txscript: Remove unused parseScriptTemplate func.
Also remove tests associated with the func accordingly.
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3 changed files with 0 additions and 148 deletions
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@ -618,79 +618,6 @@ type parsedOpcode struct {
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data []byte
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}
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// checkParseableInScript checks whether or not the current opcode is able to be
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// parsed at a certain position in a script.
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// This returns the position of the next opcode to be parsed in the script.
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func (pop *parsedOpcode) checkParseableInScript(script []byte, scriptPos int) (int, error) {
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// Parse data out of instruction.
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switch {
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// No additional data. Note that some of the opcodes, notably
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// OP_1NEGATE, OP_0, and OP_[1-16] represent the data
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// themselves.
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case pop.opcode.length == 1:
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scriptPos++
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// Data pushes of specific lengths -- OP_DATA_[1-75].
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case pop.opcode.length > 1:
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if len(script[scriptPos:]) < pop.opcode.length {
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str := fmt.Sprintf("opcode %s requires %d "+
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"bytes, but script only has %d remaining",
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pop.opcode.name, pop.opcode.length, len(script[scriptPos:]))
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return 0, scriptError(ErrMalformedPush, str)
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}
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// Slice out the data.
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pop.data = script[scriptPos+1 : scriptPos+pop.opcode.length]
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scriptPos += pop.opcode.length
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// Data pushes with parsed lengths -- OP_PUSHDATAP{1,2,4}.
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case pop.opcode.length < 0:
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var l uint
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off := scriptPos + 1
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if len(script[off:]) < -pop.opcode.length {
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str := fmt.Sprintf("opcode %s requires %d "+
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"bytes, but script only has %d remaining",
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pop.opcode.name, -pop.opcode.length, len(script[off:]))
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return 0, scriptError(ErrMalformedPush, str)
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}
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// Next -length bytes are little endian length of data.
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switch pop.opcode.length {
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case -1:
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l = uint(script[off])
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case -2:
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l = ((uint(script[off+1]) << 8) |
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uint(script[off]))
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case -4:
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l = ((uint(script[off+3]) << 24) |
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(uint(script[off+2]) << 16) |
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(uint(script[off+1]) << 8) |
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uint(script[off]))
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default:
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str := fmt.Sprintf("invalid opcode length %d",
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pop.opcode.length)
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return 0, scriptError(ErrMalformedPush, str)
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}
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// Move offset to beginning of the data.
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off += -pop.opcode.length
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// Disallow entries that do not fit script or were
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// sign extended.
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if int(l) > len(script[off:]) || int(l) < 0 {
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str := fmt.Sprintf("opcode %s pushes %d bytes, "+
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"but script only has %d remaining",
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pop.opcode.name, int(l), len(script[off:]))
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return 0, scriptError(ErrMalformedPush, str)
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}
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pop.data = script[off : off+int(l)]
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scriptPos += 1 - pop.opcode.length + int(l)
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}
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return scriptPos, nil
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}
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// disasmOpcode writes a human-readable disassembly of the provided opcode and
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// data into the provided buffer. The compact flag indicates the disassembly
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// should print a more compact representation of data-carrying and small integer
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@ -143,65 +143,6 @@ func IsPushOnlyScript(script []byte) bool {
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return tokenizer.Err() == nil
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}
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// parseScriptTemplate is the same as parseScript but allows the passing of the
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// template list for testing purposes. When there are parse errors, it returns
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// the list of parsed opcodes up to the point of failure along with the error.
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func parseScriptTemplate(script []byte, opcodes *[256]opcode) ([]parsedOpcode, error) {
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retScript := make([]parsedOpcode, 0, len(script))
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var err error
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for i := 0; i < len(script); {
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instr := script[i]
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op := &opcodes[instr]
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pop := parsedOpcode{opcode: op}
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i, err = pop.checkParseableInScript(script, i)
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if err != nil {
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return retScript, err
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}
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retScript = append(retScript, pop)
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}
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return retScript, nil
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}
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// checkScriptTemplateParseable is the same as parseScriptTemplate but does not
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// return the list of opcodes up until the point of failure so that this can be
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// used in functions which do not necessarily have a need for the failed list of
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// opcodes, such as IsUnspendable.
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//
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// This function returns a pointer to a byte. This byte is nil if the parsing
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// has an error, or if the script length is zero. If the script length is not
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// zero and parsing succeeds, then the first opcode parsed will be returned.
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//
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// Not returning the full opcode list up until failure also has the benefit of
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// reducing GC pressure, as the list would get immediately thrown away.
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func checkScriptTemplateParseable(script []byte, opcodes *[256]opcode) (*byte, error) {
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var err error
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// A script of length zero is an unspendable script but it is parseable.
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var firstOpcode byte
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var numParsedInstr uint = 0
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for i := 0; i < len(script); {
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instr := script[i]
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op := &opcodes[instr]
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pop := parsedOpcode{opcode: op}
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i, err = pop.checkParseableInScript(script, i)
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if err != nil {
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return nil, err
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}
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// if this is a op_return then it is unspendable so we set the first
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// parsed instruction in case it's an op_return
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if numParsedInstr == 0 {
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firstOpcode = pop.opcode.value
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}
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numParsedInstr++
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}
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return &firstOpcode, nil
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}
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// DisasmString formats a disassembled script for one line printing. When the
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// script fails to parse, the returned string will contain the disassembled
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// script up to the point the failure occurred along with the string '[error]'
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@ -12,22 +12,6 @@ import (
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"github.com/btcsuite/btcd/wire"
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)
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// TestParseOpcode tests for opcode parsing with bad data templates.
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func TestParseOpcode(t *testing.T) {
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// Deep copy the array and make one of the opcodes invalid by setting it
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// to the wrong length.
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fakeArray := opcodeArray
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fakeArray[OP_PUSHDATA4] = opcode{value: OP_PUSHDATA4,
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name: "OP_PUSHDATA4", length: -8, opfunc: opcodePushData}
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// This script would be fine if -8 was a valid length.
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_, err := parseScriptTemplate([]byte{OP_PUSHDATA4, 0x1, 0x00, 0x00,
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0x00, 0x00, 0x00, 0x00, 0x00}, &fakeArray)
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if err == nil {
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t.Errorf("no error with dodgy opcode array!")
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}
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}
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// TestPushedData ensured the PushedData function extracts the expected data out
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// of various scripts.
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func TestPushedData(t *testing.T) {
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