difftreelog
feat Add write support for vectors with simple types.
in: master
1 file changed
crates/evm-coder/src/abi.rsdiffbeforeafterboth1// Copyright 2019-2022 Unique Network (Gibraltar) Ltd.2// This file is part of Unique Network.34// Unique Network is free software: you can redistribute it and/or modify5// it under the terms of the GNU General Public License as published by6// the Free Software Foundation, either version 3 of the License, or7// (at your option) any later version.89// Unique Network is distributed in the hope that it will be useful,10// but WITHOUT ANY WARRANTY; without even the implied warranty of11// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the12// GNU General Public License for more details.1314// You should have received a copy of the GNU General Public License15// along with Unique Network. If not, see <http://www.gnu.org/licenses/>.1617//! Implementation of EVM RLP reader/writer1819#![allow(dead_code)]2021#[cfg(not(feature = "std"))]22use alloc::vec::Vec;23use evm_core::ExitError;24use primitive_types::{H160, U256};2526use crate::{27 execution::{Error, ResultWithPostInfo, WithPostDispatchInfo},28 types::{string, self},29};30use crate::execution::Result;3132const ABI_ALIGNMENT: usize = 32;3334trait TypeHelper {35 fn is_dynamic() -> bool;36}3738/// View into RLP data, which provides method to read typed items from it39#[derive(Clone)]40pub struct AbiReader<'i> {41 buf: &'i [u8],42 subresult_offset: usize,43 offset: usize,44}45impl<'i> AbiReader<'i> {46 /// Start reading RLP buffer, assuming there is no padding bytes47 pub fn new(buf: &'i [u8]) -> Self {48 Self {49 buf,50 subresult_offset: 0,51 offset: 0,52 }53 }54 /// Start reading RLP buffer, parsing first 4 bytes as selector55 pub fn new_call(buf: &'i [u8]) -> Result<(types::bytes4, Self)> {56 if buf.len() < 4 {57 return Err(Error::Error(ExitError::OutOfOffset));58 }59 let mut method_id = [0; 4];60 method_id.copy_from_slice(&buf[0..4]);6162 Ok((63 method_id,64 Self {65 buf,66 subresult_offset: 4,67 offset: 4,68 },69 ))70 }7172 fn read_pad<const S: usize>(73 buf: &[u8],74 offset: usize,75 pad_start: usize,76 pad_size: usize,77 block_start: usize,78 block_size: usize,79 ) -> Result<[u8; S]> {80 if buf.len() - offset < ABI_ALIGNMENT {81 return Err(Error::Error(ExitError::OutOfOffset));82 }83 let mut block = [0; S];84 let is_pad_zeroed = buf[pad_start..pad_size].iter().all(|&v| v == 0);85 if !is_pad_zeroed {86 return Err(Error::Error(ExitError::InvalidRange));87 }88 block.copy_from_slice(&buf[block_start..block_size]);89 Ok(block)90 }9192 fn read_padleft<const S: usize>(&mut self) -> Result<[u8; S]> {93 let offset = self.offset;94 self.offset += ABI_ALIGNMENT;95 Self::read_pad(96 self.buf,97 offset,98 offset,99 offset + ABI_ALIGNMENT - S,100 offset + ABI_ALIGNMENT - S,101 offset + ABI_ALIGNMENT,102 )103 }104105 fn read_padright<const S: usize>(&mut self) -> Result<[u8; S]> {106 let offset = self.offset;107 self.offset += ABI_ALIGNMENT;108 Self::read_pad(109 self.buf,110 offset,111 offset + S,112 offset + ABI_ALIGNMENT,113 offset,114 offset + S,115 )116 }117118 /// Read [`H160`] at current position, then advance119 pub fn address(&mut self) -> Result<H160> {120 Ok(H160(self.read_padleft()?))121 }122123 /// Read [`bool`] at current position, then advance124 pub fn bool(&mut self) -> Result<bool> {125 let data: [u8; 1] = self.read_padleft()?;126 match data[0] {127 0 => Ok(false),128 1 => Ok(true),129 _ => Err(Error::Error(ExitError::InvalidRange)),130 }131 }132133 /// Read [`[u8; 