  	S                *hexutil.Big      `json:"s"`
  1231  }
  1232  
  1233  // newRPCTransaction returns a transaction that will serialize to the RPC
  1234  // representation, with the given location metadata set (if available).
  1235  func newRPCTransaction(tx *types.Transaction, blockHash common.Hash, blockNumber uint64, index uint64, baseFee *big.Int, config *params.ChainConfig) *RPCTransaction {
  1236  	signer := types.MakeSigner(config, big.NewInt(0).SetUint64(blockNumber))
  1237  	from, _ := types.Sender(signer, tx)
  1238  	v, r, s := tx.RawSignatureValues()
  1239  	result := &RPCTransaction{
  1240  		Type:     hexutil.Uint64(tx.Type()),
  1241  		From:     from,
  1242  		Gas:      hexutil.Uint64(tx.Gas()),
  1243  		GasPrice: (*hexutil.Big)(tx.GasPrice()),
  1244  		Hash:     tx.Hash(),
  1245  		Input:    hexutil.Bytes(tx.Data()),
  1246  		Nonce:    hexutil.Uint64(tx.Nonce()),
  1247  		To:       tx.To(),
  1248  		Value:    (*hexutil.Big)(tx.Value()),
  1249  		V:        (*hexutil.Big)(v),
  1250  		R:        (*hexutil.Big)(r),
  1251  		S:        (*hexutil.Big)(s),
  1252  	}
  1253  	if blockHash != (common.Hash{}) {
  1254  		result.BlockHash = &blockHash
  1255  		result.BlockNumber = (*hexutil.Big)(new(big.Int).SetUint64(blockNumber))
  1256  		result.TransactionIndex = (*hexutil.Uint64)(&index)
  1257  	}
  1258  	switch tx.Type() {
  1259  	case types.AccessListTxType:
  1260  		al := tx.AccessList()
  1261  		result.Accesses = &al
  1262  		result.ChainID = (*hexutil.Big)(tx.ChainId())
  1263  	case types.DynamicFeeTxType:
  1264  		al := tx.AccessList()
  1265  		result.Accesses = &al
  1266  		result.ChainID = (*hexutil.Big)(tx.ChainId())
  1267  		result.GasFeeCap = (*hexutil.Big)(tx.GasFeeCap())
  1268  		result.GasTipCap = (*hexutil.Big)(tx.GasTipCap())
  1269  		// if the transaction has been mined, compute the effective gas price
  1270  		if baseFee != nil && blockHash != (common.Hash{}) {
  1271  			// price = min(tip, gasFeeCap - baseFee) + baseFee
  1272  			price := math.BigMin(new(big.Int).Add(tx.GasTipCap(), baseFee), tx.GasFeeCap())
  1273  			result.GasPrice = (*hexutil.Big)(price)
  1274  		} else {
  1275  			result.GasPrice = (*hexutil.Big)(tx.GasFeeCap())
  1276  		}
  1277  	}
  1278  	return result
  1279  }
  1280  
  1281  // newRPCPendingTransaction returns a pending transaction that will serialize to the RPC representation
  1282  func newRPCPendingTransaction(tx *types.Transaction, current *types.Header, config *params.ChainConfig) *RPCTransaction {
  1283  	var baseFee *big.Int
  1284  	blockNumber := uint64(0)
  1285  	if current != nil {
  1286  		baseFee = misc.CalcBaseFee(config, current)
  1287  		blockNumber = current.Number.Uint64()
  1288  	}
  1289  	return newRPCTransaction(tx, common.Hash{}, blockNumber, 0, baseFee, config)
  1290  }
  1291  
  1292  // newRPCTransactionFromBlockIndex returns a transaction that will serialize to the RPC representation.
  1293  func newRPCTransactionFromBlockIndex(b *types.Block, index uint64, config *params.ChainConfig) *RPCTransaction {
  1294  	txs := b.Transactions()
  1295  	if index >= uint64(len(txs)) {
  1296  		return nil
  1297  	}
  1298  	return newRPCTransaction(txs[index], b.Hash(), b.NumberU64(), index, b.BaseFee(), config)
  1299  }
  1300  
  1301  // newRPCRawTransactionFromBlockIndex returns the bytes of a transaction given a block and a transaction index.
  1302  func newRPCRawTransactionFromBlockIndex(b *types.Block, index uint64) hexutil.Bytes {
  1303  	txs := b.Transactions()
  1304  	if index >= uint64(len(txs)) {
  1305  		return nil
  1306  	}
  1307  	blob, _ := txs[index].MarshalBinary()
  1308  	return blob
  1309  }
  1310  
  1311  // newRPCTransactionFromBlockHash returns a transaction that will serialize to the RPC representation.
  1312  func newRPCTransactionFromBlockHash(b *types.Block, hash common.Hash, config *params.ChainConfig) *RPCTransaction {
  1313  	for idx, tx := range b.Transactions() {
  1314  		if tx.Hash() == hash {
  1315  			return newRPCTransactionFromBlockIndex(b, uint64(idx), config)
  1316  		}
  1317  	}
  1318  	return nil
  1319  }
  1320  
  1321  // accessListResult returns an optional accesslist
  1322  // Its the result of the `debug_createAccessList` RPC call.
