mirror of
https://github.com/serai-dex/serai.git
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498 lines
14 KiB
Rust
498 lines
14 KiB
Rust
use core::cmp::Ordering;
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use std_shims::{
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vec::Vec,
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io::{self, Read, Write},
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};
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use zeroize::Zeroize;
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use curve25519_dalek::edwards::{EdwardsPoint, CompressedEdwardsY};
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use crate::{
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io::*,
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primitives::keccak256,
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ring_signatures::RingSignature,
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ringct::{bulletproofs::Bulletproof, RctProofs},
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};
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/// An input in the Monero protocol.
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#[derive(Clone, PartialEq, Eq, Debug)]
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pub enum Input {
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/// An input for a miner transaction, which is generating new coins.
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Gen(u64),
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/// An input spending an output on-chain.
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ToKey {
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/// The pool this input spends an output of.
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amount: Option<u64>,
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/// The decoys used by this input's ring, specified as their offset distance from each other.
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key_offsets: Vec<u64>,
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/// The key image (linking tag, nullifer) for the spent output.
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key_image: EdwardsPoint,
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},
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}
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impl Input {
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/// The weight of this Input, as relevant for fees.
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pub fn fee_weight(offsets_weight: usize) -> usize {
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// Uses 1 byte for the input type
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// Uses 1 byte for the VarInt amount due to amount being 0
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1 + 1 + offsets_weight + 32
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}
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/// Write the Input.
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pub fn write<W: Write>(&self, w: &mut W) -> io::Result<()> {
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match self {
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Input::Gen(height) => {
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w.write_all(&[255])?;
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write_varint(height, w)
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}
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Input::ToKey { amount, key_offsets, key_image } => {
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w.write_all(&[2])?;
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write_varint(&amount.unwrap_or(0), w)?;
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write_vec(write_varint, key_offsets, w)?;
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write_point(key_image, w)
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}
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}
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}
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/// Serialize the Input to a Vec<u8>.
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pub fn serialize(&self) -> Vec<u8> {
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let mut res = vec![];
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self.write(&mut res).unwrap();
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res
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}
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/// Read an Input.
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pub fn read<R: Read>(r: &mut R) -> io::Result<Input> {
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Ok(match read_byte(r)? {
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255 => Input::Gen(read_varint(r)?),
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2 => {
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let amount = read_varint(r)?;
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// https://github.com/monero-project/monero/
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// blob/00fd416a99686f0956361d1cd0337fe56e58d4a7/
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// src/cryptonote_basic/cryptonote_format_utils.cpp#L860-L863
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// A non-RCT 0-amount input can't exist because only RCT TXs can have a 0-amount output
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// That's why collapsing to None if the amount is 0 is safe, even without knowing if RCT
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let amount = if amount == 0 { None } else { Some(amount) };
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Input::ToKey {
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amount,
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key_offsets: read_vec(read_varint, r)?,
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key_image: read_torsion_free_point(r)?,
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}
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}
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_ => Err(io::Error::other("Tried to deserialize unknown/unused input type"))?,
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})
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}
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}
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/// An output in the Monero protocol.
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#[derive(Clone, PartialEq, Eq, Debug)]
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pub struct Output {
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/// The pool this output should be sorted into.
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pub amount: Option<u64>,
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/// The key which can spend this output.
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pub key: CompressedEdwardsY,
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/// The view tag for this output, as used to accelerate scanning.
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pub view_tag: Option<u8>,
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}
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impl Output {
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/// The weight of this Output, as relevant for fees.
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pub fn fee_weight(view_tags: bool) -> usize {
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// Uses 1 byte for the output type
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// Uses 1 byte for the VarInt amount due to amount being 0
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1 + 1 + 32 + if view_tags { 1 } else { 0 }
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}
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/// Write the Output.
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pub fn write<W: Write>(&self, w: &mut W) -> io::Result<()> {
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write_varint(&self.amount.unwrap_or(0), w)?;
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w.write_all(&[2 + u8::from(self.view_tag.is_some())])?;
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w.write_all(&self.key.to_bytes())?;
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if let Some(view_tag) = self.view_tag {
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w.write_all(&[view_tag])?;
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}
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Ok(())
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}
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/// Write the Output to a Vec<u8>.