4]`] at current position, then advance134 pub fn bytes4(&mut self) -> Result<[u8; 4]> {135 self.read_padright()136 }137138 /// Read [`Vec<u8>`] at current position, then advance139 pub fn bytes(&mut self) -> Result<Vec<u8>> {140 let mut subresult = self.subresult(None)?;141 let length = subresult.uint32()? as usize;142 if subresult.buf.len() < subresult.offset + length {143 return Err(Error::Error(ExitError::OutOfOffset));144 }145 Ok(subresult.buf[subresult.offset..subresult.offset + length].into())146 }147148 /// Read [`string`] at current position, then advance149 pub fn string(&mut self) -> Result<string> {150 string::from_utf8(self.bytes()?).map_err(|_| Error::Error(ExitError::InvalidRange))151 }152153 /// Read [`u8`] at current position, then advance154 pub fn uint8(&mut self) -> Result<u8> {155 Ok(self.read_padleft::<1>()?[0])156 }157158 /// Read [`u32`] at current position, then advance159 pub fn uint32(&mut self) -> Result<u32> {160 Ok(u32::from_be_bytes(self.read_padleft()?))161 }162163 /// Read [`u128`] at current position, then advance164 pub fn uint128(&mut self) -> Result<u128> {165 Ok(u128::from_be_bytes(self.read_padleft()?))166 }167168 /// Read [`U256`] at current position, then advance169 pub fn uint256(&mut self) -> Result<U256> {170 let buf: [u8; 32] = self.read_padleft()?;171 Ok(U256::from_big_endian(&buf))172 }173174 /// Read [`u64`] at current position, then advance175 pub fn uint64(&mut self) -> Result<u64> {176 Ok(u64::from_be_bytes(self.read_padleft()?))177 }178179 /// Read [`usize`] at current position, then advance180 #[deprecated = "dangerous, as usize may have different width in wasm and native execution"]181 pub fn read_usize(&mut self) -> Result<usize> {182 Ok(usize::from_be_bytes(self.read_padleft()?))183 }184185 /// Slice recursive buffer, advance one word for buffer offset186 /// If `size` is [`None`] then [`Self::offset`] and [`Self::subresult_offset`] evals from [`Self::buf`].187 fn subresult(&mut self, size: Option<usize>) -> Result<AbiReader<'i>> {188 let subresult_offset = self.subresult_offset;189 let offset = if let Some(size) = size {190 self.offset += size;191 self.subresult_offset += size;192 0193 } else {194 self.uint32()? as usize195 };196197 if offset + self.subresult_offset > self.buf.len() {198 return Err(Error::Error(ExitError::InvalidRange));199 }200201 let new_offset = offset + subresult_offset;202 Ok(AbiReader {203 buf: self.buf,204 subresult_offset: new_offset,205 offset: new_offset,206 })207 }208209 /// Is this parser reached end of buffer?210 pub fn is_finished(&self) -> bool {211 self.buf.len() == self.offset212 }213}214215/// Writer for RLP encoded data216#[derive(Default)]217pub struct AbiWriter {218 static_part: Vec<u8>,219 dynamic_part: Vec<(usize, AbiWriter)>,220 had_call: bool,221}222impl AbiWriter {223 /// Initialize internal buffers for output data, assuming no padding required224 pub fn new() -> Self {225 Self::default()226 }227 /// Initialize internal buffers, inserting method selector at beginning228 pub fn new_call(method_id: u32) -> Self {229 let mut val = Self::new();230 val.static_part.extend(&method_id.to_be_bytes());231 val.had_call = true;232 val233 }234235 fn write_padleft(&mut self, block: &[u8]) {236 assert!(block.len() <= ABI_ALIGNMENT);237 self.static_part238 .extend(&[0; ABI_ALIGNMENT][0..ABI_ALIGNMENT - block.len()]);239 self.static_part.extend(block);240 }241242 fn write_padright(&mut self, bytes: &[u8]) {243 assert!