2e876b5593
It's a no-op and there is nothing we can do about it, header contents could only be checked against chain state, there is nothing to check for internal consistency.
195 lines
5.6 KiB
Go
195 lines
5.6 KiB
Go
package block
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import (
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"encoding/json"
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"errors"
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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/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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)
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// Base holds the base info of a block
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type Base struct {
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// Version of the block.
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Version uint32
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// hash of the previous block.
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PrevHash util.Uint256
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// Root hash of a transaction list.
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MerkleRoot util.Uint256
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// Timestamp is a millisecond-precision timestamp.
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// The time stamp of each block must be later than previous block's time stamp.
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// Generally the difference of two block's time stamp is about 15 seconds and imprecision is allowed.
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// The height of the block must be exactly equal to the height of the previous block plus 1.
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Timestamp uint64
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// index/height of the block
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Index uint32
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// Contract address of the next miner
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NextConsensus util.Uint160
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// Script used to validate the block
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Script transaction.Witness
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// Network magic number this block belongs to. This one actually is not
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// a part of the wire-representation of Block, but it's absolutely
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// necessary for correct signing/verification.
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Network netmode.Magic
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// Hash of this block, created when binary encoded (double SHA256).
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hash util.Uint256
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// Hash of the block used to verify it (single SHA256).
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verificationHash util.Uint256
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}
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// baseAux is used to marshal/unmarshal to/from JSON, it's almost the same
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// as original Base, but with Nonce and NextConsensus fields differing and
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// Hash added.
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type baseAux struct {
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Hash util.Uint256 `json:"hash"`
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Version uint32 `json:"version"`
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PrevHash util.Uint256 `json:"previousblockhash"`
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MerkleRoot util.Uint256 `json:"merkleroot"`
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Timestamp uint64 `json:"time"`
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Index uint32 `json:"index"`
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NextConsensus string `json:"nextconsensus"`
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Witnesses []transaction.Witness `json:"witnesses"`
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}
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// Hash returns the hash of the block.
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func (b *Base) Hash() util.Uint256 {
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if b.hash.Equals(util.Uint256{}) {
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b.createHash()
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}
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return b.hash
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}
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// GetSignedHash returns a hash of the block used to verify it.
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func (b *Base) GetSignedHash() util.Uint256 {
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if b.verificationHash.Equals(util.Uint256{}) {
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b.createHash()
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}
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return b.verificationHash
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}
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// DecodeBinary implements Serializable interface.
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func (b *Base) DecodeBinary(br *io.BinReader) {
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b.decodeHashableFields(br)
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witnessCount := br.ReadVarUint()
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if br.Err == nil && witnessCount != 1 {
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br.Err = errors.New("wrong witness count")
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return
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}
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b.Script.DecodeBinary(br)
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}
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// EncodeBinary implements Serializable interface
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func (b *Base) EncodeBinary(bw *io.BinWriter) {
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b.encodeHashableFields(bw)
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bw.WriteVarUint(1)
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b.Script.EncodeBinary(bw)
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}
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// GetSignedPart returns serialized hashable data of the block.
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func (b *Base) GetSignedPart() []byte {
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buf := io.NewBufBinWriter()
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buf.WriteU32LE(uint32(b.Network))
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// No error can occure while encoding hashable fields.
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b.encodeHashableFields(buf.BinWriter)
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return buf.Bytes()
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}
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// createHash creates the hash of the block.
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// When calculating the hash value of the block, instead of calculating the entire block,
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// only first seven fields in the block head will be calculated, which are
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// version, PrevBlock, MerkleRoot, timestamp, and height, the nonce, NextMiner.
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// Since MerkleRoot already contains the hash value of all transactions,
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// the modification of transaction will influence the hash value of the block.
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func (b *Base) createHash() {
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bb := b.GetSignedPart()
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b.verificationHash = hash.Sha256(bb)
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b.hash = hash.Sha256(b.verificationHash.BytesBE())
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}
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// encodeHashableFields will only encode the fields used for hashing.
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// see Hash() for more information about the fields.
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func (b *Base) encodeHashableFields(bw *io.BinWriter) {
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bw.WriteU32LE(b.Version)
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bw.WriteBytes(b.PrevHash[:])
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bw.WriteBytes(b.MerkleRoot[:])
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bw.WriteU64LE(b.Timestamp)
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bw.WriteU32LE(b.Index)
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bw.WriteBytes(b.NextConsensus[:])
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}
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// decodeHashableFields decodes the fields used for hashing.
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// see Hash() for more information about the fields.
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func (b *Base) decodeHashableFields(br *io.BinReader) {
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b.Version = br.ReadU32LE()
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br.ReadBytes(b.PrevHash[:])
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br.ReadBytes(b.MerkleRoot[:])
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b.Timestamp = br.ReadU64LE()
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b.Index = br.ReadU32LE()
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br.ReadBytes(b.NextConsensus[:])
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// Make the hash of the block here so we dont need to do this
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// again.
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if br.Err == nil {
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b.createHash()
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}
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}
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// MarshalJSON implements json.Marshaler interface.
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func (b Base) MarshalJSON() ([]byte, error) {
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aux := baseAux{
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Hash: b.Hash(),
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Version: b.Version,
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PrevHash: b.PrevHash,
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MerkleRoot: b.MerkleRoot,
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Timestamp: b.Timestamp,
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Index: b.Index,
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NextConsensus: address.Uint160ToString(b.NextConsensus),
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Witnesses: []transaction.Witness{b.Script},
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}
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return json.Marshal(aux)
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}
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// UnmarshalJSON implements json.Unmarshaler interface.
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func (b *Base) UnmarshalJSON(data []byte) error {
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var aux = new(baseAux)
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var nextC util.Uint160
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err := json.Unmarshal(data, aux)
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if err != nil {
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return err
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}
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nextC, err = address.StringToUint160(aux.NextConsensus)
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if err != nil {
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return err
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}
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if len(aux.Witnesses) != 1 {
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return errors.New("wrong number of witnesses")
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}
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b.Version = aux.Version
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b.PrevHash = aux.PrevHash
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b.MerkleRoot = aux.MerkleRoot
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b.Timestamp = aux.Timestamp
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b.Index = aux.Index
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b.NextConsensus = nextC
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b.Script = aux.Witnesses[0]
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if !aux.Hash.Equals(b.Hash()) {
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return errors.New("json 'hash' doesn't match block hash")
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}
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return nil
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}
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