dcrd/txscript/script.go
Marco Peereboom 80f5feb1db
multi: Add decentralized treasury support.
This is based on https://proposals.decred.org/proposals/c96290a but was
modified in order to deal with realities that were unknown at the time
of the specification draft.

It is large and could not really be broken apart due to the pervasive
use of the isTreasuryEnabled flag. It was primarily authored by
* Marco Peereboom <marco@peereboom.us>
* Dave Collins <davec@conformal.com>
* Matheus Degiovani <opensource@matheusd.com>

With additional contributions from
* Donald Adu-Poku <donald.adu@gmail.com>
* Jamie Holdstock <jholdstock@decred.org>

Major changes:
* Add decentralized treasury agenda, as specified in DCP0006, to all supported
  nets.
* Add functions to determine if the decentralized treasury agenda is active at
  given block.
* Add new opcode OP_TADD that is a nop in txscript but is used to tag scripts
  that credit the treasury account. This opcode is overloaded for treasurybase
  and for normal transactions.
* Add new opcode OP_TSPEND that is a nop in txscript but is used to tag scripts
  that debit the treasury account.
* Add new opcode OP_TGEN that is a nop in txscript but is used to tag P2PKH and
  P2SH outputs in a TSpend transaction.
* Add functions that detect if a transaction is a valid TAdd, TSpend
  or treasurybase transaction.
* Add error codes that return specific treasurybase/TAdd/TSpend consensus
  violations.
* Modify countSpentOutputs to deal with treasury opcodes accordingly.
* Modify indexBlock to skip treasury transactions that do not have inputs.
* Add IsTreasuryEnabled call to ChainQueryer interface.
* Add treasury logger for debugging and logging the decentralized treasury
  subsystem.
* Add IsTreasuryActive flag to BlockConnectedNtfnsData and
  BlockDisconnectedNtfnsData.
* Modify OP_SSGEN to allow an optional output that contains votes for a TSpend
  transaction hash.
* Add function that returns TSpend votes from an SSGen transaction.
* Modify CalcStakeVoteSubsidy so that treasurybase, unlike coinbase, is always
  awarded the full percentage of the assigned block reward.
* Add helper functions to do all TSpend math so that callers don't roll their
  own.
* Modify IsCoinBaseTx to not mistake a TSpend transaction as a coinbase.
* Add checkTreasuryBase function that verifies that a treasurybase is properly
  constructed and pays the right amount to the treasury account.
* Add functions to calculate treasury balance for the provided block hash/node.
* Add function that verifies if a TSpend has a valid signature.
* Add functions to determine if a TSpend is not overspending.
* Add function to determine if a TSpend has been mined on the provided chain.
* Add functions that count and verifies treasury spend votes.
* Modify connectTransaction and disconnectTransactions to deal with the various
  treasury transactions.
* Split CheckTransactionSanity in two functions
  checkTransactionSanityContextFree and checkTransactionSanityContextual. This
  is done in order to keep the decentralized treasury, which is always
  contextual, from infecting the context free checks.
* Modify checkTransactionSanityContextual to recognize and verify treasury
  transactions.
* Modify CheckTransactionSanity to deal with treasury transactions.
* Split checkBlockSanity in two functions checkBlockSanityContextFree and
  checkBlockSanityContextual. This is done in order to keep the decentralized
  treasury, which is always contextual, from infecting the context free checks.
* Modify checkBlockSanityContextual to enforce treasurybase and TAdd consensus
  checks.
* Modify checkBlockPositional by unindenting it and adding TSpend consensus
  enforcement.
* Modify checkCoinbaseUniqueHeightWithAddress to deal with the removal of the
  project subsidy from output 0.
* Add checkCoinbaseUniqueHeightWithTreasuryBase that verifies coinbase and
  treasurybase in the provided block.
* Unindent checkBlockContext.
* Modify checkTicketRedeemerCommitments and checkVoteInputs to deal with
  potential tspend votes.
* Modify CheckTransactionInputs to skip treasurybase transactions.
* Modify CheckTransactionInputs to deal with TSpend transactions. Ensure the
  provided Pi key is valid and that the signature is valid for the transaction.
  Ensure that treasury TAdd and TSpend transaction utxo can only be spent after
  coinbase maturity.
* Modify CountSigOps to deal with treasury transactions.