  1323  // It contains an error if the transaction itself failed.
  1324  type accessListResult struct {
  1325  	Accesslist *types.AccessList `json:"accessList"`
  1326  	Error      string            `json:"error,omitempty"`
  1327  	GasUsed    hexutil.Uint64    `json:"gasUsed"`
  1328  }
  1329  
  1330  // CreateAccessList creates a EIP-2930 type AccessList for the given transaction.
  1331  // Reexec and BlockNrOrHash can be specified to create the accessList on top of a certain state.
  1332  func (s *PublicBlockChainAPI) CreateAccessList(ctx context.Context, args TransactionArgs, blockNrOrHash *rpc.BlockNumberOrHash) (*accessListResult, error) {
  1333  	bNrOrHash := rpc.BlockNumberOrHashWithNumber(rpc.PendingBlockNumber)
  1334  	if blockNrOrHash != nil {
  1335  		bNrOrHash = *blockNrOrHash
  1336  	}
  1337  	acl, gasUsed, vmerr, err := AccessList(ctx, s.b, bNrOrHash, args)
  1338  	if err != nil {
  1339  		return nil, err
  1340  	}
  1341  	result := &accessListResult{Accesslist: &acl, GasUsed: hexutil.Uint64(gasUsed)}
  1342  	if vmerr != nil {
  1343  		result.Error = vmerr.Error()
  1344  	}
  1345  	return result, nil
  1346  }
  1347  
  1348  // AccessList creates an access list for the given transaction.
  1349  // If the accesslist creation fails an error is returned.
  1350  // If the transaction itself fails, an vmErr is returned.
  1351  func AccessList(ctx context.Context, b Backend, blockNrOrHash rpc.BlockNumberOrHash, args TransactionArgs) (acl types.AccessList, gasUsed uint64, vmErr error, err error) {
  1352  	// Retrieve the execution context
  1353  	db, header, err := b.StateAndHeaderByNumberOrHash(ctx, blockNrOrHash)
  1354  	if db == nil || err != nil {
  1355  		return nil, 0, nil, err
  1356  	}
  1357  	// If the gas amount is not set, extract this as it will depend on access
  1358  	// lists and we'll need to reestimate every time
  1359  	nogas := args.Gas == nil
  1360  
  1361  	// Ensure any missing fields are filled, extract the recipient and input data
  1362  	if err := args.setDefaults(ctx, b); err != nil {
  1363  		return nil, 0, nil, err
  1364  	}
  1365  	var to common.Address
  1366  	if args.To != nil {
  1367  		to = *args.To
  1368  	} else {
  1369  		to = crypto.CreateAddress(args.from(), uint64(*args.Nonce))
  1370  	}
  1371  	isPostMerge := header.Difficulty.Cmp(common.Big0) == 0
  1372  	// Retrieve the precompiles since they don't need to be added to the access list
  1373  	precompiles := vm.ActivePrecompiles(b.ChainConfig().Rules(header.Number, isPostMerge))
  1374  
  1375  	// Create an initial tracer
  1376  	prevTracer := logger.NewAccessListTracer(nil, args.from(), to, precompiles)
  1377  	if args.AccessList != nil {
  1378  		prevTracer = logger.NewAccessListTracer(*args.AccessList, args.from(), to, precompiles)
  1379  	}
  1380  	for {
  1381  		// Retrieve the current access list to expand
  1382  		accessList := prevTracer.AccessList()
  1383  		log.Trace("Creating access list", "input", accessList)
  1384  
  1385  		// If no gas amount was specified, each unique access list needs it's own
  1386  		// gas calculation. This is quite expensive, but we need to be accurate
  1387  		// and it's convered by the sender only anyway.
  1388  		if nogas {
  1389  			args.Gas = nil
  1390  			if err := args.setDefaults(ctx, b); err != nil {
  1391  				return nil, 0, nil, err // shouldn't happen, just in case
  1392  			}
  1393  		}
  1394  		// Copy the original db so we don't modify it
  1395  		statedb := db.Copy()
  1396  		// Set the accesslist to the last al
  1397  		args.AccessList = &accessList
  1398  		msg, err := args.ToMessage(b.RPCGasCap(), header.BaseFee)
  1399  		if err != nil {
  1400  			return nil, 0, nil, err
  1401  		}
  1402  
  1403  		// Apply the transaction with the access list tracer
  1404  		tracer := logger.NewAccessListTracer(accessList, args.from(), to, precompiles)
  1405  		config := vm.Config{Tracer: tracer, Debug: true, NoBaseFee: true}
  1406  		vmenv, _, err := b.GetEVM(ctx, msg, statedb, header, &config)
  1407  		if err != nil {
  1408  			return nil, 0, nil, err
  1409  		}
  1410  		res, err := core.ApplyMessage(vmenv, msg, new(core.GasPool).AddGas(msg.Gas()))
  1411  		if err != nil {
  1412  			return nil, 0, nil, fmt.Errorf("failed to apply transaction: %v err: %v", args.toTransaction().Hash(), err)
  1413  		}
  1414  		if tracer.Equal(prevTracer) {
  1415  			return accessList, res.UsedGas, res.Err, nil
  1416  		}
  1417  		prevTracer = tracer
  1418  	}
  1419  }
  1420  
  1421  // PublicTransactionPoolAPI exposes methods for the RPC interface
  1422  type PublicTransactionPoolAPI struct {
  1423  	b         Backend
  1424  	nonceLock *AddrLocker
  1425  	signer    types.Signer
  1426  }
  1427  
  1428  // NewPublicTransactionPoolAPI creates a new RPC service with methods specific for the transaction pool.