(bytes.len() <= ABI_ALIGNMENT);244 self.static_part.extend(bytes);245 self.static_part246 .extend(&[0; ABI_ALIGNMENT][0..ABI_ALIGNMENT - bytes.len()]);247 }248249 /// Write [`H160`] to end of buffer250 pub fn address(&mut self, address: &H160) {251 self.write_padleft(&address.0)252 }253254 /// Write [`bool`] to end of buffer255 pub fn bool(&mut self, value: &bool) {256 self.write_padleft(&[if *value { 1 } else { 0 }])257 }258259 /// Write [`u8`] to end of buffer260 pub fn uint8(&mut self, value: &u8) {261 self.write_padleft(&[*value])262 }263264 /// Write [`u32`] to end of buffer265 pub fn uint32(&mut self, value: &u32) {266 self.write_padleft(&u32::to_be_bytes(*value))267 }268269 /// Write [`u128`] to end of buffer270 pub fn uint128(&mut self, value: &u128) {271 self.write_padleft(&u128::to_be_bytes(*value))272 }273274 /// Write [`U256`] to end of buffer275 pub fn uint256(&mut self, value: &U256) {276 let mut out = [0; 32];277 value.to_big_endian(&mut out);278 self.write_padleft(&out)279 }280281 /// Write [`usize`] to end of buffer282 #[deprecated = "dangerous, as usize may have different width in wasm and native execution"]283 pub fn write_usize(&mut self, value: &usize) {284 self.write_padleft(&usize::to_be_bytes(*value))285 }286287 /// Append recursive data, writing pending offset at end of buffer288 pub fn write_subresult(&mut self, result: Self) {289 self.dynamic_part.push((self.static_part.len(), result));290 // Empty block, to be filled later291 self.write_padleft(&[]);292 }293294 fn memory(&mut self, value: &[u8]) {295 let mut sub = Self::new();296 sub.uint32(&(value.len() as u32));297 for chunk in value.chunks(ABI_ALIGNMENT) {298 sub.write_padright(chunk);299 }300 self.write_subresult(sub);301 }302303 /// Append recursive [`str`] at end of buffer304 pub fn string(&mut self, value: &str) {305 self.memory(value.as_bytes())306 }307308 /// Append recursive [`[u8]`] at end of buffer309 pub fn bytes(&mut self, value: &[u8]) {310 self.memory(value)311 }312313 /// Finish writer, concatenating all internal buffers314 pub fn finish(mut self) -> Vec<u8> {315 for (static_offset, part) in self.dynamic_part {316 let part_offset = self.static_part.len() - if self.had_call { 4 } else { 0 };317318 let encoded_dynamic_offset = usize::to_be_bytes(part_offset);319 self.static_part[static_offset + ABI_ALIGNMENT - encoded_dynamic_offset.len()320 ..static_offset + ABI_ALIGNMENT]321 .copy_from_slice(&encoded_dynamic_offset);322 self.static_part.extend(part.finish())323 }324 self.static_part325 }326}327328/// [`AbiReader`] implements reading of many types, but it should329/// be limited to types defined in spec330///331/// As this trait can't be made sealed,332/// instead of having `impl AbiRead for T`, we have `impl AbiRead<T> for AbiReader`333pub trait AbiRead<T> {334 /// Read item from current position, advanding decoder335 fn abi_read(&mut self) -> Result<T>;336337 /// Size for type aligned to [`ABI_ALIGNMENT`].338 fn size() -> usize;339}340341macro_rules! impl_abi_readable {342 ($ty:ty, $method:ident, $dynamic:literal) => {343 impl TypeHelper for $ty {344 fn is_dynamic() -> bool {345 $dynamic346 }347 }348 impl AbiRead<$ty> for AbiReader<'_> {349 fn abi_read(&mut self) -> Result<$ty> {350 self.$method()351 }352353 fn size() -> usize {354 ABI_ALIGNMENT355 }356 }357 };358}359360impl_abi_readable!(u8, uint8, false);361impl_abi_readable!(u32, uint32, false);362impl_abi_readable!(u64, uint64, false);363impl_abi_readable!(u128, uint128, false);364impl_abi_readable!(U256, uint256, false);365impl_abi_readable!([u8; 4], bytes4, false);366impl_abi_readable!