* Modify CountP2SHSigOps to deal with treasury transactions.
* Modify getStakeTreeFees to skip treasury transactions. Modify
  totalOutputs to subtract ValueIn 0 for TSpend and treasurybase transactions.
* Modify checkTransactionsAndConnect to deal with modified amounts.
* Add tspendChecks function that verifies an entire TSpend transaction
  validity at the point of the provided block. It ensures a TSpend is on a TVI.
  It ensures the TSpend is in the valid window. It verifies that a TSpend In
  and Out amounts match. It ensures a TSpend has the ValueIn amount encoded in
  the OP_RETURN in Out 0. It ensures a TSpend has not been mined before on this
  chain. It ensures a TSpend has the requisite votes. It ensures a TSpend is
  not overspending.
* Modify checkConnectBlock to call checkTreasuryBase and tspendChecks when
  treasury agenda is active.
* Add two tables to the database. Table "treasury" records the balance as of
  this block and balance changes that occurred in this block which will become
  active in CoinbaseMaturity blocks. Table "tspend" records all block hashes
  where a TSpend has been mined this is to detect forks and prevent a Tspend
  from being mined more than once.
* Modify handleBlockchainNotification to communicate if the treasury agenda is
  active and skip treasurybase transaction when needed.
* Add various Treasury parameters to chaincfg params.
* Add hardcoded Tspend signatures in dcr_tmux_simnet_setup.sh.
* Add notifytspend and stoptspend calls to the RPC server. notifytspend
  notifies the mempool when a TSpend transaction arrives.
* Modify commit filters V2 to recognize TAdd and TSpend transactions. It was
  possible to modify V2 instead of introducing V3 because nothing changes from
  the viewpoint of the wallet and treasury opcodes are disallowed prior to
  agenda activation.
* Modify AddMemPoolTransaction to skip TSpend transactions that would throw the
  fee estimator off.
* Add IsTreasuryAgendaActive, OnTSpendReceived and TSpendMinedOnAncestor to
  mempool.Config in order to reject/accept TSpends in the mempool.
* Modify checkPoolDoubleSpend to ignore treasurybase.
* Modify mempool.maybeAcceptTransaction to enforce treasury standardness rules.
  Don't allow TSpend transactions prior to stake validation height. Skip
  treasurybase and tspend transactions in the orphan test. Ensure a tspend is
  in a valid window. Ensure not more than 7 TSpends are active in the mempool.
  Ensure TSpend has a well-known Pi key. Ensure The provided Pi key was used to
  sign the transaction. Ensure TSpend was not mined in an ancestor block.
  Notify subscribers that a valid TSpend was received.
* Add standardCoinbaseOpReturn and standardTreasurybaseOpReturn to create an
  OP_RETURN followed by a data push that little endian encodes the height of
  the block. Then there are a number of random bytes to ensure that the
  transaction hash is always random.
* Modify createCoinbaseTx to create a coinbase that is valid when treasury is
  enabled or not. Additionally, alter the transaction version if treasury is
  enabled.
* Add createTreasuryBaseTx that creates a standard treasurybase.
* Modify maybeInsertStakeTx to recognize treasurybase and TSpend transactions.
* Modify handleTooFewVoters to call createTreasuryBaseTx when the treasury
  agenda is active. Skip copying treasurybase.
* Modify NewBlockTemplate to recognize and deal with treasury transactions.
  Skip TSpend transaction if block is not a TVI. Skip TSpend transaction if it
  is not in the proper window. Skip TSpend transaction if a TSpend does not
  have enough yes votes. Skip TSpend transaction if it overspends the treasury
  account. Skip TAdd if there are more than 20 TAdds in the block. Create
  treasurybase if required. Insert valid TAdd/TSpend transactions into stake
  tree.
* Add TreasuryBalance and IsTreasuryAgendaActive to rpcserver Chain interface.
* Add gettreasurybalance, sendfromtreasury and sendtotreasury calls to RPC
  server.
* Add notifytspend and stopnotifytspend to RPC websocket commands.
* Add simnet miner to generate large number of blocks during rpctests without
  triggering PoW difficulty increases. This is used to verify various treasury
  and tspend conditions during CI/CT.
* Modify RPC voting wallet to also vote on TSpends.
* Add json tests to verify all new opcodes and corner cases in the script
  engine.
