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843 lines
27 KiB
843 lines
27 KiB
#!/usr/bin/env python |
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# |
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# Electrum - lightweight Bitcoin client |
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# Copyright (C) 2011 thomasv@gitorious |
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# |
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# This program is free software: you can redistribute it and/or modify |
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# it under the terms of the GNU General Public License as published by |
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# the Free Software Foundation, either version 3 of the License, or |
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# (at your option) any later version. |
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# |
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# This program is distributed in the hope that it will be useful, |
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# but WITHOUT ANY WARRANTY; without even the implied warranty of |
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# MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the |
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# GNU General Public License for more details. |
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# |
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# You should have received a copy of the GNU General Public License |
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# along with this program. If not, see <http://www.gnu.org/licenses/>. |
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import hashlib, base64, ecdsa, re |
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from util import print_error |
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def rev_hex(s): |
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return s.decode('hex')[::-1].encode('hex') |
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def int_to_hex(i, length=1): |
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s = hex(i)[2:].rstrip('L') |
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s = "0"*(2*length - len(s)) + s |
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return rev_hex(s) |
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def var_int(i): |
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# https://en.bitcoin.it/wiki/Protocol_specification#Variable_length_integer |
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if i<0xfd: |
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return int_to_hex(i) |
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elif i<=0xffff: |
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return "fd"+int_to_hex(i,2) |
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elif i<=0xffffffff: |
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return "fe"+int_to_hex(i,4) |
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else: |
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return "ff"+int_to_hex(i,8) |
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def op_push(i): |
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if i<0x4c: |
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return int_to_hex(i) |
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elif i<0xff: |
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return '4c' + int_to_hex(i) |
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elif i<0xffff: |
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return '4d' + int_to_hex(i,2) |
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else: |
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return '4e' + int_to_hex(i,4) |
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Hash = lambda x: hashlib.sha256(hashlib.sha256(x).digest()).digest() |
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hash_encode = lambda x: x[::-1].encode('hex') |
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hash_decode = lambda x: x.decode('hex')[::-1] |
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# pywallet openssl private key implementation |
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def i2d_ECPrivateKey(pkey, compressed=False): |
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if compressed: |
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key = '3081d30201010420' + \ |
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'%064x' % pkey.secret + \ |
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'a081a53081a2020101302c06072a8648ce3d0101022100' + \ |
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'%064x' % _p + \ |
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'3006040100040107042102' + \ |
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'%064x' % _Gx + \ |
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'022100' + \ |
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'%064x' % _r + \ |
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'020101a124032200' |
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else: |
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key = '308201130201010420' + \ |
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'%064x' % pkey.secret + \ |
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'a081a53081a2020101302c06072a8648ce3d0101022100' + \ |
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'%064x' % _p + \ |
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'3006040100040107044104' + \ |
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'%064x' % _Gx + \ |
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'%064x' % _Gy + \ |
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'022100' + \ |
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'%064x' % _r + \ |
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'020101a144034200' |
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return key.decode('hex') + i2o_ECPublicKey(pkey.pubkey, compressed) |
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def i2o_ECPublicKey(pubkey, compressed=False): |
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# public keys are 65 bytes long (520 bits) |
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# 0x04 + 32-byte X-coordinate + 32-byte Y-coordinate |
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# 0x00 = point at infinity, 0x02 and 0x03 = compressed, 0x04 = uncompressed |