  1429  func NewPublicTransactionPoolAPI(b Backend, nonceLock *AddrLocker) *PublicTransactionPoolAPI {
  1430  	// The signer used by the API should always be the 'latest' known one because we expect
  1431  	// signers to be backwards-compatible with old transactions.
  1432  	signer := types.LatestSigner(b.ChainConfig())
  1433  	return &PublicTransactionPoolAPI{b, nonceLock, signer}
  1434  }
  1435  
  1436  // GetBlockTransactionCountByNumber returns the number of transactions in the block with the given block number.
  1437  func (s *PublicTransactionPoolAPI) GetBlockTransactionCountByNumber(ctx context.Context, blockNr rpc.BlockNumber) *hexutil.Uint {
  1438  	if block, _ := s.b.BlockByNumber(ctx, blockNr); block != nil {
  1439  		n := hexutil.Uint(len(block.Transactions()))
  1440  		return &n
  1441  	}
  1442  	return nil
  1443  }
  1444  
  1445  // GetBlockTransactionCountByHash returns the number of transactions in the block with the given hash.
  1446  func (s *PublicTransactionPoolAPI) GetBlockTransactionCountByHash(ctx context.Context, blockHash common.Hash) *hexutil.Uint {
  1447  	if block, _ := s.b.BlockByHash(ctx, blockHash); block != nil {
  1448  		n := hexutil.Uint(len(block.Transactions()))
  1449  		return &n
  1450  	}
  1451  	return nil
  1452  }
  1453  
  1454  // GetTransactionByBlockNumberAndIndex returns the transaction for the given block number and index.
  1455  func (s *PublicTransactionPoolAPI) GetTransactionByBlockNumberAndIndex(ctx context.Context, blockNr rpc.BlockNumber, index hexutil.Uint) *RPCTransaction {
  1456  	if block, _ := s.b.BlockByNumber(ctx, blockNr); block != nil {
  1457  		return newRPCTransactionFromBlockIndex(block, uint64(index), s.b.ChainConfig())
  1458  	}
  1459  	return nil
  1460  }
  1461  
  1462  // GetTransactionByBlockHashAndIndex returns the transaction for the given block hash and index.
  1463  func (s *PublicTransactionPoolAPI) GetTransactionByBlockHashAndIndex(ctx context.Context, blockHash common.Hash, index hexutil.Uint) *RPCTransaction {
  1464  	if block, _ := s.b.BlockByHash(ctx, blockHash); block != nil {
  1465  		return newRPCTransactionFromBlockIndex(block, uint64(index), s.b.ChainConfig())
  1466  	}
  1467  	return nil
  1468  }
  1469  
  1470  // GetRawTransactionByBlockNumberAndIndex returns the bytes of the transaction for the given block number and index.
  1471  func (s *PublicTransactionPoolAPI) GetRawTransactionByBlockNumberAndIndex(ctx context.Context, blockNr rpc.BlockNumber, index hexutil.Uint) hexutil.Bytes {
  1472  	if block, _ := s.b.BlockByNumber(ctx, blockNr); block != nil {
  1473  		return newRPCRawTransactionFromBlockIndex(block, uint64(index))
  1474  	}
  1475  	return nil
  1476  }
  1477  
  1478  // GetRawTransactionByBlockHashAndIndex returns the bytes of the transaction for the given block hash and index.