* Modify isStakeOpcode to recognize treasury opcodes.
* Modify countSigOpsV0 to count TSpends.
* Modify handleStakeOutSign to deal with TSpends.
* Modify SignTxOutput to recognize TSpends.
* Add TSpendSignatureScript that signs a TSpend transaction.
* Add TreasuryAddTy and TreasurySpendTy types to the standard scripts.
* Add isTreasuryAddScript and isTreasurySpendScript functions that recognize
  a form of TAdd and TSpend transactions.
* Modify ExtractPkScriptAddrs to deal with TAdd and TSpend outputs.
* Add TxVersionSeqLock = 2 and TxVersionTreasury = 3 to wire. This is
  used to discriminate between treasury and non-treasury scripts.
* Rig up all functions that need the isTreasuryEnabledflag directly or
  indirectly.
* Shuffle various functions around and export them when they were needed to be
  called from other packages.
* Added and modified numerous tests to verify (hopefully) all corner cases that
  the decentralized treasury agenda has added.
2020-09-21 12:15:31 -05:00

451 lines
17 KiB
Go

// Copyright (c) 2013-2017 The btcsuite developers
// Copyright (c) 2015-2019 The Decred developers
// Use of this source code is governed by an ISC
// license that can be found in the LICENSE file.
package txscript
import (
"bytes"
"strings"
)
// These are the constants specified for maximums in individual scripts.
const (
MaxOpsPerScript = 255 // Max number of non-push operations.
MaxPubKeysPerMultiSig = 20 // Multisig can't have more sigs than this.
MaxScriptElementSize = 2048 // Max bytes pushable to the stack.
)
// IsSmallInt returns whether or not the opcode is considered a small integer,
// which is an OP_0, or OP_1 through OP_16.
//
// NOTE: This function is only valid for version 0 opcodes. Since the function
// does not accept a script version, the results are undefined for other script
// versions.
func IsSmallInt(op byte) bool {
return op == OP_0 || (op >= OP_1 && op <= OP_16)
}
// IsPayToScriptHash returns true if the script is in the standard
// pay-to-script-hash (P2SH) format, false otherwise.
//
// WARNING: This function always treats the passed script as version 0. Great
// care must be taken if introducing a new script version because it is used in
// consensus which, unfortunately as of the time of this writing, does not check
// script versions before determining if the script is a P2SH which means nodes
// on existing rules will analyze new version scripts as if they were version 0.
func IsPayToScriptHash(script []byte) bool {
return isScriptHashScript(script)
}
// IsPushOnlyScript returns whether or not the passed script only pushes data
// according to the consensus definition of pushing data.
//
// WARNING: This function always treats the passed script as version 0. Great
// care must be taken if introducing a new script version because it is used in
// consensus which, unfortunately as of the time of this writing, does not check
// script versions before checking if it is a push only script which means nodes
// on existing rules will treat new version scripts as if they were version 0.
func IsPushOnlyScript(script []byte) bool {
const scriptVersion = 0
tokenizer := MakeScriptTokenizer(scriptVersion, script)
for tokenizer.Next() {
// All opcodes up to OP_16 are data push instructions.
// NOTE: This does consider OP_RESERVED to be a data push instruction,
// but execution of OP_RESERVED will fail anyway and matches the
// behavior required by consensus.
if tokenizer.Opcode() > OP_16 {
return false
}
}
return tokenizer.Err() == nil
}
// isStakeOpcode returns whether or not the opcode is one of the stake tagging
// opcodes.
func isStakeOpcode(op byte, isTreasuryEnabled bool) bool {
if isTreasuryEnabled {
return (op >= OP_SSTX && op <= OP_SSTXCHANGE) ||
(op >= OP_TADD && op <= OP_TGEN)
}
return op >= OP_SSTX && op <= OP_SSTXCHANGE
}
// ExtractScriptHash extracts the script hash from the passed script if it is a
// standard pay-to-script-hash script. It will return nil otherwise.
