mirror of
https://github.com/trezor/trezor-firmware.git
synced 2024-12-24 07:18:09 +00:00
WIP: signing pseudocode
This commit is contained in:
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404
src/apps/common/sign.py
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404
src/apps/common/sign.py
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from trezor.crypto.hashlib import sha256
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from trezor.crypto import HDNode
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from trezor.utils import memcpy, memcpy_rev
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from . import coins
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from . import seed
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from trezor.messages.CoinType import CoinType
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from trezor.messages.SignTx import SignTx
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from trezor.messages.TxOutputType import TxOutputType
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from trezor.messages.TxOutputBinType import TxOutputBinType
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from trezor.messages.TxInputType import TxInputType
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from trezor.messages.TxRequest import TxRequest
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from trezor.messages.RequestType import TXINPUT, TXOUTPUT, TXMETA, TXFINISHED
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from trezor.messages.TxRequestSerializedType import TxRequestSerializedType
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from trezor.messages import OutputScriptType, InputScriptType
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# pylint: disable=W0622
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# Machine instructions
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# ===
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# TODO: we might want to define these in terms of data instead
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# - like TxRequest, but also for deriving keys for example
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# - sign_tx would turn to more or less pure code
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# - PROBLEM: async defs in python cannot yield. we could ignore that,
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# or use wrappers anyway, or just make it an ordinary old-style coroutine
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# and use yield / yield from everywhere
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def request_tx_meta(prev_hash: bytes=None):
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ack = yield TxRequest(type=TXMETA, prev_hash=prev_hash)
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return ack.tx
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def request_tx_input(index: int, prev_hash: bytes=None):
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ack = yield TxRequest(type=TXINPUT, prev_hash=prev_hash, index=index)
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return ack.tx.inputs[0]
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def request_tx_output(index: int, prev_hash: bytes=None):
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ack = yield TxRequest(type=TXOUTPUT, prev_hash=prev_hash, index=index)
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if prev_hash is not None:
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return ack.bin_outputs[0]
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else:
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return ack.outputs[0]
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def request_tx_finish():
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yield TxRequest(type=TXFINISHED)
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def send_serialized_tx(serialized: TxRequestSerializedType):
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yield serialized
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# Transaction signing
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# ===
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async def sign_tx(tx: SignTx, root: HDNode):
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coin = coins.by_name(tx.coin_name)
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# Phase 1
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# - check inputs, previous transactions, and outputs
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# - ask for confirmations
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# - check fee
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total_in = 0 # sum of input amounts
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total_out = 0 # sum of output amounts
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change_out = 0 # change output amount
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# h_first is used to make sure the inputs and outputs streamed in Phase 1
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# are the same as in Phase 2. it is thus not required to fully hash the
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# tx, as the SignTx info is streamed only once
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h_first = tx_hash_init() # not a real tx hash
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for i in range(tx.inputs_count):
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# STAGE_REQUEST_1_INPUT
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input = await request_tx_input(i)
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tx_write_input(h_first, input)
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total_in += await get_prevtx_output_value(input.prev_hash, input.prev_index)
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for o in range(tx.outputs_count):
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# STAGE_REQUEST_3_OUTPUT
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output = await request_tx_output(o)
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if output_is_change(output):
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if change_out != 0:
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raise ValueError('Only one change output allowed')
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change_out = output.amount
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outputbin = output_compile(output, coin, root)
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tx_write_output(h_first, outputbin)
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total_out += outputbin.amount
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# TODO: display output
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# TODO: confirm output
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h_first_dig = tx_hash_digest(h_first)
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# TODO: check funds and tx fee
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# TODO: ask for confirmation
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# Phase 2
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# - sign inputs
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# - check that nothing changed
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for i_sign in range(tx.inputs_count):
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h_sign = tx_hash_init() # hash of what we are signing with this input
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h_second = tx_hash_init() # should be the same as h_first
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for i in range(tx.inputs_count):
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# STAGE_REQUEST_4_INPUT
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input = await request_tx_input(i)
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tx_write_input(h_second, input)
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if i == i_sign:
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signing_key = node_derive(root, input.address_n)
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signing_key_pub = signing_key.public_key()