  1479  func (s *PublicTransactionPoolAPI) GetRawTransactionByBlockHashAndIndex(ctx context.Context, blockHash common.Hash, index hexutil.Uint) hexutil.Bytes {
  1480  	if block, _ := s.b.BlockByHash(ctx, blockHash); block != nil {
  1481  		return newRPCRawTransactionFromBlockIndex(block, uint64(index))
  1482  	}
  1483  	return nil
  1484  }
  1485  
  1486  // GetTransactionCount returns the number of transactions the given address has sent for the given block number
  1487  func (s *PublicTransactionPoolAPI) GetTransactionCount(ctx context.Context, address common.Address, blockNrOrHash rpc.BlockNumberOrHash) (*hexutil.Uint64, error) {
  1488  	// Ask transaction pool for the nonce which includes pending transactions
  1489  	if blockNr, ok := blockNrOrHash.Number(); ok && blockNr == rpc.PendingBlockNumber {
  1490  		nonce, err := s.b.GetPoolNonce(ctx, address)
  1491  		if err != nil {
  1492  			return nil, err
  1493  		}
  1494  		return (*hexutil.Uint64)(&nonce), nil
  1495  	}
  1496  	// Resolve block number and use its state to ask for the nonce
  1497  	state, _, err := s.b.StateAndHeaderByNumberOrHash(ctx, blockNrOrHash)
  1498  	if state == nil || err != nil {
  1499  		return nil, err
  1500  	}
  1501  	nonce := state.GetNonce(address)
  1502  	return (*hexutil.Uint64)(&nonce), state.Error()
  1503  }
  1504  
  1505  // GetTransactionByHash returns the transaction for the given hash
  1506  func (s *PublicTransactionPoolAPI) GetTransactionByHash(ctx context.Context, hash common.Hash) (*RPCTransaction, error) {
  1507  	// Try to return an already finalized transaction
  1508  	tx, blockHash, blockNumber, index, err := s.b.GetTransaction(ctx, hash)
  1509  	if err != nil {
  1510  		return nil, err
  1511  	}
  1512  	if tx != nil {
  1513  		header, err := s.b.HeaderByHash(ctx, blockHash)
  1514  		if err != nil {
  1515  			return nil, err
  1516  		}
  1517  		return newRPCTransaction(tx, blockHash, blockNumber, index, header.BaseFee, s.b.ChainConfig()), nil
  1518  	}
  1519  	// No finalized transaction, try to retrieve it from the pool
  1520  	if tx := s.b.GetPoolTransaction(hash); tx != nil {
  1521  		return newRPCPendingTransaction(tx, s.b.CurrentHeader(), s.b.ChainConfig()), nil
  1522  	}
  1523  
  1524  	// Transaction unknown, return as such
  1525  	return nil, nil
  1526  }
  1527  
  1528  // GetRawTransactionByHash returns the bytes of the transaction for the given hash.
  1529  func (s *PublicTransactionPoolAPI) GetRawTransactionByHash(ctx context.Context, hash common.Hash) (hexutil.Bytes, error) {
  1530  	// Retrieve a finalized transaction, or a pooled otherwise
  1531  	tx, _, _, _, err := s.b.GetTransaction(ctx, hash)
  1532  	if err != nil {
  1533  		return nil, err
  1534  	}
  1535  	if tx == nil {
  1536  		if tx = s.b.GetPoolTransaction(hash); tx == nil {
  1537  			// Transaction not found anywhere, abort
  1538  			return nil, nil
  1539  		}
  1540  	}
  1541  	// Serialize to RLP and return
  1542  	return tx.MarshalBinary()
  1543  }
  1544  
  1545  // GetTransactionReceipt returns the transaction receipt for the given transaction hash.
  1546  func (s *PublicTransactionPoolAPI) GetTransactionReceipt(ctx context.Context, hash common.Hash) (map[string]interface{}, error) {
  1547  	tx, blockHash, blockNumber, index, err := s.b.GetTransaction(ctx, hash)
  1548  	if err != nil {
  1549  		return nil, nil
  1550  	}
  1551  	receipts, err := s.b.GetReceipts(ctx, blockHash)
  1552  	if err != nil {
  1553  		return nil, err
  1554  	}
  1555  	if len(receipts) <= int(index) {
  1556  		return nil, nil
  1557  	}
  1558  	receipt := receipts[index]
  1559  
  1560  	// Derive the sender.
  1561  	bigblock := new(big.Int).SetUint64(blockNumber)
  1562  	signer := types.MakeSigner(s.b.ChainConfig(), bigblock)
  1563  	from, _ := types.Sender(signer, tx)
  1564  
  1565  	fields := map[string]interface{}{
  1566  		"blockHash":         blockHash,
  1567  		"blockNumber":       hexutil.Uint64(blockNumber),
  1568  		"transactionHash":   hash,
  1569  		"transactionIndex":  hexutil.Uint64(index),
  1570  		"from":              from,
  1571  		"to":                tx.To(),
  1572  		"gasUsed":           hexutil.Uint64(receipt.GasUsed),
  1573  		"cumulativeGasUsed": hexutil.Uint64(receipt.CumulativeGasUsed),
  1574  		"contractAddress":   nil,
  1575  		"logs":              receipt.Logs,
  1576  		"logsBloom":         receipt.Bloom,
  1577  		"type":              hexutil.Uint(tx.Type()),
  1578  	}
  1579  	// Assign the effective gas price paid
  1580  	if !s.b.ChainConfig().IsLondon(bigblock) {
  1581  		fields["effectiveGasPrice"] = hexutil.Uint64(tx.GasPrice().Uint64())
  1582  	} else {
  1583  		header, err := s.b.HeaderByHash(ctx, blockHash)
  1584  		if err != nil {
  1585  			return nil, err
  1586  		}
  1587  		gasPrice := new(big.Int).Add(header.BaseFee, tx.EffectiveGasTipValue(header.BaseFee))
  1588  		fields["effectiveGasPrice"] = hexutil.Uint64(gasPrice.Uint64())
  1589  	}
  1590  	// Assign receipt status or post state.