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# compressed keys: <sign> <x> where <sign> is 0x02 if y is even and 0x03 if y is odd |
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if compressed: |
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if pubkey.point.y() & 1: |
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key = '03' + '%064x' % pubkey.point.x() |
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else: |
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key = '02' + '%064x' % pubkey.point.x() |
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else: |
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key = '04' + \ |
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'%064x' % pubkey.point.x() + \ |
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'%064x' % pubkey.point.y() |
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return key.decode('hex') |
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# end pywallet openssl private key implementation |
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############ functions from pywallet ##################### |
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def hash_160(public_key): |
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try: |
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md = hashlib.new('ripemd160') |
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md.update(hashlib.sha256(public_key).digest()) |
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return md.digest() |
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except: |
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import ripemd |
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md = ripemd.new(hashlib.sha256(public_key).digest()) |
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return md.digest() |
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def public_key_to_bc_address(public_key): |
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h160 = hash_160(public_key) |
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return hash_160_to_bc_address(h160) |
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def hash_160_to_bc_address(h160, addrtype = 0): |
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vh160 = chr(addrtype) + h160 |
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h = Hash(vh160) |
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addr = vh160 + h[0:4] |
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return b58encode(addr) |
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def bc_address_to_hash_160(addr): |
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bytes = b58decode(addr, 25) |
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return ord(bytes[0]), bytes[1:21] |
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def encode_point(pubkey, compressed=False): |
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order = generator_secp256k1.order() |
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p = pubkey.pubkey.point |
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x_str = ecdsa.util.number_to_string(p.x(), order) |
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y_str = ecdsa.util.number_to_string(p.y(), order) |
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if compressed: |
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return chr(2 + (p.y() & 1)) + x_str |
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else: |
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return chr(4) + pubkey.to_string() #x_str + y_str |
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__b58chars = '123456789ABCDEFGHJKLMNPQRSTUVWXYZabcdefghijkmnopqrstuvwxyz' |
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__b58base = len(__b58chars) |
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def b58encode(v): |
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""" encode v, which is a string of bytes, to base58.""" |
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long_value = 0L |
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for (i, c) in enumerate(v[::-1]): |
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long_value += (256**i) * ord(c) |
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result = '' |
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while long_value >= __b58base: |
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div, mod = divmod(long_value, __b58base) |
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result = __b58chars[mod] + result |
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long_value = div |
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result = __b58chars[long_value] + result |
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# Bitcoin does a little leading-zero-compression: |
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# leading 0-bytes in the input become leading-1s |
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nPad = 0 |
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for c in v: |
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if c == '\0': nPad += 1 |
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else: break |
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return (__b58chars[0]*nPad) + result |
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def b58decode(v, length): |
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""" decode v into a string of len bytes.""" |
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long_value = 0L |
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for (i, c) in enumerate(v[::-1]): |
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long_value += __b58chars.find(c) * (__b58base**i) |
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result = '' |
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while long_value >= 256: |
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div, mod = divmod(long_value, 256) |
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result = chr(mod) + result |
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long_value = div |
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result = chr(long_value) + result |
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nPad = 0 |
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for c in v: |
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if c == __b58chars[0]: nPad += 1 |
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else: break |
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result = chr(0)*nPad + result |