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pub fn serialize(&self) -> Vec<u8> {
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let mut res = Vec::with_capacity(8 + 1 + 32);
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self.write(&mut res).unwrap();
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res
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}
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/// Read an Output.
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pub fn read<R: Read>(rct: bool, r: &mut R) -> io::Result<Output> {
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let amount = read_varint(r)?;
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let amount = if rct {
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if amount != 0 {
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Err(io::Error::other("RCT TX output wasn't 0"))?;
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}
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None
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} else {
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Some(amount)
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};
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let view_tag = match read_byte(r)? {
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2 => false,
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3 => true,
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_ => Err(io::Error::other("Tried to deserialize unknown/unused output type"))?,
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};
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Ok(Output {
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amount,
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key: CompressedEdwardsY(read_bytes(r)?),
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view_tag: if view_tag { Some(read_byte(r)?) } else { None },
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})
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}
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}
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/// An additional timelock for a Monero transaction.
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///
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/// Monero outputs are locked by a default timelock. If a timelock is explicitly specified, the
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/// longer of the two will be the timelock used.
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#[derive(Clone, Copy, PartialEq, Eq, Debug, Zeroize)]
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pub enum Timelock {
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/// No timelock.
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None,
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/// Locked until this block.
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Block(usize),
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/// Locked until this many seconds since the epoch.
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Time(u64),
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}
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impl Timelock {
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fn from_raw(raw: u64) -> Timelock {
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if raw == 0 {
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Timelock::None
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} else if raw < 500_000_000 {
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// TODO: This is trivial to have panic
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Timelock::Block(usize::try_from(raw).unwrap())
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} else {
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Timelock::Time(raw)
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}
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}
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fn write<W: Write>(&self, w: &mut W) -> io::Result<()> {
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write_varint(
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&match self {
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Timelock::None => 0,
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// TODO: Check this unwrap
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Timelock::Block(block) => (*block).try_into().unwrap(),
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Timelock::Time(time) => *time,
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},
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w,
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)
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}
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}
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impl PartialOrd for Timelock {
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fn partial_cmp(&self, other: &Self) -> Option<Ordering> {
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match (self, other) {
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(Timelock::None, Timelock::None) => Some(Ordering::Equal),
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(Timelock::None, _) => Some(Ordering::Less),
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(_, Timelock::None) => Some(Ordering::Greater),
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(Timelock::Block(a), Timelock::Block(b)) => a.partial_cmp(b),
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(Timelock::Time(a), Timelock::Time(b)) => a.partial_cmp(b),
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_ => None,
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}
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}
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}
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/// The transaction prefix.
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///
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/// This is common to all transaction versions and contains most parts of the transaction needed to
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/// handle it. It excludes any proofs.
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#[derive(Clone, PartialEq, Eq, Debug)]
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pub struct TransactionPrefix {
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/// The timelock this transaction uses.
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pub timelock: Timelock,
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/// The inputs for this transaction.
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pub inputs: Vec<Input>,
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/// The outputs for this transaction.
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pub outputs: Vec<Output>,
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/// The additional data included within the transaction.
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///
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/// This is an arbitrary data field, yet is used by wallets for containing the data necessary to
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/// scan the transaction.
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pub extra: Vec<u8>,
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}
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impl TransactionPrefix {
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/// The weight of this TransactionPrefix, as relevant for fees.
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pub fn fee_weight(
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decoy_weights: &[usize],
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outputs: usize,
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view_tags: bool,
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extra: usize,
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) -> usize {
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// Assumes Timelock::None since this library won't let you create a TX with a timelock
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// 1 input for every decoy weight
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1 + varint_len(decoy_weights.len()) +
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decoy_weights.iter().map(|&offsets_weight| Input::fee_weight(offsets_weight)).sum::<usize>() +
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varint_len(outputs) +
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(outputs * Output::fee_weight(view_tags)) +
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varint_len(extra) +
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extra
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}
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/// Write a TransactionPrefix.
