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https://github.com/ethereum/go-ethereum.git
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Written basic content type functions
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parent
17f4f169af
commit
8b5d1d163e
1 changed files with 96 additions and 74 deletions
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@ -111,6 +111,30 @@ type Metadata struct {
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Origin string `json:"Origin"`
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}
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type SigFormat struct {
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Mime string
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ByteVersion byte
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}
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var (
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ApplicationValidator = SigFormat{
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"application/validator",
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0x00,
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}
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ApplicationClique = SigFormat{
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"application/clique",
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0x01,
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}
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DataPlain = SigFormat{
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"data/plain",
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0x45,
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}
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DataStructured = SigFormat{
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"data/structured",
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0x46,
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}
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)
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// MetadataFromContext extracts Metadata from a given context.Context
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func MetadataFromContext(ctx context.Context) Metadata {
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m := Metadata{"NA", "NA", "NA", "", ""} // batman
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@ -521,8 +545,6 @@ func (api *SignerAPI) SignTransaction(ctx context.Context, args SendTxArgs, meth
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}
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<<<<<<< HEAD
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=======
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// SignData signs the hash of the provided data, but does so differently
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// depending on the content-type specified.
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//
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@ -532,7 +554,7 @@ func (api *SignerAPI) SignTransaction(ctx context.Context, args SendTxArgs, meth
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// where the V value will be 27 or 28 for legacy reasons.
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func (api *SignerAPI) SignData(ctx context.Context, contentType string, addr common.MixedcaseAddress, data hexutil.Bytes) (hexutil.Bytes, error) {
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var req, err = api.determineSignatureFormat(contentType, data)
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var req, err = api.DetermineSignatureFormat(contentType, data)
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if err != nil {
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return nil, err
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}
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@ -564,41 +586,16 @@ func (api *SignerAPI) SignData(ctx context.Context, contentType string, addr com
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return signature, nil
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}
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// EcRecover returns the address for the Account that was used to create the signature.
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// Note, this function is compatible with eth_sign and personal_sign. As such it recovers
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// the address of:
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// hash = keccak256("\x19Ethereum Signed Message:\n"${message length}${message})
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// addr = ecrecover(hash, signature)
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//
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// Note, the signature must conform to the secp256k1 curve R, S and V values, where
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// the V value must be be 27 or 28 for legacy reasons.
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//
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// https://github.com/ethereum/go-ethereum/wiki/Management-APIs#personal_ecRecover
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func (api *SignerAPI) EcRecover(ctx context.Context, contentType string, data, sig hexutil.Bytes) (common.Address, error) {
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if len(sig) != 65 {
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return common.Address{}, fmt.Errorf("signature must be 65 bytes long")
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}
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if sig[64] != 27 && sig[64] != 28 {
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return common.Address{}, fmt.Errorf("invalid Ethereum signature (V is not 27 or 28)")
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}
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sig[64] -= 27 // Transform yellow paper V from 27/28 to 0/1
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hash, _ := SignDataPlain(data)
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rpk, err := crypto.SigToPub(hash, sig)
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if err != nil {
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return common.Address{}, err
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}
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return crypto.PubkeyToAddress(*rpk), nil
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}
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// Determines which signature method should be used based upon the mime type
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func (api *SignerAPI) determineSignatureFormat(contentType string, data hexutil.Bytes) (*SignDataRequest, error) {
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func (api *SignerAPI) DetermineSignatureFormat(contentType string, data hexutil.Bytes) (*SignDataRequest, error) {
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var req *SignDataRequest
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mediaType, _, err := mime.ParseMediaType(contentType)
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if err != nil {
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return nil, err
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}
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switch mediaType {
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case "application/clique":
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case ApplicationClique.Mime:
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// Clique is the Ethereum PoA standard
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header := &types.Header{}
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if err := rlp.DecodeBytes(data, header); err != nil {
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return nil, err
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@ -609,40 +606,26 @@ func (api *SignerAPI) determineSignatureFormat(contentType string, data hexutil.
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}
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msg := fmt.Sprintf("Clique block %d [0x%x]", header.Number, header.Hash())
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req = &SignDataRequest{Rawdata: data, Message: msg, Hash: sighash, ContentType: mediaType}
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case "application/validator":
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// Sign calculates an Ethereum ECDSA signature for:
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// keccack256("\x19Ethereum Signed Message:\n" + len(message) + message))
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case ApplicationValidator.Mime:
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// Data with an intended validator
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// In the cases where it matter ensure that the charset is handled. The charset
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// resides in the 'params' returned as the second returnvalue from mime.ParseMediaType
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// charset, ok := params["charset"]
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// As it is now, we accept any charset and just treat it as 'raw'.
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sighash, msg := DataWithValidatorHash(data)
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sighash, msg := SignDataWithValidator(data)
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req = &SignDataRequest{Rawdata: data, Message: msg, Hash: sighash, ContentType: mediaType}
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case "data/structured":
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// EIP712 typed data
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case DataStructured.Mime:
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// Typed data according to EIP712
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// Sign calculates an Ethereum ECDSA signature for:
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// keccack256("\x19Ethereum Signed Message:\n" + len(message) + message))
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// In the cases where it matter ensure that the charset is handled. The charset
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// resides in the 'params' returned as the second returnvalue from mime.ParseMediaType
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// charset, ok := params["charset"]
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// As it is now, we accept any charset and just treat it as 'raw'.