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input.script_sig = input_derive_scriptsig_for_signing(
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input, signing_key_pub)
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else:
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input.script_sig = bytes()
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tx_write_input(h_sign, input)
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for o in range(tx.outputs_count):
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# STAGE_REQUEST_4_OUTPUT
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output = await request_tx_output(o)
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outputbin = output_compile(output, coin, root)
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tx_write_output(h_second, outputbin)
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tx_write_output(h_sign, outputbin)
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if h_first_dig != tx_hash_digest(h_second):
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raise ValueError('Transaction has changed during signing')
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sig = sign(signing_key, tx_hash_digest(h_sign))
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# TODO: serialize scriptsig again
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# TODO: serialize input
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serialized = xxx
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await send_serialized_tx(serialized)
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for o in range(tx.outputs_count):
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# STAGE_REQUEST_5_OUTPUT
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output = await request_tx_output(o)
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outputbin = output_compile(output, coin, root)
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serialized = xxx
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await send_serialized_tx(serialized)
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await request_tx_finish()
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async def get_prevtx_output_value(prev_hash: bytes, prev_index: int) -> int:
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total_in = 0
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# STAGE_REQUEST_2_PREV_META
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tx = await TxRequest(type=TXMETA, hash=prev_hash)
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h = tx_hash_init()
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tx_write_header(h, tx.version, tx.inputs_count)
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for i in range(tx.inputs_count):
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# STAGE_REQUEST_2_PREV_INPUT
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input = await TxRequest(type=TXINPUT, hash=prev_hash, index=i)
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tx_write_input(h, input)
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tx_write_middle(h, tx.outputs_count)
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for o in range(tx.outputs_count):
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# STAGE_REQUEST_2_PREV_OUTPUT
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outputbin = await TxRequest(type=TXOUTPUT, hash=prev_hash, index=o)
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tx_write_output(h, outputbin)
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if o == prev_index:
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total_in += outputbin.value
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tx_write_footer(h, tx.locktime, False)
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if tx_hash_digest(h) != prev_hash:
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raise ValueError('PrevTx mismatch')
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return total_in
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# TX Hashing
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# ===
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def tx_hash_init():
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return HashWriter(sha256)
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def tx_hash_digest(w):
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return sha256(w.getvalue()).digest()
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# TX Outputs
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# ===
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def output_compile(output: TxOutputType, coin: CoinType, root: HDNode) -> TxOutputBinType:
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bin = TxOutputBinType()
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bin.amount = output.amount
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if output.script_type == OutputScriptType.PAYTOADDRESS:
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raw_address = output_paytoaddress_extract_raw_address(output, root)
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if raw_address[0] != coin.address_type:
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raise ValueError('Invalid address type')
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bin.script_pubkey = script_paytoaddress_new(raw_address)
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else:
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# TODO: other output script types
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raise ValueError('Unknown output script type')
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return bin
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def output_paytoaddress_extract_raw_address(output: TxOutputType, root: HDNode) -> bytes:
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output_address_n = getattr(output, 'address_n', None)
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output_address = getattr(output, 'address_n', None)
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if output_address_n:
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node = node_derive(root, output_address_n)
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# TODO: dont encode and decode again
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raw_address = address_decode(node.address())
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elif output_address:
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raw_address = address_decode(output_address)
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else:
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raise ValueError('Missing address')
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return raw_address
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def script_paytoaddress_new(raw_address: bytes) -> bytearray:
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s = bytearray(25)
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s[0] = 0x76 # OP_DUP
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s[1] = 0xA9 # OP_HASH_160
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s[2] = 0x14 # pushing 20 bytes
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s[3:23] = raw_address
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s[23] = 0x88 # OP_EQUALVERIFY
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s[24] = 0xAC # OP_CHECKSIG
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return s
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def output_is_change(output: TxOutputType):
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address_n = getattr(output, 'address_n', None)
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return bool(address_n)
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# Tx Inputs
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# ===
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def input_derive_scriptsig_for_signing(input: TxInputType, pubkey: bytes) -> bytes:
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if input.script_type == InputScriptType.SPENDADDRESS:
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pubkeyhash = xxx
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return script_spendaddress_new(pubkeyhash)