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if length is not None and len(result) != length: |
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return None |
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return result |
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def EncodeBase58Check(vchIn): |
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hash = Hash(vchIn) |
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return b58encode(vchIn + hash[0:4]) |
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def DecodeBase58Check(psz): |
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vchRet = b58decode(psz, None) |
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key = vchRet[0:-4] |
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csum = vchRet[-4:] |
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hash = Hash(key) |
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cs32 = hash[0:4] |
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if cs32 != csum: |
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return None |
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else: |
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return key |
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def PrivKeyToSecret(privkey): |
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return privkey[9:9+32] |
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def SecretToASecret(secret, compressed=False, addrtype=0): |
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vchIn = chr((addrtype+128)&255) + secret |
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if compressed: vchIn += '\01' |
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return EncodeBase58Check(vchIn) |
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def ASecretToSecret(key, addrtype=0): |
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vch = DecodeBase58Check(key) |
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if vch and vch[0] == chr((addrtype+128)&255): |
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return vch[1:] |
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else: |
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return False |
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def regenerate_key(sec): |
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b = ASecretToSecret(sec) |
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if not b: |
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return False |
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b = b[0:32] |
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secret = int('0x' + b.encode('hex'), 16) |
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return EC_KEY(secret) |
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def GetPubKey(pubkey, compressed=False): |
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return i2o_ECPublicKey(pubkey, compressed) |
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def GetPrivKey(pkey, compressed=False): |
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return i2d_ECPrivateKey(pkey, compressed) |
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def GetSecret(pkey): |
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return ('%064x' % pkey.secret).decode('hex') |
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def is_compressed(sec): |
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b = ASecretToSecret(sec) |
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return len(b) == 33 |
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def address_from_private_key(sec): |
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# rebuild public key from private key, compressed or uncompressed |
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pkey = regenerate_key(sec) |
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assert pkey |
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# figure out if private key is compressed |
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compressed = is_compressed(sec) |
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# rebuild private and public key from regenerated secret |
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private_key = GetPrivKey(pkey, compressed) |
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public_key = GetPubKey(pkey.pubkey, compressed) |
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address = public_key_to_bc_address(public_key) |
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return address |
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def is_valid(addr): |
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ADDRESS_RE = re.compile('[1-9A-HJ-NP-Za-km-z]{26,}\\Z') |
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if not ADDRESS_RE.match(addr): return False |
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try: |
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addrtype, h = bc_address_to_hash_160(addr) |
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except: |
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return False |
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return addr == hash_160_to_bc_address(h, addrtype) |
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########### end pywallet functions ####################### |
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# secp256k1, http://www.oid-info.com/get/1.3.132.0.10 |
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_p = 0xFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFEFFFFFC2FL |
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_r = 0xFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFEBAAEDCE6AF48A03BBFD25E8CD0364141L |
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_b = 0x0000000000000000000000000000000000000000000000000000000000000007L |
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_a = 0x0000000000000000000000000000000000000000000000000000000000000000L |
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_Gx = 0x79BE667EF9DCBBAC55A06295CE870B07029BFCDB2DCE28D959F2815B16F81798L |
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_Gy = 0x483ada7726a3c4655da4fbfc0e1108a8fd17b448a68554199c47d08ffb10d4b8L |
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curve_secp256k1 = ecdsa.ellipticcurve.CurveFp( _p, _a, _b ) |
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generator_secp256k1 = ecdsa.ellipticcurve.Point( curve_secp256k1, _Gx, _Gy, _r ) |