  1591  	if len(receipt.PostState) > 0 {
  1592  		fields["root"] = hexutil.Bytes(receipt.PostState)
  1593  	} else {
  1594  		fields["status"] = hexutil.Uint(receipt.Status)
  1595  	}
  1596  	if receipt.Logs == nil {
  1597  		fields["logs"] = []*types.Log{}
  1598  	}
  1599  	// If the ContractAddress is 20 0x0 bytes, assume it is not a contract creation
  1600  	if receipt.ContractAddress != (common.Address{}) {
  1601  		fields["contractAddress"] = receipt.ContractAddress
  1602  	}
  1603  	return fields, nil
  1604  }
  1605  
  1606  // sign is a helper function that signs a transaction with the private key of the given address.
  1607  func (s *PublicTransactionPoolAPI) sign(addr common.Address, tx *types.Transaction) (*types.Transaction, error) {
  1608  	// Look up the wallet containing the requested signer
  1609  	account := accounts.Account{Address: addr}
  1610  
  1611  	wallet, err := s.b.AccountManager().Find(account)
  1612  	if err != nil {
  1613  		return nil, err
  1614  	}
  1615  	// Request the wallet to sign the transaction
  1616  	return wallet.SignTx(account, tx, s.b.ChainConfig().ChainID)
  1617  }
  1618  
  1619  // SubmitTransaction is a helper function that submits tx to txPool and logs a message.
  1620  func SubmitTransaction(ctx context.Context, b Backend, tx *types.Transaction) (common.Hash, error) {
  1621  	// If the transaction fee cap is already specified, ensure the
  1622  	// fee of the given transaction is _reasonable_.
  1623  	if err := checkTxFee(tx.GasPrice(), tx.Gas(), b.RPCTxFeeCap()); err != nil {
  1624  		return common.Hash{}, err
  1625  	}
  1626  	if !b.UnprotectedAllowed() && !tx.Protected() {
  1627  		// Ensure only eip155 signed transactions are submitted if EIP155Required is set.
  1628  		return common.Hash{}, errors.New("only replay-protected (EIP-155) transactions allowed over RPC")
  1629  	}
  1630  	if err := b.SendTx(ctx, tx); err != nil {
  1631  		return common.Hash{}, err
  1632  	}
  1633  	// Print a log with full tx details for manual investigations and interventions
  1634  	signer := types.MakeSigner(b.ChainConfig(), b.CurrentBlock().Number())
  1635  	from, err := types.Sender(signer, tx)
  1636  	if err != nil {
  1637  		return common.Hash{}, err
  1638  	}
  1639  
  1640  	if tx.To() == nil {
  1641  		addr := crypto.CreateAddress(from, tx.Nonce())
  1642  		log.Info("Submitted contract creation", "hash", tx.Hash().Hex(), "from", from, "nonce", tx.Nonce(), "contract", addr.Hex(), "value", tx.Value())
  1643  	} else {
  1644  		log.Info("Submitted transaction", "hash", tx.Hash().Hex(), "from", from, "nonce", tx.Nonce(), "recipient", tx.To(), "value", tx.Value())
  1645  	}
  1646  	return tx.Hash(), nil
  1647  }
  1648  
  1649  // SendTransaction creates a transaction for the given argument, sign it and submit it to the
  1650  // transaction pool.
  1651  func (s *PublicTransactionPoolAPI) SendTransaction(ctx context.Context, args TransactionArgs) (common.Hash, error) {
  1652  	// Look up the wallet containing the requested signer
  1653  	account := accounts.Account{Address: args.from()}
  1654  
  1655  	wallet, err := s.b.AccountManager().Find(account)
  1656  	if err != nil {
  1657  		return common.Hash{}, err
  1658  	}
  1659  
  1660  	if args.Nonce == nil {
  1661  		// Hold the addresse's mutex around signing to prevent concurrent assignment of
  1662  		// the same nonce to multiple accounts.
  1663  		s.nonceLock.LockAddr(args.from())
  1664  		defer s.nonceLock.UnlockAddr(args.from())
  1665  	}
  1666  
  1667  	// Set some sanity defaults and terminate on failure
  1668  	if err := args.setDefaults(ctx, s.b); err != nil {
  1669  		return common.Hash{}, err
  1670  	}
  1671  	// Assemble the transaction and sign with the wallet
  1672  	tx := args.toTransaction()
  1673  
  1674  	signed, err := wallet.SignTx(account, tx, s.b.ChainConfig().ChainID)
  1675  	if err != nil {
  1676  		return common.Hash{}, err
  1677  	}
  1678  	return SubmitTransaction(ctx, s.b, signed)
  1679  }
  1680  
  1681  // FillTransaction fills the defaults (nonce, gas, gasPrice or 1559 fields)
  1682  // on a given unsigned transaction, and returns it to the caller for further
  1683  // processing (signing + broadcast).
  1684  func (s *PublicTransactionPoolAPI) FillTransaction(ctx context.Context, args TransactionArgs) (*SignTransactionResult, error) {
  1685  	// Set some sanity defaults and terminate on failure
  1686  	if err := args.setDefaults(ctx, s.b); err != nil {
  1687  		return nil, err
  1688  	}
  1689  	// Assemble the transaction and obtain rlp
  1690  	tx := args.toTransaction()
  1691  	data, err := tx.MarshalBinary()
  1692  	if err != nil {
  1693  		return nil, err
  1694  	}
  1695  	return &SignTransactionResult{data, tx}, nil
  1696  }
  1697  
  1698  // SendRawTransaction will add the signed transaction to the transaction pool.