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else:
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# TODO: other input script types
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raise ValueError('Unknown input script type')
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def script_spendaddress_new(pubkeyhash: bytes) -> bytearray:
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s = bytearray(25)
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s[0] = 0x76 # OP_DUP
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s[1] = 0xA9 # OP_HASH_160
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s[2] = 0x14 # pushing 20 bytes
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s[3:23] = pubkeyhash
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s[23] = 0x88 # OP_EQUALVERIFY
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s[24] = 0xAC # OP_CHECKSIG
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return s
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async def sign(privkey: bytes, digest: bytes) -> bytes:
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# TODO: ecdsa secp256k1 digest sign
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return b''
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# Addresses, HDNodes
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# ===
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def node_derive(root: HDNode, address_n: list) -> HDNode:
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# TODO: this will probably need to be a part of the machine instructions
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node = root.clone()
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node.derive_path(address_n)
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return node
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def address_decode(address: str) -> bytes:
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# TODO: decode the address from base58
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return b''
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# TX Serialization
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# ===
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def tx_write_header(w, version: int, inputs_count: int):
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write_uint32(w, version)
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write_varint(w, inputs_count)
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def tx_write_input(w, i: TxInputType):
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write_bytes_rev(w, i.prev_hash)
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write_uint32(w, i.prev_index)
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write_varint(w, len(i.script_sig))
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write_bytes(w, i.script_sig)
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write_uint32(w, i.sequence)
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def tx_write_middle(w, outputs_count: int):
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write_varint(w, outputs_count)
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def tx_write_output(w, o: TxOutputBinType):
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write_uint64(w, o.amount)
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write_varint(w, len(o.script_pubkey))
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write_bytes(w, o.script_pubkey)
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def tx_write_footer(w, locktime: int, add_hash_type: bool):
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write_uint32(w, locktime)
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if add_hash_type:
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write_uint32(w, 1)
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# Buffer IO & Serialization
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# ===
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def write_varint(w, n: int):
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wb = w.writebyte
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if n < 253:
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wb(n & 0xFF)
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elif n < 0x10000:
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wb(253)
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wb(n & 0xFF)
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wb((n >> 8) & 0xFF)
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else:
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wb(254)
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wb(n & 0xFF)
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wb((n >> 8) & 0xFF)
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wb((n >> 16) & 0xFF)
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wb((n >> 24) & 0xFF)
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def write_uint32(w, n: int):
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wb = w.writebyte
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wb(n & 0xFF)
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wb((n >> 8) & 0xFF)
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wb((n >> 16) & 0xFF)
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wb((n >> 24) & 0xFF)
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def write_uint64(w, n: int):
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wb = w.writebyte
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wb(n & 0xFF)
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wb((n >> 8) & 0xFF)
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wb((n >> 16) & 0xFF)
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wb((n >> 24) & 0xFF)
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wb((n >> 32) & 0xFF)
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wb((n >> 40) & 0xFF)
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wb((n >> 48) & 0xFF)
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wb((n >> 56) & 0xFF)
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def write_bytes(w, buf: bytearray):
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w.write(buf)
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def write_bytes_rev(w, buf: bytearray):
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w.write(bytearray(reversed(buf)))
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class BufferWriter:
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def __init__(self, buf: bytearray, ofs: int):
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self.buf = buf
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self.ofs = ofs
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def write(self, buf):
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n = len(buf)
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w = memcpy(self.buf, self.ofs, buf, 0, n)
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self.ofs += w
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return w
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def writebyte(self, b):
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self.buf[self.ofs] = b
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self.ofs += 1
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def getvalue(self):
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return self.buf
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class HashWriter:
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def __init__(self, hashfunc):
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self.ctx = hashfunc()
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def write(self, buf):
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self.ctx.update(buf)
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def writebyte(self, b):
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self.ctx.update(bytes(b))
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def getvalue(self):
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return self.ctx.digest()
|
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Reference in New Issue
Block a user