# this code comes from ABE. it can probably be simplified # # import mmap import string import struct import types from utils import * class SerializationError(Exception): """Thrown when there's a problem deserializing or serializing.""" class BCDataStream(object): """Workalike python implementation of Bitcoin's CDataStream class.""" def __init__(self): self.input = None self.read_cursor = 0 def clear(self): self.input = None self.read_cursor = 0 def write(self, bytes): # Initialize with string of bytes if self.input is None: self.input = bytes else: self.input += bytes def map_file(self, file, start): # Initialize with bytes from file self.input = mmap.mmap(file.fileno(), 0, access=mmap.ACCESS_READ) self.read_cursor = start def seek_file(self, position): self.read_cursor = position def close_file(self): self.input.close() def read_string(self): # Strings are encoded depending on length: # 0 to 252 : 1-byte-length followed by bytes (if any) # 253 to 65,535 : byte'253' 2-byte-length followed by bytes # 65,536 to 4,294,967,295 : byte '254' 4-byte-length followed by bytes # ... and the Bitcoin client is coded to understand: # greater than 4,294,967,295 : byte '255' 8-byte-length followed by bytes of string # ... but I don't think it actually handles any strings that big. if self.input is None: raise SerializationError("call write(bytes) before trying to deserialize") try: length = self.read_compact_size() except IndexError: raise SerializationError("attempt to read past end of buffer") return self.read_bytes(length) def write_string(self, string): # Length-encoded as with read-string self.write_compact_size(len(string)) self.write(string) def read_bytes(self, length): try: result = self.input[self.read_cursor:self.read_cursor+length] self.read_cursor += length return result except IndexError: raise SerializationError("attempt to read past end of buffer") return '' def read_boolean(self): return self.read_bytes(1)[0] != chr(0) def read_int16(self): return self._read_num(' len(bytes): vch = "_INVALID_"+bytes[i:] i = len(bytes) else: vch = bytes[i:i+nSize] i += nSize yield (opcode, vch, i) def script_GetOpName(opcode): try: return (opcodes.whatis(opcode)).replace("OP_", "") except KeyError: return "InvalidOp_"+str(opcode) def decode_script(bytes): result = '' for (opcode, vch, i) in script_GetOp(bytes): if len(result) > 0: result += " " if opcode <= opcodes.OP_PUSHDATA4: result += "%d:" % (opcode,) result += short_hex(vch) else: result += script_GetOpName(opcode) return result def match_decoded(decoded, to_match): if len(decoded) != len(to_match): return False for i in range(len(decoded)): if to_match[i] == opcodes.OP_PUSHDATA4 and decoded[i][0] <= opcodes.OP_PUSHDATA4: continue # Opcodes below OP_PUSHDATA4 all just push data onto stack, and are equivalent. if to_match[i] != decoded[i][0]: return False return True def get_address_from_input_script(bytes): try: decoded = [ x for x in script_GetOp(bytes) ] except: # coinbase transactions raise an exception return [], [], None # non-generated TxIn transactions push a signature # (seventy-something bytes) and then their public key # (33 or 65 bytes) onto the stack: match = [ opcodes.OP_PUSHDATA4, opcodes.OP_PUSHDATA4 ] if match_decoded(decoded, match): return None, None, public_key_to_bc_address(decoded[1][1]) # p2sh transaction, 2 of n match = [ opcodes.OP_0 ] while len(match) < len(decoded): match.append(opcodes.OP_PUSHDATA4) if match_decoded(decoded, match): redeemScript = decoded[-1][1] num = len(match) - 2 signatures = map(lambda x:x[1].encode('hex'), decoded[1:-1]) dec2 = [ x for x in script_GetOp(redeemScript) ] # 2 of 2 match2 = [ opcodes.OP_2, opcodes.OP_PUSHDATA4, opcodes.OP_PUSHDATA4, opcodes.OP_2, opcodes.OP_CHECKMULTISIG ] if match_decoded(dec2, match2): pubkeys = [ dec2[1][1].encode('hex'), dec2[2][1].encode('hex') ] return pubkeys, signatures, hash_160_to_bc_address(hash_160(redeemScript), 5) # 2 of 3 match2 = [ opcodes.OP_2, opcodes.OP_PUSHDATA4, opcodes.OP_PUSHDATA4, opcodes.OP_PUSHDATA4, opcodes.OP_3, opcodes.OP_CHECKMULTISIG ] if match_decoded(dec2, match2): pubkeys = [ dec2[1][1].encode('hex'), dec2[2][1].encode('hex'), dec2[3][1].encode('hex') ] return pubkeys, signatures, hash_160_to_bc_address(hash_160(redeemScript), 5) return [], [], None def get_address_from_output_script(bytes): try: decoded = [ x for x in script_GetOp(bytes) ] except: return "None" # The Genesis Block, self-payments, and pay-by-IP-address payments look like: # 65 BYTES:... CHECKSIG match = [opcodes.OP_PUSHDATA4, opcodes.OP_CHECKSIG] if match_decoded(decoded, match): return public_key_to_bc_address(decoded[0][1]) # coins sent to black hole # DUP HASH160 20 BYTES:... EQUALVERIFY CHECKSIG match = [opcodes.OP_DUP, opcodes.OP_HASH160, opcodes.OP_0, opcodes.OP_EQUALVERIFY, opcodes.OP_CHECKSIG] if match_decoded(decoded, match): return "None" # Pay-by-Bitcoin-address TxOuts look like: # DUP HASH160 20 BYTES:... EQUALVERIFY CHECKSIG match = [opcodes.OP_DUP, opcodes.OP_HASH160, opcodes.OP_PUSHDATA4, opcodes.OP_EQUALVERIFY, opcodes.OP_CHECKSIG] if match_decoded(decoded, match): return hash_160_to_bc_address(decoded[2][1]) # strange tx match = [opcodes.OP_DUP, opcodes.OP_HASH160, opcodes.OP_PUSHDATA4, opcodes.OP_EQUALVERIFY, opcodes.OP_CHECKSIG, opcodes.OP_NOP] if match_decoded(decoded, match): return hash_160_to_bc_address(decoded[2][1]) # p2sh match = [ opcodes.OP_HASH160, opcodes.OP_PUSHDATA4, opcodes.OP_EQUAL ] if match_decoded(decoded, match): addr = hash_160_to_bc_address(decoded[1][1],5) return addr return "None"