(H160, address, false);367impl_abi_readable!(Vec<u8>, bytes, true);368impl_abi_readable!(bool, bool, true);369impl_abi_readable!(string, string, true);370371mod sealed {372 /// Not all types can be placed in vec, i.e `Vec<u8>` is restricted, `bytes` should be used instead373 pub trait CanBePlacedInVec {}374}375376impl sealed::CanBePlacedInVec for U256 {}377impl sealed::CanBePlacedInVec for string {}378impl sealed::CanBePlacedInVec for H160 {}379380impl<R: sealed::CanBePlacedInVec> AbiRead<Vec<R>> for AbiReader<'_>381where382 Self: AbiRead<R>,383{384 fn abi_read(&mut self) -> Result<Vec<R>> {385 let mut sub = self.subresult(None)?;386 let size = sub.uint32()? as usize;387 sub.subresult_offset = sub.offset;388 let mut out = Vec::with_capacity(size);389 for _ in 0..size {390 out.push(<Self as AbiRead<R>>::abi_read(&mut sub)?);391 }392 Ok(out)393 }394395 fn size() -> usize {396 ABI_ALIGNMENT397 }398}399400macro_rules! impl_tuples {401 ($($ident:ident)+) => {402 impl<$($ident: TypeHelper,)+> TypeHelper for ($($ident,)+) {403 fn is_dynamic() -> bool {404 false405 $(406 || <$ident>::is_dynamic()407 )*408 }409 }410 impl<$($ident),+> sealed::CanBePlacedInVec for ($($ident,)+) {}411 impl<$($ident),+> AbiRead<($($ident,)+)> for AbiReader<'_>412 where413 $(414 Self: AbiRead<$ident>,415 )+416 ($($ident,)+): TypeHelper,417 {418 fn abi_read(&mut self) -> Result<($($ident,)+)> {419 let size = if !<($($ident,)+)>::is_dynamic() { Some(<Self as AbiRead<($($ident,)+)>>::size()) } else { None };420 let mut subresult = self.subresult(size)?;421 Ok((422 $(<Self as AbiRead<$ident>>::abi_read(&mut subresult)?,)+423 ))424 }425426 fn size() -> usize {427 0 $(+ <AbiReader<'_> as AbiRead<$ident>>::size())+428 }429 }430 #[allow(non_snake_case)]431 impl<$($ident),+> AbiWrite for &($($ident,)+)432 where433 $($ident: AbiWrite,)+434 {435 fn abi_write(&self, writer: &mut AbiWriter) {436 let ($($ident,)+) = self;437 $($ident.abi_write(writer);)+438 }439 }440 };441}442443impl_tuples! {A}444impl_tuples! {A B}445impl_tuples! {A B C}446impl_tuples! {A B C D}447impl_tuples! {A B C D E}448impl_tuples! {A B C D E F}449impl_tuples! {A B C D E F G}450impl_tuples! {A B C D E F G H}451impl_tuples! {A B C D E F G H I}452impl_tuples! {A B C D E F G H I J}453454/// For questions about inability to provide custom implementations,455/// see [`AbiRead`]456pub trait AbiWrite {457 /// Write value to end of specified encoder458 fn abi_write(&self, writer: &mut AbiWriter);459 /// Specialization for [`crate::solidity_interface`] implementation,460 /// see comment in `impl AbiWrite for ResultWithPostInfo`461 fn to_result(&self) -> ResultWithPostInfo<AbiWriter> {462 let mut writer = AbiWriter::new();463 self.abi_write(&mut writer);464 Ok(writer.into())465 }466}467468/// This particular AbiWrite implementation should be split to another trait,469/// which only implements `to_result`, but due to lack of specialization feature470/// in stable Rust, we can't have blanket impl of this trait `for T where T: AbiWrite`,471/// so here we abusing default trait methods for it472impl<T: AbiWrite> AbiWrite for ResultWithPostInfo<T> {473 fn abi_write(&self, _writer: &mut AbiWriter) {474 debug_assert!(false, "shouldn't be called, see comment")475 }476 fn to_result(&self) -> ResultWithPostInfo<AbiWriter> {477 match self {478 Ok(v) => Ok(WithPostDispatchInfo {479 post_info: v.post_info.clone(),480 data: {481 let mut out = AbiWriter::new();482 v.data.abi_write(&mut out);483 out484 },485 }),486 Err(e) => Err(e.clone()),487 }488 }489}490491macro_rules! impl_abi_writeable {492 ($ty:ty, $method:ident) => {493 impl AbiWrite for $ty {494 fn abi_write(&self, writer: &mut AbiWriter) {495 writer.