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sighash, msg := DataStructuredHash(data)
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sighash, msg := SignDataStructured(data)
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req = &SignDataRequest{Rawdata: data, Message: msg, Hash: sighash, ContentType: mediaType}
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case "data/plain":
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case DataPlain.Mime:
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// Sign calculates an Ethereum ECDSA signature for:
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// keccack256("\x19Ethereum Signed Message:\n" + len(message) + message))
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// keccack256("\x19${byte version}Ethereum Signed Message:\n" + len(message) + message))
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// In the cases where it matter ensure that the charset is handled. The charset
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// In the cases where it matters ensure that the charset is handled. The charset
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// resides in the 'params' returned as the second returnvalue from mime.ParseMediaType
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// charset, ok := params["charset"]
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// As it is now, we accept any charset and just treat it as 'raw'.
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sighash, msg := DataPlainHash(data)
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sighash, msg := SignDataPlain(data)
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req = &SignDataRequest{Rawdata: data, Message: msg, Hash: sighash, ContentType: mediaType}
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default:
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return nil, fmt.Errorf("content type '%s' not implemented for signing", contentType)
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@ -685,33 +668,72 @@ func SignCliqueHeader(header *types.Header) (hexutil.Bytes, error) {
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return hash.Bytes(), nil
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}
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// DataWithValidatorHash signs the given message according to EIP191.
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//
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// https://github.com/ethereum/EIPs/issues/712
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func DataWithValidatorHash(data []byte) ([]byte, string) {
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return nil, ""
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// DataWithValidatorHash signs the given message which can be further recovered
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// with the given validator.
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func SignDataWithValidator(data []byte) ([]byte, string) {
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msg := "TODO"
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return crypto.Keccak256([]byte(msg)), msg
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}
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// DataStructuredHash signs the given message according to EIP712.
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//
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// https://github.com/ethereum/EIPs/issues/712
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func DataStructuredHash(data []byte) ([]byte, string) {
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return nil, ""
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}
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// DataPlainHash is a helper function that calculates a hash for the given message that can be
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// safely used to calculate a signature from.
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//
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// The hash is calculated as
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// keccak256("\x19Ethereum Signed Message:\n"${message length}${message}).
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//
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// This gives context to the signed message and prevents signing of transactions.
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func DataPlainHash(data []byte) ([]byte, string) {
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msg := fmt.Sprintf("\x19Ethereum Signed Message:\n%d%s", len(data), data)
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func SignDataStructured(data []byte) ([]byte, string) {
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msg := "TODO"
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return crypto.Keccak256([]byte(msg)), msg
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}
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>>>>>>> 834cf03b0... Named functions and defined a basic EIP191 content type list
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// SignDataPlain is a helper function that calculates a hash for the given message that can be
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// safely used to calculate a signature from.
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//
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// The hash is calculated as
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// keccak256("\x19${byte version}Ethereum Signed Message:\n"${message length}${message}).
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//
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// This gives context to the signed message and prevents signing of transactions.
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func SignDataPlain(data []byte) ([]byte, string) {
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msg := fmt.Sprintf("\x19\\x%xEthereum Signed Message:\n%d%s", DataPlain.ByteVersion, len(data), data)
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return crypto.Keccak256([]byte(msg)), msg
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}
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// Determines the content type and then recovers the address associated with the given sig
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func (api *SignerAPI) EcRecover(ctx context.Context, contentType string, data, sig hexutil.Bytes) (common.Address, error) {
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fmt.Println("Effing Muffins")
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mediaType, _, err := mime.ParseMediaType(contentType)
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if err != nil {
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return common.Address{}, err
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}
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switch mediaType {
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case DataPlain.Mime:
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// Returns the address for the Account that was used to create the signature.
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//
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// Note, this function is compatible with eth_sign and personal_sign. As such it recovers
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// the address of:
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// hash = keccak256("\x19${byte version}Ethereum Signed Message:\n"${message length}${message})
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// addr = ecrecover(hash, signature)
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//
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// Note, the signature must conform to the secp256k1 curve R, S and V values, where
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// the V value must be be 27 or 28 for legacy reasons.
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//
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// https://github.com/ethereum/go-ethereum/wiki/Management-APIs#personal_ecRecover
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if len(sig) != 65 {
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return common.Address{}, fmt.Errorf("signature must be 65 bytes long")
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}
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if sig[64] != 27 && sig[64] != 28 {
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return common.Address{}, fmt.Errorf("invalid Ethereum signature (V is not 27 or 28)")
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}
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sig[64] -= 27 // Transform yellow paper V from 27/28 to 0/1
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hash, _ := SignDataPlain(data)
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rpk, err := crypto.SigToPub(hash, sig)
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if err != nil {
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return common.Address{}, err
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}
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return crypto.PubkeyToAddress(*rpk), nil
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default:
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return common.Address{}, fmt.Errorf("content type '%s' not implemented for ecRecover", contentType)
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}
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}
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// Export returns encrypted private key associated with the given address in web3 keystore format.
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func (api *SignerAPI) Export(ctx context.Context, addr common.Address) (json.RawMessage, error) {
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res, err := api.UI.ApproveExport(&ExportRequest{Address: addr, Meta: MetadataFromContext(ctx)})
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