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oid_secp256k1 = (1,3,132,0,10) |
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SECP256k1 = ecdsa.curves.Curve("SECP256k1", curve_secp256k1, generator_secp256k1, oid_secp256k1 ) |
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from ecdsa.util import string_to_number, number_to_string |
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def msg_magic(message): |
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return "\x18Bitcoin Signed Message:\n" + chr( len(message) ) + message |
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class EC_KEY(object): |
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def __init__( self, secret ): |
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self.pubkey = ecdsa.ecdsa.Public_key( generator_secp256k1, generator_secp256k1 * secret ) |
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self.privkey = ecdsa.ecdsa.Private_key( self.pubkey, secret ) |
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self.secret = secret |
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def sign_message(self, message, compressed, address): |
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private_key = ecdsa.SigningKey.from_secret_exponent( self.secret, curve = SECP256k1 ) |
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public_key = private_key.get_verifying_key() |
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signature = private_key.sign_digest( Hash( msg_magic(message) ), sigencode = ecdsa.util.sigencode_string ) |
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assert public_key.verify_digest( signature, Hash( msg_magic(message) ), sigdecode = ecdsa.util.sigdecode_string) |
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for i in range(4): |
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sig = base64.b64encode( chr(27 + i + (4 if compressed else 0)) + signature ) |
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try: |
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self.verify_message( address, sig, message) |
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return sig |
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except: |
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continue |
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else: |
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raise BaseException("error: cannot sign message") |
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@classmethod |
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def verify_message(self, address, signature, message): |
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""" See http://www.secg.org/download/aid-780/sec1-v2.pdf for the math """ |
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from ecdsa import numbertheory, ellipticcurve, util |
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import msqr |
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curve = curve_secp256k1 |
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G = generator_secp256k1 |
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order = G.order() |
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# extract r,s from signature |
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sig = base64.b64decode(signature) |
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if len(sig) != 65: raise BaseException("Wrong encoding") |
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r,s = util.sigdecode_string(sig[1:], order) |
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nV = ord(sig[0]) |
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if nV < 27 or nV >= 35: |
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raise BaseException("Bad encoding") |
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if nV >= 31: |
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compressed = True |
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nV -= 4 |
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else: |
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compressed = False |
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recid = nV - 27 |
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# 1.1 |
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x = r + (recid/2) * order |
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# 1.3 |
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alpha = ( x * x * x + curve.a() * x + curve.b() ) % curve.p() |
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beta = msqr.modular_sqrt(alpha, curve.p()) |
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y = beta if (beta - recid) % 2 == 0 else curve.p() - beta |
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# 1.4 the constructor checks that nR is at infinity |
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R = ellipticcurve.Point(curve, x, y, order) |
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# 1.5 compute e from message: |
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h = Hash( msg_magic(message) ) |
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e = string_to_number(h) |
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minus_e = -e % order |
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# 1.6 compute Q = r^-1 (sR - eG) |
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inv_r = numbertheory.inverse_mod(r,order) |
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Q = inv_r * ( s * R + minus_e * G ) |
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public_key = ecdsa.VerifyingKey.from_public_point( Q, curve = SECP256k1 ) |
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# check that Q is the public key |
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public_key.verify_digest( sig[1:], h, sigdecode = ecdsa.util.sigdecode_string) |
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# check that we get the original signing address |
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addr = public_key_to_bc_address( encode_point(public_key, compressed) ) |
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if address != addr: |
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raise BaseException("Bad signature") |
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###################################### BIP32 ############################## |
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random_seed = lambda n: "%032x"%ecdsa.util.randrange( pow(2,n) ) |