  1699  // The sender is responsible for signing the transaction and using the correct nonce.
  1700  func (s *PublicTransactionPoolAPI) SendRawTransaction(ctx context.Context, input hexutil.Bytes) (common.Hash, error) {
  1701  	tx := new(types.Transaction)
  1702  	if err := tx.UnmarshalBinary(input); err != nil {
  1703  		return common.Hash{}, err
  1704  	}
  1705  	return SubmitTransaction(ctx, s.b, tx)
  1706  }
  1707  
  1708  // Sign calculates an ECDSA signature for:
  1709  // keccack256("\x19Ethereum Signed Message:\n" + len(message) + message).
  1710  //
  1711  // Note, the produced signature conforms to the secp256k1 curve R, S and V values,
  1712  // where the V value will be 27 or 28 for legacy reasons.
  1713  //
  1714  // The account associated with addr must be unlocked.
  1715  //
  1716  // https://github.com/ethereum/wiki/wiki/JSON-RPC#eth_sign
  1717  func (s *PublicTransactionPoolAPI) Sign(addr common.Address, data hexutil.Bytes) (hexutil.Bytes, error) {
  1718  	// Look up the wallet containing the requested signer
  1719  	account := accounts.Account{Address: addr}
  1720  
  1721  	wallet, err := s.b.AccountManager().Find(account)
  1722  	if err != nil {
  1723  		return nil, err
  1724  	}
  1725  	// Sign the requested hash with the wallet
  1726  	signature, err := wallet.SignText(account, data)
  1727  	if err == nil {
  1728  		signature[64] += 27 // Transform V from 0/1 to 27/28 according to the yellow paper
  1729  	}
  1730  	return signature, err
  1731  }
  1732  
  1733  // SignTransactionResult represents a RLP encoded signed transaction.
  1734  type SignTransactionResult struct {
  1735  	Raw hexutil.Bytes      `json:"raw"`
  1736  	Tx  *types.Transaction `json:"tx"`
  1737  }
  1738  
  1739  // SignTransaction will sign the given transaction with the from account.
  1740  // The node needs to have the private key of the account corresponding with
  1741  // the given from address and it needs to be unlocked.
  1742  func (s *PublicTransactionPoolAPI) SignTransaction(ctx context.Context, args TransactionArgs) (*SignTransactionResult, error) {
  1743  	if args.Gas == nil {
  1744  		return nil, fmt.Errorf("gas not specified")
  1745  	}
  1746  	if args.GasPrice == nil && (args.MaxPriorityFeePerGas == nil || args.MaxFeePerGas == nil) {
  1747  		return nil, fmt.Errorf("missing gasPrice or maxFeePerGas/maxPriorityFeePerGas")
  1748  	}
  1749  	if args.Nonce == nil {
  1750  		return nil, fmt.Errorf("nonce not specified")
  1751  	}
  1752  	if err := args.setDefaults(ctx, s.b); err != nil {
  1753  		return nil, err
  1754  	}
  1755  	// Before actually sign the transaction, ensure the transaction fee is reasonable.
  1756  	tx := args.toTransaction()
  1757  	if err := checkTxFee(tx.GasPrice(), tx.Gas(), s.b.RPCTxFeeCap()); err != nil {
  1758  		return nil, err
  1759  	}
  1760  	signed, err := s.sign(args.from(), tx)
  1761  	if err != nil {
  1762  		return nil, err
  1763  	}
  1764  	data, err := signed.MarshalBinary()
  1765  	if err != nil {
  1766  		return nil, err
  1767  	}
  1768  	return &SignTransactionResult{data, signed}, nil
  1769  }
  1770  
  1771  // PendingTransactions returns the transactions that are in the transaction pool
  1772  // and have a from address that is one of the accounts this node manages.
  1773  func (s *PublicTransactionPoolAPI) PendingTransactions() ([]*RPCTransaction, error) {
  1774  	pending, err := s.b.GetPoolTransactions()
  1775  	if err != nil {
  1776  		return nil, err
  1777  	}
  1778  	accounts := make(map[common.Address]struct{})
  1779  	for _, wallet := range s.b.AccountManager().Wallets() {
  1780  		for _, account := range wallet.Accounts() {
  1781  			accounts[account.Address] = struct{}{}
  1782  		}
  1783  	}
  1784  	curHeader := s.b.CurrentHeader()
  1785  	transactions := make([]*RPCTransaction, 0, len(pending))
  1786  	for _, tx := range pending {
  1787  		from, _ := types.Sender(s.signer, tx)
  1788  		if _, exists := accounts[from]; exists {
  1789  			transactions = append(transactions, newRPCPendingTransaction(tx, curHeader, s.b.ChainConfig()))
  1790  		}
  1791  	}
  1792  	return transactions, nil
  1793  }
  1794  
  1795  // Resend accepts an existing transaction and a new gas price and limit. It will remove
  1796  // the given transaction from the pool and reinsert it with the new gas price and limit.