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///
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/// This is distinct from Monero in that it won't write any version.
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fn write<W: Write>(&self, w: &mut W) -> io::Result<()> {
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self.timelock.write(w)?;
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write_vec(Input::write, &self.inputs, w)?;
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write_vec(Output::write, &self.outputs, w)?;
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write_varint(&self.extra.len(), w)?;
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w.write_all(&self.extra)
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}
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/// Read a TransactionPrefix.
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///
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/// This is distinct from Monero in that it won't read the version. The version must be passed
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/// in.
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pub fn read<R: Read>(r: &mut R, version: u64) -> io::Result<TransactionPrefix> {
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let timelock = Timelock::from_raw(read_varint(r)?);
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let inputs = read_vec(|r| Input::read(r), r)?;
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if inputs.is_empty() {
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Err(io::Error::other("transaction had no inputs"))?;
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}
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let is_miner_tx = matches!(inputs[0], Input::Gen { .. });
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let mut prefix = TransactionPrefix {
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timelock,
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inputs,
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outputs: read_vec(|r| Output::read((!is_miner_tx) && (version == 2), r), r)?,
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extra: vec![],
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};
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prefix.extra = read_vec(read_byte, r)?;
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Ok(prefix)
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}
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fn hash(&self, version: u64) -> [u8; 32] {
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let mut buf = vec![];
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write_varint(&version, &mut buf).unwrap();
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self.write(&mut buf).unwrap();
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keccak256(buf)
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}
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}
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/// A Monero transaction.
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#[allow(clippy::large_enum_variant)]
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#[derive(Clone, PartialEq, Eq, Debug)]
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pub enum Transaction {
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/// A version 1 transaction, used by the original Cryptonote codebase.
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V1 {
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/// The transaction's prefix.
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prefix: TransactionPrefix,
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/// The transaction's ring signatures.
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signatures: Vec<RingSignature>,
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},
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/// A version 2 transaction, used by the RingCT protocol.
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V2 {
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/// The transaction's prefix.
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prefix: TransactionPrefix,
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/// The transaction's proofs.
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proofs: Option<RctProofs>,
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},
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}
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impl Transaction {
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/// Get the TransactionPrefix of this transaction.
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pub fn prefix(&self) -> &TransactionPrefix {
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match self {
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Transaction::V1 { prefix, .. } | Transaction::V2 { prefix, .. } => prefix,
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}
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}
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/// The weight of this Transaction, as relevant for fees.
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// TODO: Replace ring_len, decoy_weights for &[&[usize]], where the inner buf is the decoy
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// offsets
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pub fn fee_weight(
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view_tags: bool,
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bp_plus: bool,
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ring_len: usize,
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decoy_weights: &[usize],
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outputs: usize,
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extra: usize,
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fee: u64,
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) -> usize {
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1 + TransactionPrefix::fee_weight(decoy_weights, outputs, view_tags, extra) +
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RctProofs::fee_weight(bp_plus, ring_len, decoy_weights.len(), outputs, fee)
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}
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/// Write the Transaction.
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///
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/// Some writable transactions may not be readable if they're malformed, per Monero's consensus
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/// rules.
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pub fn write<W: Write>(&self, w: &mut W) -> io::Result<()> {
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match self {
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Transaction::V1 { prefix, signatures } => {
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write_varint(&1u8, w)?;
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prefix.write(w)?;
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for ring_sig in signatures {
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ring_sig.write(w)?;
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}
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}
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Transaction::V2 { prefix, proofs } => {
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write_varint(&2u8, w)?;
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prefix.write(w)?;
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match proofs {
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None => w.write_all(&[0])?,
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Some(proofs) => proofs.write(w)?,
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}
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}
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}
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Ok(())
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}
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/// Write the Transaction to a Vec<u8>.
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pub fn serialize(&self) -> Vec<u8> {
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let mut res = Vec::with_capacity(2048);
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self.write(&mut res).unwrap();
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res
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}
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/// Read a Transaction.