//
// NOTE: This function is only valid for version 0 opcodes. Since the function
// does not accept a script version, the results are undefined for other script
// versions.
func ExtractScriptHash(script []byte) []byte {
// A pay-to-script-hash script is of the form:
// OP_HASH160 <20-byte scripthash> OP_EQUAL
if len(script) == 23 &&
script[0] == OP_HASH160 &&
script[1] == OP_DATA_20 &&
script[22] == OP_EQUAL {
return script[2:22]
}
return nil
}
// isScriptHashScript returns whether or not the passed script is a standard
// pay-to-script-hash script.
func isScriptHashScript(script []byte) bool {
return ExtractScriptHash(script) != nil
}
// isStakeScriptHashScript returns whether or not the passed script is a
// stake-tagged pay-to-script-hash script.
func (vm *Engine) isStakeScriptHashScript(script []byte) bool {
return len(script) == 24 &&
isStakeOpcode(script[0], vm.hasFlag(ScriptVerifyTreasury)) &&
script[1] == OP_HASH160 &&
script[2] == OP_DATA_20 &&
script[23] == OP_EQUAL
}
// isAnyKindOfScriptHash returns whether or not the passed script is either a
// regular pay-to-script-hash script or a stake-tagged pay-to-script-hash
// script.
func (vm *Engine) isAnyKindOfScriptHash(script []byte) bool {
return isScriptHashScript(script) || vm.isStakeScriptHashScript(script)
}
// hasP2SHRedeemScriptStakeOpCodes returns an error if the provided public key
// script is a regular pay-to-script-hash or a stake-tagged pay-to-script and,
// when it is, that the redeem script within the provided signature script
// contains stake opcodes. An error is also returned if the signature script is
// malformed after determining the public key script is one of the
// aforementioned cases.
func (vm *Engine) hasP2SHRedeemScriptStakeOpCodes(version uint16, sigScript, pkScript []byte) error {
// The only stake scripts currently supported are version 0.
if version != 0 {
return nil
}
// Nothing further to check if the public key script is not a normal
// pay-to-script-hash script or one tagged with a stake opcode.
if !(isScriptHashScript(pkScript) ||
vm.isStakeScriptHashScript(pkScript)) {
return nil
}
// Extract the redeem script from the signature script.
redeemScript := finalOpcodeData(version, sigScript)
if len(redeemScript) == 0 {
str := "p2sh signature script has no pushed data"
return scriptError(ErrNotPushOnly, str)
}
// Ensure the redeem script does not contain any stake opcodes as their use
// is prohibited outside of the very specific circumstances permitted by
// the staking system.
hasStakeOpCodes, err := ContainsStakeOpCodes(redeemScript,
vm.hasFlag(ScriptVerifyTreasury))
if err != nil {
return err
}
if hasStakeOpCodes {
str := "stake opcodes were found in a p2sh script"
return scriptError(ErrP2SHStakeOpCodes, str)
}
return nil
}
// DisasmString formats a disassembled script for one line printing. When the
// script fails to parse, the returned string will contain the disassembled
// script up to the point the failure occurred along with the string '[error]'
// appended. In addition, the reason the script failed to parse is returned
// if the caller wants more information about the failure.
//
// NOTE: This function is only valid for version 0 scripts. Since the function
// does not accept a script version, the results are undefined for other script
// versions.
func DisasmString(script []byte) (string, error) {
const scriptVersion = 0
var disbuf strings.Builder
tokenizer := MakeScriptTokenizer(scriptVersion, script)
if tokenizer.Next() {
disasmOpcode(&disbuf, tokenizer.op, tokenizer.Data(), true)
}
for tokenizer.Next() {
disbuf.WriteByte(' ')
disasmOpcode(&disbuf, tokenizer.op, tokenizer.Data(), true)
}
if tokenizer.Err() != nil {
if tokenizer.ByteIndex() != 0 {
disbuf.WriteByte(' ')
}
disbuf.WriteString("[error]")
}
return disbuf.String(), tokenizer.Err()
}
// isCanonicalPush returns true if the opcode is either not a push instruction
// or the data associated with the push instruction uses the smallest
// instruction to do the job. False otherwise.