  1797  func (s *PublicTransactionPoolAPI) Resend(ctx context.Context, sendArgs TransactionArgs, gasPrice *hexutil.Big, gasLimit *hexutil.Uint64) (common.Hash, error) {
  1798  	if sendArgs.Nonce == nil {
  1799  		return common.Hash{}, fmt.Errorf("missing transaction nonce in transaction spec")
  1800  	}
  1801  	if err := sendArgs.setDefaults(ctx, s.b); err != nil {
  1802  		return common.Hash{}, err
  1803  	}
  1804  	matchTx := sendArgs.toTransaction()
  1805  
  1806  	// Before replacing the old transaction, ensure the _new_ transaction fee is reasonable.
  1807  	var price = matchTx.GasPrice()
  1808  	if gasPrice != nil {
  1809  		price = gasPrice.ToInt()
  1810  	}
  1811  	var gas = matchTx.Gas()
  1812  	if gasLimit != nil {
  1813  		gas = uint64(*gasLimit)
  1814  	}
  1815  	if err := checkTxFee(price, gas, s.b.RPCTxFeeCap()); err != nil {
  1816  		return common.Hash{}, err
  1817  	}
  1818  	// Iterate the pending list for replacement
  1819  	pending, err := s.b.GetPoolTransactions()
  1820  	if err != nil {
  1821  		return common.Hash{}, err
  1822  	}
  1823  	for _, p := range pending {
  1824  		wantSigHash := s.signer.Hash(matchTx)
  1825  		pFrom, err := types.Sender(s.signer, p)
  1826  		if err == nil && pFrom == sendArgs.from() && s.signer.Hash(p) == wantSigHash {
  1827  			// Match. Re-sign and send the transaction.
  1828  			if gasPrice != nil && (*big.Int)(gasPrice).Sign() != 0 {
  1829  				sendArgs.GasPrice = gasPrice
  1830  			}
  1831  			if gasLimit != nil && *gasLimit != 0 {
  1832  				sendArgs.Gas = gasLimit
  1833  			}
  1834  			signedTx, err := s.sign(sendArgs.from(), sendArgs.toTransaction())
  1835  			if err != nil {
  1836  				return common.Hash{}, err
  1837  			}
  1838  			if err = s.b.SendTx(ctx, signedTx); err != nil {
  1839  				return common.Hash{}, err
  1840  			}
  1841  			return signedTx.Hash(), nil
  1842  		}
  1843  	}
  1844  	return common.Hash{}, fmt.Errorf("transaction %#x not found", matchTx.Hash())
  1845  }
  1846  
  1847  // PublicDebugAPI is the collection of Ethereum APIs exposed over the public
  1848  // debugging endpoint.
  1849  type PublicDebugAPI struct {
  1850  	b Backend
  1851  }
  1852  
  1853  // NewPublicDebugAPI creates a new API definition for the public debug methods
  1854  // of the Ethereum service.
  1855  func NewPublicDebugAPI(b Backend) *PublicDebugAPI {
  1856  	return &PublicDebugAPI{b: b}
  1857  }
  1858  
  1859  // GetHeaderRlp retrieves the RLP encoded for of a single header.
  1860  func (api *PublicDebugAPI) GetHeaderRlp(ctx context.Context, number uint64) (hexutil.Bytes, error) {
  1861  	header, _ := api.b.HeaderByNumber(ctx, rpc.BlockNumber(number))
  1862  	if header == nil {
  1863  		return nil, fmt.Errorf("header #%d not found", number)
  1864  	}
  1865  	return rlp.EncodeToBytes(header)
  1866  }
  1867  
  1868  // GetBlockRlp retrieves the RLP encoded for of a single block.
  1869  func (api *PublicDebugAPI) GetBlockRlp(ctx context.Context, number uint64) (hexutil.Bytes, error) {
  1870  	block, _ := api.b.BlockByNumber(ctx, rpc.BlockNumber(number))
  1871  	if block == nil {
  1872  		return nil, fmt.Errorf("block #%d not found", number)
  1873  	}
  1874  	return rlp.EncodeToBytes(block)
  1875  }
  1876  
  1877  // GetRawReceipts retrieves the binary-encoded raw receipts of a single block.
  1878  func (api *PublicDebugAPI) GetRawReceipts(ctx context.Context, blockNrOrHash rpc.BlockNumberOrHash) ([]hexutil.Bytes, error) {
  1879  	var hash common.Hash
  1880  	if h, ok := blockNrOrHash.Hash(); ok {
  1881  		hash = h
  1882  	} else {
  1883  		block, err := api.b.BlockByNumberOrHash(ctx, blockNrOrHash)
  1884  		if err != nil {
  1885  			return nil, err
  1886  		}
  1887  		hash = block.Hash()
  1888  	}
  1889  	receipts, err := api.b.GetReceipts(ctx, hash)
  1890  	if err != nil {
  1891  		return nil, err
  1892  	}
  1893  	result := make([]hexutil.Bytes, len(receipts))
  1894  	for i, receipt := range receipts {
  1895  		b, err := receipt.MarshalBinary()
  1896  		if err != nil {
  1897  			return nil, err
  1898  		}
  1899  		result[i] = b
  1900  	}
  1901  	return result, nil
  1902  }
  1903  
  1904  // PrintBlock retrieves a block and returns its pretty printed form.