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BIP32_PRIME = 0x80000000 |
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def bip32_init(seed): |
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import hmac |
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seed = seed.decode('hex') |
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I = hmac.new("Bitcoin seed", seed, hashlib.sha512).digest() |
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master_secret = I[0:32] |
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master_chain = I[32:] |
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K, K_compressed = get_pubkeys_from_secret(master_secret) |
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return master_secret, master_chain, K, K_compressed |
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def get_pubkeys_from_secret(secret): |
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# public key |
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curve = SECP256k1 |
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private_key = ecdsa.SigningKey.from_string( secret, curve = SECP256k1 ) |
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public_key = private_key.get_verifying_key() |
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K = public_key.to_string() |
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K_compressed = GetPubKey(public_key.pubkey,True) |
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return K, K_compressed |
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def CKD(k, c, n): |
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import hmac |
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from ecdsa.util import string_to_number, number_to_string |
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order = generator_secp256k1.order() |
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keypair = EC_KEY(string_to_number(k)) |
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K = GetPubKey(keypair.pubkey,True) |
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if n & BIP32_PRIME: |
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data = chr(0) + k + rev_hex(int_to_hex(n,4)).decode('hex') |
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I = hmac.new(c, data, hashlib.sha512).digest() |
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else: |
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I = hmac.new(c, K + rev_hex(int_to_hex(n,4)).decode('hex'), hashlib.sha512).digest() |
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k_n = number_to_string( (string_to_number(I[0:32]) + string_to_number(k)) % order , order ) |
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c_n = I[32:] |
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return k_n, c_n |
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def CKD_prime(K, c, n): |
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import hmac |
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from ecdsa.util import string_to_number, number_to_string |
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order = generator_secp256k1.order() |
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if n & BIP32_PRIME: raise |
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K_public_key = ecdsa.VerifyingKey.from_string( K, curve = SECP256k1 ) |
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K_compressed = GetPubKey(K_public_key.pubkey,True) |
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I = hmac.new(c, K_compressed + rev_hex(int_to_hex(n,4)).decode('hex'), hashlib.sha512).digest() |
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curve = SECP256k1 |
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pubkey_point = string_to_number(I[0:32])*curve.generator + K_public_key.pubkey.point |
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public_key = ecdsa.VerifyingKey.from_public_point( pubkey_point, curve = SECP256k1 ) |
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K_n = public_key.to_string() |
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K_n_compressed = GetPubKey(public_key.pubkey,True) |
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c_n = I[32:] |
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return K_n, K_n_compressed, c_n |
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def bip32_private_derivation(k, c, branch, sequence): |
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assert sequence.startswith(branch) |
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sequence = sequence[len(branch):] |
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for n in sequence.split('/'): |
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if n == '': continue |
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n = int(n[:-1]) + BIP32_PRIME if n[-1] == "'" else int(n) |
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k, c = CKD(k, c, n) |
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K, K_compressed = get_pubkeys_from_secret(k) |
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return k.encode('hex'), c.encode('hex'), K.encode('hex'), K_compressed.encode('hex') |
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def bip32_public_derivation(c, K, branch, sequence): |
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assert sequence.startswith(branch) |
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sequence = sequence[len(branch):] |
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for n in sequence.split('/'): |
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n = int(n) |
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K, cK, c = CKD_prime(K, c, n) |
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return c.encode('hex'), K.encode('hex'), cK.encode('hex') |
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def bip32_private_key(sequence, k, chain): |
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for i in sequence: |
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k, chain = CKD(k, chain, i) |
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return SecretToASecret(k, True) |
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################################## transactions |
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MIN_RELAY_TX_FEE = 10000 |
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class Transaction: |
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def __init__(self, raw): |
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self.raw = raw |