//
// For example, it is possible to push a value of 1 to the stack as "OP_1",
// "OP_DATA_1 0x01", "OP_PUSHDATA1 0x01 0x01", and others, however, the first
// only takes a single byte, while the rest take more. Only the first is
// considered canonical.
func isCanonicalPush(opcode byte, data []byte) bool {
dataLen := len(data)
if opcode > OP_16 {
return true
}
if opcode < OP_PUSHDATA1 && opcode > OP_0 && (dataLen == 1 && data[0] <= 16) {
return false
}
if opcode == OP_PUSHDATA1 && dataLen < OP_PUSHDATA1 {
return false
}
if opcode == OP_PUSHDATA2 && dataLen <= 0xff {
return false
}
if opcode == OP_PUSHDATA4 && dataLen <= 0xffff {
return false
}
return true
}
// removeOpcodeByData will return the script minus any opcodes that perform a
// canonical push of data that contains the passed data to remove. This
// function assumes it is provided a version 0 script as any future version of
// script should avoid this functionality since it is unnecessary due to the
// signature scripts not being part of the witness-free transaction hash.
//
// WARNING: This will return the passed script unmodified unless a modification
// is necessary in which case the modified script is returned. This implies
// callers may NOT rely on being able to safely mutate either the passed or
// returned script without potentially modifying the same data.
//
// NOTE: This function is only valid for version 0 scripts. Since the function
// does not accept a script version, the results are undefined for other script
// versions.
func removeOpcodeByData(script []byte, dataToRemove []byte) []byte {
// Avoid work when possible.
if len(script) == 0 || len(dataToRemove) == 0 {
return script
}
// Parse through the script looking for a canonical data push that contains
// the data to remove.
const scriptVersion = 0
var result []byte
var prevOffset int32
tokenizer := MakeScriptTokenizer(scriptVersion, script)
for tokenizer.Next() {
// In practice, the script will basically never actually contain the
// data since this function is only used during signature verification
// to remove the signature itself which would require some incredibly
// non-standard code to create.
//
// Thus, as an optimization, avoid allocating a new script unless there
// is actually a match that needs to be removed.
op, data := tokenizer.Opcode(), tokenizer.Data()
if isCanonicalPush(op, data) && bytes.Contains(data, dataToRemove) {
if result == nil {
fullPushLen := tokenizer.ByteIndex() - prevOffset
result = make([]byte, 0, int32(len(script))-fullPushLen)
result = append(result, script[0:prevOffset]...)
}
} else if result != nil {
result = append(result, script[prevOffset:tokenizer.ByteIndex()]...)
}
prevOffset = tokenizer.ByteIndex()
}
if result == nil {
result = script
}
return result
}
// AsSmallInt returns the passed opcode, which MUST be true according to the
// IsSmallInt function, as an integer.
//
//
// NOTE: This function is only valid for version 0 opcodes. Since the function
// does not accept a script version, the results are undefined for other script
// versions.
func AsSmallInt(op byte) int {
if op == OP_0 {
return 0
}
return int(op - (OP_1 - 1))
}
// countSigOpsV0 returns the number of signature operations in the provided
// script up to the point of the first parse failure or the entire script when
// there are no parse failures. The precise flag attempts to accurately count
// the number of operations for a multisig operation versus using the maximum
// allowed.
//
// WARNING: This function always treats the passed script as version 0. Great
// care must be taken if introducing a new script version because it is used in
// consensus which, unfortunately as of the time of this writing, does not check
// script versions before counting their signature operations which means nodes
// on existing rules will count new version scripts as if they were version 0.
func countSigOpsV0(script []byte, precise bool, isTreasuryEnabled bool) int {
const scriptVersion = 0
numSigOps := 0
tokenizer := MakeScriptTokenizer(scriptVersion, script)
prevOp := byte(OP_INVALIDOPCODE)
for tokenizer.Next() {
switch tokenizer.Opcode() {
case OP_TSPEND:
if isTreasuryEnabled {
numSigOps++
}
case OP_CHECKSIG, OP_CHECKSIGVERIFY, OP_CHECKSIGALT,
OP_CHECKSIGALTVERIFY:
numSigOps++
case OP_CHECKMULTISIG, OP_CHECKMULTISIGVERIFY:
// Note that OP_0 is treated as the max number of sigops here in
// precise mode despite it being a valid small integer in order to
// highly discourage multisigs with zero pubkeys.
//
// Also, even though this is referred to as "precise" counting, it's
// not really precise at all due to the small int opcodes only
// covering 1 through 16 pubkeys, which means this will count any
// more than that value (e.g. 17, 18 19) as the maximum number of
// allowed pubkeys. This was inherited from bitcoin and is,
// unfortunately, now part of the consensus rules. This could be
// made more correct with a new script version, however, ideally all
// multisignature operations in new script versions should move to
// aggregated schemes such as Schnorr instead.
if precise && prevOp >= OP_1 && prevOp <= OP_16 {
numSigOps += AsSmallInt(prevOp)
} else {
numSigOps += MaxPubKeysPerMultiSig
}
default:
// Not a sigop.