  1905  func (api *PublicDebugAPI) PrintBlock(ctx context.Context, number uint64) (string, error) {
  1906  	block, _ := api.b.BlockByNumber(ctx, rpc.BlockNumber(number))
  1907  	if block == nil {
  1908  		return "", fmt.Errorf("block #%d not found", number)
  1909  	}
  1910  	return spew.Sdump(block), nil
  1911  }
  1912  
  1913  // SeedHash retrieves the seed hash of a block.
  1914  func (api *PublicDebugAPI) SeedHash(ctx context.Context, number uint64) (string, error) {
  1915  	block, _ := api.b.BlockByNumber(ctx, rpc.BlockNumber(number))
  1916  	if block == nil {
  1917  		return "", fmt.Errorf("block #%d not found", number)
  1918  	}
  1919  	return fmt.Sprintf("0x%x", ethash.SeedHash(number)), nil
  1920  }
  1921  
  1922  // PrivateDebugAPI is the collection of Ethereum APIs exposed over the private
  1923  // debugging endpoint.
  1924  type PrivateDebugAPI struct {
  1925  	b Backend
  1926  }
  1927  
  1928  // NewPrivateDebugAPI creates a new API definition for the private debug methods
  1929  // of the Ethereum service.
  1930  func NewPrivateDebugAPI(b Backend) *PrivateDebugAPI {
  1931  	return &PrivateDebugAPI{b: b}
  1932  }
  1933  
  1934  // ChaindbProperty returns leveldb properties of the key-value database.
  1935  func (api *PrivateDebugAPI) ChaindbProperty(property string) (string, error) {
  1936  	if property == "" {
  1937  		property = "leveldb.stats"
  1938  	} else if !strings.HasPrefix(property, "leveldb.") {
  1939  		property = "leveldb." + property
  1940  	}
  1941  	return api.b.ChainDb().Stat(property)
  1942  }
  1943  
  1944  // ChaindbCompact flattens the entire key-value database into a single level,
  1945  // removing all unused slots and merging all keys.
  1946  func (api *PrivateDebugAPI) ChaindbCompact() error {
  1947  	for b := byte(0); b < 255; b++ {
  1948  		log.Info("Compacting chain database", "range", fmt.Sprintf("0x%0.2X-0x%0.2X", b, b+1))
  1949  		if err := api.b.ChainDb().Compact([]byte{b}, []byte{b + 1}); err != nil {
  1950  			log.Error("Database compaction failed", "err", err)
  1951  			return err
  1952  		}
  1953  	}
  1954  	return nil
  1955  }
  1956  
  1957  // SetHead rewinds the head of the blockchain to a previous block.
  1958  func (api *PrivateDebugAPI) SetHead(number hexutil.Uint64) {
  1959  	api.b.SetHead(uint64(number))
  1960  }
  1961  
  1962  // PublicNetAPI offers network related RPC methods
  1963  type PublicNetAPI struct {
  1964  	net            *p2p.Server
  1965  	networkVersion uint64
  1966  }
  1967  
  1968  // NewPublicNetAPI creates a new net API instance.
  1969  func NewPublicNetAPI(net *p2p.Server, networkVersion uint64) *PublicNetAPI {
  1970  	return &PublicNetAPI{net, networkVersion}
  1971  }
  1972  
  1973  // Listening returns an indication if the node is listening for network connections.
  1974  func (s *PublicNetAPI) Listening() bool {
  1975  	return true // always listening
  1976  }
  1977  
  1978  // PeerCount returns the number of connected peers
  1979  func (s *PublicNetAPI) PeerCount() hexutil.Uint {
  1980  	return hexutil.Uint(s.net.PeerCount())
  1981  }
  1982  
  1983  // Version returns the current ethereum protocol version.
  1984  func (s *PublicNetAPI) Version() string {
  1985  	return fmt.Sprintf("%d", s.networkVersion)
  1986  }
  1987  
  1988  // checkTxFee is an internal function used to check whether the fee of
  1989  // the given transaction is _reasonable_(under the cap).
  1990  func checkTxFee(gasPrice *big.Int, gas uint64, cap float64) error {
  1991  	// Short circuit if there is no cap for transaction fee at all.
  1992  	if cap == 0 {
  1993  		return nil
  1994  	}
  1995  	feeEth := new(big.Float).Quo(new(big.Float).SetInt(new(big.Int).Mul(gasPrice, new(big.Int).SetUint64(gas))), new(big.Float).SetInt(big.NewInt(params.Ether)))
  1996  	feeFloat, _ := feeEth.Float64()
  1997  	if feeFloat > cap {
  1998  		return fmt.Errorf("tx fee (%.2f ether) exceeds the configured cap (%.2f ether)", feeFloat, cap)
  1999  	}
  2000  	return nil
  2001  }
  2002  
  2003  // toHexSlice creates a slice of hex-strings based on []byte.
  2004  func toHexSlice(b [][]byte) []string {
  2005  	r := make([]string, len(b))
  2006  	for i := range b {
  2007  		r[i] = hexutil.Encode(b[i])
  2008  	}
  2009  	return r
  2010  }