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pub fn read<R: Read>(r: &mut R) -> io::Result<Transaction> {
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let version = read_varint(r)?;
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let prefix = TransactionPrefix::read(r, version)?;
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if version == 1 {
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let signatures = if (prefix.inputs.len() == 1) && matches!(prefix.inputs[0], Input::Gen(_)) {
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vec![]
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} else {
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let mut signatures = Vec::with_capacity(prefix.inputs.len());
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for input in &prefix.inputs {
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match input {
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Input::ToKey { key_offsets, .. } => {
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signatures.push(RingSignature::read(key_offsets.len(), r)?)
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}
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_ => {
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Err(io::Error::other("reading signatures for a transaction with non-ToKey inputs"))?
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}
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}
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}
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signatures
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};
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Ok(Transaction::V1 { prefix, signatures })
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} else if version == 2 {
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let proofs = Some(RctProofs::read(
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prefix.inputs.first().map_or(0, |input| match input {
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Input::Gen(_) => 0,
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Input::ToKey { key_offsets, .. } => key_offsets.len(),
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}),
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prefix.inputs.len(),
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prefix.outputs.len(),
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r,
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)?);
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Ok(Transaction::V2 { prefix, proofs })
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} else {
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Err(io::Error::other("tried to deserialize unknown version"))
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}
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}
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/// The hash of the transaction.
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pub fn hash(&self) -> [u8; 32] {
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let mut buf = Vec::with_capacity(2048);
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match self {
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Transaction::V1 { .. } => {
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self.write(&mut buf).unwrap();
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keccak256(buf)
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}
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Transaction::V2 { prefix, proofs } => {
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let mut hashes = Vec::with_capacity(96);
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hashes.extend(prefix.hash(2));
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if let Some(proofs) = proofs {
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let rct_type = proofs.rct_type();
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proofs.base.write(&mut buf, rct_type).unwrap();
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hashes.extend(keccak256(&buf));
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buf.clear();
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proofs.prunable.write(&mut buf, rct_type).unwrap();
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hashes.extend(keccak256(buf));
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} else {
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// Serialization of RctBase::Null
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hashes.extend(keccak256([0]));
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hashes.extend([0; 32]);
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}
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keccak256(hashes)
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}
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}
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}
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/// Calculate the hash of this transaction as needed for signing it.
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///
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/// This returns None if the transaction is without signatures.
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pub fn signature_hash(&self) -> Option<[u8; 32]> {
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match self {
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Transaction::V1 { prefix, .. } => Some(prefix.hash(1)),
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Transaction::V2 { prefix, proofs } => {
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let mut buf = Vec::with_capacity(2048);
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let mut sig_hash = Vec::with_capacity(96);
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sig_hash.extend(prefix.hash(2));
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let proofs = proofs.as_ref()?;
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proofs.base.write(&mut buf, proofs.rct_type()).unwrap();
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sig_hash.extend(keccak256(&buf));
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buf.clear();
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proofs.prunable.signature_write(&mut buf).unwrap();
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sig_hash.extend(keccak256(buf));
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Some(keccak256(sig_hash))
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}
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}
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}
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fn is_rct_bulletproof(&self) -> bool {
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match self {
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Transaction::V1 { .. } => false,
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Transaction::V2 { proofs, .. } => {
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let Some(proofs) = proofs else { return false };
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proofs.rct_type().bulletproof()
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}
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}
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}
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fn is_rct_bulletproof_plus(&self) -> bool {
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match self {
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Transaction::V1 { .. } => false,
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Transaction::V2 { proofs, .. } => {
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let Some(proofs) = proofs else { return false };
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proofs.rct_type().bulletproof_plus()
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}
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}
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}
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/// Calculate the transaction's weight.
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pub fn weight(&self) -> usize {
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let blob_size = self.serialize().len();
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let bp = self.is_rct_bulletproof();
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let bp_plus = self.is_rct_bulletproof_plus();
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if !(bp || bp_plus) {
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blob_size
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} else {
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blob_size +
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Bulletproof::calculate_bp_clawback(
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bp_plus,
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match self {
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Transaction::V1 { .. } => panic!("v1 transaction was BP(+)"),
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Transaction::V2 { prefix, .. } => prefix.outputs.len(),
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},
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)
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.0
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}
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}
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}
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