$method(&self)496 }497 }498 };499}500501impl_abi_writeable!(u8, uint8);502impl_abi_writeable!(u32, uint32);503impl_abi_writeable!(u128, uint128);504impl_abi_writeable!(U256, uint256);505impl_abi_writeable!(H160, address);506impl_abi_writeable!(bool, bool);507impl_abi_writeable!(&str, string);508impl AbiWrite for &string {509 fn abi_write(&self, writer: &mut AbiWriter) {510 writer.string(self)511 }512}513impl AbiWrite for &Vec<u8> {514 fn abi_write(&self, writer: &mut AbiWriter) {515 writer.bytes(self)516 }517}518519impl AbiWrite for () {520 fn abi_write(&self, _writer: &mut AbiWriter) {}521}522523/// Helper macros to parse reader into variables524#[deprecated]525#[macro_export]526macro_rules! abi_decode {527 ($reader:expr, $($name:ident: $typ:ident),+ $(,)?) => {528 $(529 let $name = $reader.$typ()?;530 )+531 }532}533534/// Helper macros to construct RLP-encoded buffer535#[deprecated]536#[macro_export]537macro_rules! abi_encode {538 ($($typ:ident($value:expr)),* $(,)?) => {{539 #[allow(unused_mut)]540 let mut writer = ::evm_coder::abi::AbiWriter::new();541 $(542 writer.$typ($value);543 )*544 writer545 }};546 (call $val:expr; $($typ:ident($value:expr)),* $(,)?) => {{547 #[allow(unused_mut)]548 let mut writer = ::evm_coder::abi::AbiWriter::new_call($val);549 $(550 writer.$typ($value);551 )*552 writer553 }}554}555556#[cfg(test)]557pub mod test {558 use crate::{559 abi::AbiRead,560 types::{string, uint256},561 };562563 use super::{AbiReader, AbiWriter};564 use hex_literal::hex;565566 #[test]567 fn dynamic_after_static() {568 let mut encoder = AbiWriter::new();569 encoder.bool(&true);570 encoder.string("test");571 let encoded = encoder.finish();572573 let mut encoder = AbiWriter::new();574 encoder.bool(&true);575 // Offset to subresult576 encoder.uint32(&(32 * 2));577 // Len of "test"578 encoder.uint32(&4);579 encoder.write_padright(&[b't', b'e', b's', b't']);580 let alternative_encoded = encoder.finish();581582 assert_eq!(encoded, alternative_encoded);583584 let mut decoder = AbiReader::new(&encoded);585 assert!(decoder.bool().unwrap());586 assert_eq!(decoder.string().unwrap(), "test");587 }588589 #[test]590 fn mint_sample() {591 let (call, mut decoder) = AbiReader::new_call(&hex!(592 "593 50bb4e7f594 000000000000000000000000ad2c0954693c2b5404b7e50967d3481bea432374595 0000000000000000000000000000000000000000000000000000000000000001596 0000000000000000000000000000000000000000000000000000000000000060597 0000000000000000000000000000000000000000000000000000000000000008598 5465737420555249000000000000000000000000000000000000000000000000599 "600 ))601 .unwrap();602 assert_eq!(call, u32::to_be_bytes(0x50bb4e7f));603 assert_eq!(604 format!("{:?}", decoder.address().unwrap()),605 "0xad2c0954693c2b5404b7e50967d3481bea432374"606 );607 assert_eq!(decoder.uint32().unwrap(), 1);608 assert_eq!(decoder.string().unwrap(), "Test URI");609 }610611 #[test]612 fn mint_bulk() {613 let (call, mut decoder) = AbiReader::new_call(&hex!