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self.deserialize() |
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self.inputs = self.d['inputs'] |
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self.outputs = self.d['outputs'] |
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self.outputs = map(lambda x: (x['address'],x['value']), self.outputs) |
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self.input_info = None |
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self.is_complete = True |
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@classmethod |
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def from_io(klass, inputs, outputs): |
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raw = klass.serialize(inputs, outputs, for_sig = -1) # for_sig=-1 means do not sign |
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self = klass(raw) |
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self.is_complete = False |
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self.inputs = inputs |
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self.outputs = outputs |
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extras = [] |
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for i in self.inputs: |
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e = { 'txid':i['tx_hash'], 'vout':i['index'], 'scriptPubKey':i.get('raw_output_script') } |
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extras.append(e) |
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self.input_info = extras |
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return self |
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def __str__(self): |
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return self.raw |
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@classmethod |
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def multisig_script(klass, public_keys, num=None): |
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n = len(public_keys) |
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if num is None: num = n |
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# supports only "2 of 2", and "2 of 3" transactions |
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assert num <= n and n in [2,3] |
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if num==2: |
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s = '52' |
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elif num == 3: |
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s = '53' |
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else: |
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raise |
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for k in public_keys: |
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s += var_int(len(k)/2) |
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s += k |
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if n==2: |
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s += '52' |
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elif n==3: |
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s += '53' |
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else: |
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raise |
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s += 'ae' |
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return s |
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@classmethod |
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def serialize( klass, inputs, outputs, for_sig = None ): |
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|
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s = int_to_hex(1,4) # version |
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s += var_int( len(inputs) ) # number of inputs |
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for i in range(len(inputs)): |
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txin = inputs[i] |
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s += txin['tx_hash'].decode('hex')[::-1].encode('hex') # prev hash |
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s += int_to_hex(txin['index'],4) # prev index |
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if for_sig is None: |
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pubkeysig = txin.get('pubkeysig') |
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if pubkeysig: |
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pubkey, sig = pubkeysig[0] |
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sig = sig + chr(1) # hashtype |
|
script = op_push( len(sig)) |
|
script += sig.encode('hex') |
|
script += op_push( len(pubkey)) |
|
script += pubkey.encode('hex') |
|
else: |
|
signatures = txin['signatures'] |
|
pubkeys = txin['pubkeys'] |
|
script = '00' # op_0 |
|
for sig in signatures: |
|
sig = sig + '01' |
|
script += op_push(len(sig)/2) |
|
script += sig |
|
|
|
redeem_script = klass.multisig_script(pubkeys,2) |
|
script += op_push(len(redeem_script)/2) |
|
script += redeem_script |
|
|
|
elif for_sig==i: |
|
if txin.get('redeemScript'): |
|
script = txin['redeemScript'] # p2sh uses the inner script |
|
else: |
|
script = txin['raw_output_script'] # scriptsig |
|
else: |
|
script='' |
|
s += var_int( len(script)/2 ) # script length |
|
s += script |
|
s += "ffffffff" # sequence |
|
|
|
s += var_int( len(outputs) ) # number of outputs |
|
for output in outputs: |
|
addr, amount = output |
|
s += int_to_hex( amount, 8) # amount |
|
addrtype, hash_160 = bc_address_to_hash_160(addr) |
|
if addrtype == 0: |
|
script = '76a9' # op_dup, op_hash_160 |
|
script += '14' # push 0x14 bytes |
|
script += hash_160.encode('hex') |
|
script += '88ac' # op_equalverify, op_checksig |
|
elif addrtype == 5: |
|
script = 'a9' # op_hash_160 |
|
script += '14' # push 0x14 bytes |
|
script += hash_160.encode('hex') |
|
script += '87' # op_equal |
|
else: |
|
raise |
|
|
|
s += var_int( len(script)/2 ) # script length |
|
s += script # script |
|
s += int_to_hex(0,4) # lock time |
|
if for_sig is not None and for_sig != -1: |
|
s += int_to_hex(1, 4) # hash type |
|
return s |
|
|
|
|
|
def for_sig(self,i): |
|
return self.serialize(self.inputs, self.outputs, for_sig = i) |
|
|
|
|
|
def hash(self): |
|
return Hash(self.raw.decode('hex') )[::-1].encode('hex') |
|
|
|
|
|
|
|
def sign(self, private_keys): |
|
import deserialize |
|
|
|
is_complete = True |
|
|
|
for i, txin in enumerate(self.inputs): |
|
|
|
tx_for_sig = self.serialize( self.inputs, self.outputs, for_sig = i ) |
