mirror of
https://github.com/nspcc-dev/neo-go.git
synced 2024-12-11 05:30:07 +00:00
1b83dc2476
Mostly it's about Go 1.22+ syntax with ranging over integers, but it also prefers ranging over slices where possible (it makes code a little better to read). Notice that we have a number of dangerous loops where slices are mutated during loop execution, many of these can't be converted since we need proper length evalutation at every iteration. Signed-off-by: Roman Khimov <roman@nspcc.ru>
235 lines
7.2 KiB
Go
235 lines
7.2 KiB
Go
package neotest
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import (
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"bytes"
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"fmt"
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"slices"
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"testing"
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"github.com/nspcc-dev/neo-go/pkg/config/netmode"
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"github.com/nspcc-dev/neo-go/pkg/core/transaction"
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"github.com/nspcc-dev/neo-go/pkg/crypto/hash"
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"github.com/nspcc-dev/neo-go/pkg/crypto/keys"
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"github.com/nspcc-dev/neo-go/pkg/encoding/address"
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"github.com/nspcc-dev/neo-go/pkg/io"
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"github.com/nspcc-dev/neo-go/pkg/util"
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"github.com/nspcc-dev/neo-go/pkg/vm"
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"github.com/nspcc-dev/neo-go/pkg/vm/emit"
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"github.com/nspcc-dev/neo-go/pkg/vm/opcode"
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"github.com/nspcc-dev/neo-go/pkg/wallet"
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"github.com/stretchr/testify/require"
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)
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// Signer is a generic interface which can be either a simple- or multi-signature signer.
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type Signer interface {
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// Script returns a signer verification script.
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Script() []byte
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// ScriptHash returns a signer script hash.
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ScriptHash() util.Uint160
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// SignHashable returns an invocation script for signing an item.
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SignHashable(uint32, hash.Hashable) []byte
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// SignTx signs a transaction.
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SignTx(netmode.Magic, *transaction.Transaction) error
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}
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// SingleSigner is a generic interface for a simple one-signature signer.
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type SingleSigner interface {
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Signer
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// Account returns the underlying account which can be used to
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// get a public key and/or sign arbitrary things.
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Account() *wallet.Account
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}
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// MultiSigner is an interface for multisignature signing account.
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type MultiSigner interface {
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Signer
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// Single returns a simple-signature signer for the n-th account in a list.
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Single(n int) SingleSigner
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}
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// signer represents a simple-signature signer.
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type signer wallet.Account
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// multiSigner represents a single multi-signature signer consisting of the provided accounts.
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type multiSigner struct {
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accounts []*wallet.Account
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m int
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}
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// NewSingleSigner creates a [SingleSigner] from the provided account. It has
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// just one key, see [NewMultiSigner] for multisignature accounts.
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func NewSingleSigner(acc *wallet.Account) SingleSigner {
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if !vm.IsSignatureContract(acc.Contract.Script) {
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panic("account must have simple-signature verification script")
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}
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return (*signer)(acc)
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}
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// Script implements Signer interface.
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func (s *signer) Script() []byte {
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return (*wallet.Account)(s).Contract.Script
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}
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// ScriptHash implements Signer interface.
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func (s *signer) ScriptHash() util.Uint160 {
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return (*wallet.Account)(s).Contract.ScriptHash()
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}
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// SignHashable implements Signer interface.
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func (s *signer) SignHashable(magic uint32, item hash.Hashable) []byte {
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return append([]byte{byte(opcode.PUSHDATA1), keys.SignatureLen},
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(*wallet.Account)(s).SignHashable(netmode.Magic(magic), item)...)
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}
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// SignTx implements Signer interface.
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func (s *signer) SignTx(magic netmode.Magic, tx *transaction.Transaction) error {
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return (*wallet.Account)(s).SignTx(magic, tx)
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}
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// Account implements SingleSigner interface.
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func (s *signer) Account() *wallet.Account {
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return (*wallet.Account)(s)
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}
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// NewMultiSigner returns a multi-signature signer for the provided account.
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// It must contain at least as many accounts as needed to sign the script.