}
prevOp = tokenizer.Opcode()
}
return numSigOps
}
// GetSigOpCount provides a quick count of the number of signature operations
// in a script. a CHECKSIG operations counts for 1, and a CHECK_MULTISIG for 20.
// If the script fails to parse, then the count up to the point of failure is
// returned.
//
// WARNING: This function always treats the passed script as version 0. Great
// care must be taken if introducing a new script version because it is used in
// consensus which, unfortunately as of the time of this writing, does not check
// script versions before counting their signature operations which means nodes
// on existing rules will count new version scripts as if they were version 0.
func GetSigOpCount(script []byte, isTreasuryEnabled bool) int {
return countSigOpsV0(script, false, isTreasuryEnabled)
}
// finalOpcodeData returns the data associated with the final opcode in the
// script. It will return nil if the script fails to parse.
func finalOpcodeData(scriptVersion uint16, script []byte) []byte {
// Avoid unnecessary work.
if len(script) == 0 {
return nil
}
var data []byte
tokenizer := MakeScriptTokenizer(scriptVersion, script)
for tokenizer.Next() {
data = tokenizer.Data()
}
if tokenizer.Err() != nil {
return nil
}
return data
}
// GetPreciseSigOpCount returns the number of signature operations in
// scriptPubKey. If bip16 is true then scriptSig may be searched for the
// Pay-To-Script-Hash script in order to find the precise number of signature
// operations in the transaction. If the script fails to parse, then the count
// up to the point of failure is returned.
//
// WARNING: This function always treats the passed script as version 0. Great
// care must be taken if introducing a new script version because it is used in
// consensus which, unfortunately as of the time of this writing, does not check
// script versions before counting their signature operations which means nodes
// on existing rules will count new version scripts as if they were version 0.
func GetPreciseSigOpCount(scriptSig, scriptPubKey []byte, isTreasuryEnabled bool) int {
const scriptVersion = 0
// Treat non P2SH transactions as normal. Note that signature operation
// counting includes all operations up to the first parse failure.
if !isScriptHashScript(scriptPubKey) {
return countSigOpsV0(scriptPubKey, true, isTreasuryEnabled)
}
// The signature script must only push data to the stack for P2SH to be
// a valid pair, so the signature operation count is 0 when that is not
// the case.
if len(scriptSig) == 0 || !IsPushOnlyScript(scriptSig) {
return 0
}
// The P2SH script is the last item the signature script pushes to the
// stack. When the script is empty, there are no signature operations.
//
// Notice that signature scripts that fail to fully parse count as 0
// signature operations unlike public key and redeem scripts.
redeemScript := finalOpcodeData(scriptVersion, scriptSig)
if len(redeemScript) == 0 {
return 0
}
// Return the more precise sigops count for the redeem script. Note that
// signature operation counting includes all operations up to the first
// parse failure.
return countSigOpsV0(redeemScript, true, isTreasuryEnabled)
}
// checkScriptParses returns an error if the provided script fails to parse.
func checkScriptParses(scriptVersion uint16, script []byte) error {
tokenizer := MakeScriptTokenizer(scriptVersion, script)
for tokenizer.Next() {
// Nothing to do.
}
return tokenizer.Err()
}
// IsUnspendable returns whether the passed public key script is unspendable, or
// guaranteed to fail at execution. This allows inputs to be pruned instantly
// when entering the UTXO set. In Decred, all zero value outputs are unspendable.
//
// NOTE: This function is only valid for version 0 scripts. Since the function
// does not accept a script version, the results are undefined for other script
// versions.
func IsUnspendable(amount int64, pkScript []byte) bool {
// The script is unspendable if starts with OP_RETURN or is guaranteed to
// fail at execution due to being larger than the max allowed script size.
if amount == 0 || len(pkScript) > MaxScriptSize || len(pkScript) > 0 &&
pkScript[0] == OP_RETURN {
return true
}
// The script is unspendable if it is guaranteed to fail at execution.
const scriptVersion = 0
return checkScriptParses(scriptVersion, pkScript) != nil
}