|
txin_pk = private_keys.get( txin.get('address') ) |
|
redeem_script = txin.get('redeemScript') |
|
|
|
if redeem_script: |
|
|
|
# parse the redeem script |
|
num, redeem_pubkeys = deserialize.parse_redeemScript(redeem_script) |
|
txin["pubkeys"] = redeem_pubkeys |
|
|
|
# list of already existing signatures |
|
signatures = txin.get("signatures",[]) |
|
|
|
# continue if this txin is complete |
|
if len(signatures) == num: |
|
continue |
|
|
|
# build list of public/private keys |
|
keypairs = {} |
|
for sec in txin_pk: |
|
compressed = is_compressed(sec) |
|
pkey = regenerate_key(sec) |
|
pubkey = GetPubKey(pkey.pubkey, compressed) |
|
keypairs[ pubkey.encode('hex') ] = sec |
|
|
|
for pubkey in redeem_pubkeys: |
|
|
|
# check if we have a key corresponding to the redeem script |
|
if pubkey in keypairs.keys(): |
|
# add signature |
|
sec = keypairs[pubkey] |
|
compressed = is_compressed(sec) |
|
pkey = regenerate_key(sec) |
|
secexp = pkey.secret |
|
private_key = ecdsa.SigningKey.from_secret_exponent( secexp, curve = SECP256k1 ) |
|
public_key = private_key.get_verifying_key() |
|
sig = private_key.sign_digest( Hash( tx_for_sig.decode('hex') ), sigencode = ecdsa.util.sigencode_der ) |
|
assert public_key.verify_digest( sig, Hash( tx_for_sig.decode('hex') ), sigdecode = ecdsa.util.sigdecode_der) |
|
signatures.append( sig.encode('hex') ) |
|
|
|
# for p2sh, pubkeysig is a tuple (may be incomplete) |
|
txin["signatures"] = signatures |
|
print_error("signatures", signatures) |
|
is_complete = is_complete and len(signatures) == num |
|
|
|
else: |
|
|
|
if txin.get("pubkeysig"): |
|
continue |
|
|
|
if not txin_pk: |
|
is_complete = False |
|
continue |
|
|
|
sec = txin_pk[0] |
|
compressed = is_compressed(sec) |
|
pkey = regenerate_key(sec) |
|
secexp = pkey.secret |
|
private_key = ecdsa.SigningKey.from_secret_exponent( secexp, curve = SECP256k1 ) |
|
public_key = private_key.get_verifying_key() |
|
pkey = EC_KEY(secexp) |
|
pubkey = GetPubKey(pkey.pubkey, compressed) |
|
sig = private_key.sign_digest( Hash( tx_for_sig.decode('hex') ), sigencode = ecdsa.util.sigencode_der ) |
|
assert public_key.verify_digest( sig, Hash( tx_for_sig.decode('hex') ), sigdecode = ecdsa.util.sigdecode_der) |
|
txin["pubkeysig"] = [(pubkey, sig)] |
|
|
|
self.is_complete = is_complete |
|
self.raw = self.serialize( self.inputs, self.outputs ) |
|
|
|
|
|
def deserialize(self): |
|
import deserialize |
|
vds = deserialize.BCDataStream() |
|
vds.write(self.raw.decode('hex')) |
|
self.d = deserialize.parse_Transaction(vds) |
|
return self.d |
|
|
|
|
|
def has_address(self, addr): |
|
found = False |
|
for txin in self.inputs: |
|
if addr == txin.get('address'): |
|
found = True |
|
break |
|
for txout in self.outputs: |
|
if addr == txout[0]: |
|
found = True |
|
break |
|
return found |
|
|
|
|
|
def get_value(self, addresses, prevout_values): |
|
# return the balance for that tx |
|
is_relevant = False |
|
is_send = False |
|
is_pruned = False |
|
is_partial = False |
|
v_in = v_out = v_out_mine = 0 |
|
|
|
for item in self.inputs: |
|
addr = item.get('address') |
|
if addr in addresses: |
|
is_send = True |
|
is_relevant = True |
|
key = item['prevout_hash'] + ':%d'%item['prevout_n'] |
|
value = prevout_values.get( key ) |
|
if value is None: |
|
is_pruned = True |
|
else: |
|
v_in += value |
|
else: |
|
is_partial = True |
|
|
|
if not is_send: is_partial = False |
|
|
|
for item in self.outputs: |
|
addr, value = item |
|
v_out += value |
|
if addr in addresses: |
|
v_out_mine += value |
|
is_relevant = True |
|
|
|
if is_pruned: |
|
# some inputs are mine: |
|
fee = None |
|
if is_send: |
|
v = v_out_mine - v_out |
|
else: |
|
# no input is mine |
|
v = v_out_mine |
|
|
|
else: |
|
v = v_out_mine - v_in |
|
|
|
if is_partial: |
|
# some inputs are mine, but not all |
|
fee = None |
|
is_send = v < 0 |
|
else: |
|
# all inputs are mine |
|
fee = v_out - v_in |
|
|
|
return is_relevant, is_send, v, fee |
|
|
|
def as_dict(self): |
|
import json |
|
out = { |
|
"hex":self.raw, |
|
"complete":self.is_complete |
|
} |
|
if not self.is_complete: |
|
extras = [] |
|
for i in self.inputs: |
|
e = { 'txid':i['tx_hash'], 'vout':i['index'], |
|
'scriptPubKey':i.get('raw_output_script'), |
|
'KeyID':i.get('KeyID'), |
|
'redeemScript':i.get('redeemScript'), |
|
'signatures':i.get('signatures'), |
|
'pubkeys':i.get('pubkeys'), |
|
} |
|
extras.append(e) |
|
self.input_info = extras |
|
|
|
if self.input_info: |
|
out['input_info'] = json.dumps(self.input_info).replace(' ','') |
|
|
|
return out |
|
|
|
|
|
def requires_fee(self, verifier): |
|
# see https://en.bitcoin.it/wiki/Transaction_fees |
|
threshold = 57600000 |
|
size = len(self.raw)/2 |
|
if size >= 10000: |
|
return True |
|
|
|
for o in self.outputs: |
|
value = o[1] |
|
if value < 1000000: |
|
return True |
|
sum = 0 |
|
for i in self.inputs: |
|
age = verifier.get_confirmations(i["tx_hash"])[0] |
|
sum += i["value"] * age |
|
priority = sum / size |
|
print_error(priority, threshold) |
|
return priority < threshold |
|
|
|
|
|
|
|
|
|
def test_bip32(seed, sequence): |
|
""" |
|
run a test vector, |
|
see https://en.bitcoin.it/wiki/BIP_0032_TestVectors |
|
""" |
|
|
|
master_secret, master_chain, master_public_key, master_public_key_compressed = bip32_init(seed) |
|
|
|
print "secret key", master_secret.encode('hex') |
|
print "chain code", master_chain.encode('hex') |
|
|
|
key_id = hash_160(master_public_key_compressed) |
|
print "keyid", key_id.encode('hex') |
|
print "base58" |
|
print "address", hash_160_to_bc_address(key_id) |
|
print "secret key", SecretToASecret(master_secret, True) |
|
|
|
k = master_secret |
|
c = master_chain |
|
|
|
s = ['m'] |
|
for n in sequence.split('/'): |
|
s.append(n) |
|
print "Chain [%s]" % '/'.join(s) |
|
|
|
n = int(n[:-1]) + BIP32_PRIME if n[-1] == "'" else int(n) |
|
k0, c0 = CKD(k, c, n) |
|
K0, K0_compressed = get_pubkeys_from_secret(k0) |
|
|
|
print "* Identifier" |
|
print " * (main addr)", hash_160_to_bc_address(hash_160(K0_compressed)) |
|
|
|
print "* Secret Key" |
|
print " * (hex)", k0.encode('hex') |
|
print " * (wif)", SecretToASecret(k0, True) |
|
|
|
print "* Chain Code" |
|
print " * (hex)", c0.encode('hex') |
|
|
|
k = k0 |
|
c = c0 |
|
print "----" |
|
|
|
|
|
|
|
|
|
if __name__ == '__main__': |
|
test_bip32("000102030405060708090a0b0c0d0e0f", "0'/1/2'/2/1000000000") |
|
test_bip32("fffcf9f6f3f0edeae7e4e1dedbd8d5d2cfccc9c6c3c0bdbab7b4b1aeaba8a5a29f9c999693908d8a8784817e7b7875726f6c696663605d5a5754514e4b484542","0/2147483647'/1/2147483646'/2") |
|
|
|
|