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func NewMultiSigner(accs ...*wallet.Account) MultiSigner {
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if len(accs) == 0 {
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panic("empty account list")
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}
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script := accs[0].Contract.Script
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m, _, ok := vm.ParseMultiSigContract(script)
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if !ok {
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panic("all accounts must have multi-signature verification script")
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}
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if len(accs) < m {
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panic(fmt.Sprintf("verification script requires %d signatures, "+
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"but only %d accounts were provided", m, len(accs)))
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}
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slices.SortFunc(accs, func(a, b *wallet.Account) int {
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pa := a.PublicKey()
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pb := b.PublicKey()
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return pa.Cmp(pb)
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})
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for _, acc := range accs {
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if !bytes.Equal(script, acc.Contract.Script) {
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panic("all accounts must have equal verification script")
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}
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}
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return multiSigner{accounts: accs, m: m}
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}
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// ScriptHash implements Signer interface.
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func (m multiSigner) ScriptHash() util.Uint160 {
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return m.accounts[0].Contract.ScriptHash()
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}
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// Script implements Signer interface.
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func (m multiSigner) Script() []byte {
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return m.accounts[0].Contract.Script
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}
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// SignHashable implements Signer interface.
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func (m multiSigner) SignHashable(magic uint32, item hash.Hashable) []byte {
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var script []byte
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for i := range m.m {
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sign := m.accounts[i].SignHashable(netmode.Magic(magic), item)
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script = append(script, byte(opcode.PUSHDATA1), keys.SignatureLen)
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script = append(script, sign...)
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}
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return script
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}
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// SignTx implements Signer interface.
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func (m multiSigner) SignTx(magic netmode.Magic, tx *transaction.Transaction) error {
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invoc := m.SignHashable(uint32(magic), tx)
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verif := m.Script()
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for i := range tx.Scripts {
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if bytes.Equal(tx.Scripts[i].VerificationScript, verif) {
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tx.Scripts[i].InvocationScript = invoc
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return nil
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}
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}
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tx.Scripts = append(tx.Scripts, transaction.Witness{
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InvocationScript: invoc,
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VerificationScript: verif,
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})
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return nil
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}
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// Single implements MultiSigner interface.
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func (m multiSigner) Single(n int) SingleSigner {
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if len(m.accounts) <= n {
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panic("invalid index")
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}
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return NewSingleSigner(wallet.NewAccountFromPrivateKey(m.accounts[n].PrivateKey()))
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}
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func checkMultiSigner(t testing.TB, s Signer) {
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ms, ok := s.(multiSigner)
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require.True(t, ok, "expected to be a multi-signer")
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accs := ms.accounts
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require.True(t, len(accs) > 0, "empty multi-signer")
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m := len(accs[0].Contract.Parameters)
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require.True(t, m <= len(accs), "honest not count is too big for a multi-signer")
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h := accs[0].Contract.ScriptHash()
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for i := 1; i < len(accs); i++ {
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require.Equal(t, m, len(accs[i].Contract.Parameters), "inconsistent multi-signer accounts")
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require.Equal(t, h, accs[i].Contract.ScriptHash(), "inconsistent multi-signer accounts")
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}
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}
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type contractSigner wallet.Account
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// NewContractSigner returns a contract signer for the provided contract hash.
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// getInvParams must return params to be used as invocation script for contract-based witness.
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func NewContractSigner(h util.Uint160, getInvParams func(tx *transaction.Transaction) []any) SingleSigner {
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return &contractSigner{
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Address: address.Uint160ToString(h),
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Contract: &wallet.Contract{
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Deployed: true,
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InvocationBuilder: func(tx *transaction.Transaction) ([]byte, error) {
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params := getInvParams(tx)
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script := io.NewBufBinWriter()
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for i := range params {
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emit.Any(script.BinWriter, params[i])
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}
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if script.Err != nil {
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return nil, script.Err
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}
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return script.Bytes(), nil
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},
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},
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}
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}
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// Script implements ContractSigner.
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func (s *contractSigner) Script() []byte {
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return []byte{}
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}
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// ScriptHash implements ContractSigner.
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func (s *contractSigner) ScriptHash() util.Uint160 {
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return s.Account().ScriptHash()
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}
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// ScriptHash implements ContractSigner.
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func (s *contractSigner) Account() *wallet.Account {
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return (*wallet.Account)(s)
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}
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// SignHashable implements ContractSigner.
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func (s *contractSigner) SignHashable(uint32, hash.Hashable) []byte {
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panic("not supported")
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}
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// SignTx implements ContractSigner.
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func (s *contractSigner) SignTx(magic netmode.Magic, tx *transaction.Transaction) error {
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// Here we rely on `len(s.Contract.Parameters) == 0` being after the `s.Contract.InvocationBuilder != nil` check,
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// because we cannot determine the list of parameters unless we already have tx.
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return s.Account().SignTx(magic, tx)
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}
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