(614 "615 36543006616 00000000000000000000000053744e6da587ba10b32a2554d2efdcd985bc27a3 // address617 0000000000000000000000000000000000000000000000000000000000000040 // offset of (uint256, string)[]618 0000000000000000000000000000000000000000000000000000000000000003 // length of (uint256, string)[]619620 0000000000000000000000000000000000000000000000000000000000000060 // offset of first elem621 00000000000000000000000000000000000000000000000000000000000000e0 // offset of second elem622 0000000000000000000000000000000000000000000000000000000000000160 // offset of third elem623624 0000000000000000000000000000000000000000000000000000000000000001 // first token id? #60625 0000000000000000000000000000000000000000000000000000000000000040 // offset of string626 000000000000000000000000000000000000000000000000000000000000000a // size of string627 5465737420555249203000000000000000000000000000000000000000000000 // string628629 000000000000000000000000000000000000000000000000000000000000000b // second token id? Why ==11? #e0630 0000000000000000000000000000000000000000000000000000000000000040 // offset of string631 000000000000000000000000000000000000000000000000000000000000000a // size of string632 5465737420555249203100000000000000000000000000000000000000000000 // string633634 000000000000000000000000000000000000000000000000000000000000000c // third token id? Why ==12? #160635 0000000000000000000000000000000000000000000000000000000000000040 // offset of string636 000000000000000000000000000000000000000000000000000000000000000a // size of string637 5465737420555249203200000000000000000000000000000000000000000000 // string638 "639 ))640 .unwrap();641 assert_eq!(call, u32::to_be_bytes(0x36543006));642 let _ = decoder.address().unwrap();643 let data =644 <AbiReader<'_> as AbiRead<Vec<(uint256, string)>>>::abi_read(&mut decoder).unwrap();645 assert_eq!(646 data,647 vec![648 (1.into(), "Test URI 0".to_string()),649 (11.into(), "Test URI 1".to_string()),650 (12.into(), "Test URI 2".to_string())651 ]652 );653 }654655 #[test]656 fn parse_vec_with_simple_type() {657 use crate::types::address;658 use primitive_types::{H160, U256};659660 let (call, mut decoder) = AbiReader::new_call(&hex!(661 "662 1ACF2D55663 0000000000000000000000000000000000000000000000000000000000000020 // offset of (address, uint256)[]664 0000000000000000000000000000000000000000000000000000000000000003 // length of (address, uint256)[]665666 0000000000000000000000002D2FF76104B7BACB2E8F6731D5BFC184EBECDDBC // address667 000000000000000000000000000000000000000000000000000000000000000A // uint256668669 000000000000000000000000AB8E3D9134955566483B11E6825C9223B6737B10 // address670 0000000000000000000000000000000000000000000000000000000000000014 // uint256671672 0000000000000000000000008C582BDF2953046705FC56F189385255EFC1BE18 // address673 000000000000000000000000000000000000000000000000000000000000001E // uint256674 "675 ))676 .unwrap();677 assert_eq!(call, u32::to_be_bytes(0x1ACF2D55));678 let data =679 <AbiReader<'_> as AbiRead<Vec<(address, uint256)>>>::abi_read(&mut decoder).unwrap();680 assert_eq!(data.len(), 3);681 assert_eq!(682 data,683 vec![684 (685 H160(hex!("2D2FF76104B7BACB2E8F6731D5BFC184EBECDDBC")),686 U256([10, 0, 0, 0])687 ),688 (689 H160(hex!("AB8E3D9134955566483B11E6825C9223B6737B10")),690 U256([20, 0, 0, 0])691 ),692 (693 H160(hex!("8C582BDF2953046705FC56F189385255EFC1BE18")),694 U256([30, 0, 0, 0])695 ),696 ]697 );698 }699}1// Copyright 2019-2022 Unique Network (Gibraltar) Ltd.2// This file is part of Unique Network.34// Unique Network is free software: you can redistribute it and/or modify5// it under the terms of the GNU General Public License as published by6// the Free Software Foundation, either version 3 of the License, or7// (at your option) any later version.89// Unique Network is distributed in the hope that it will be useful,10// but WITHOUT ANY WARRANTY; without even the implied warranty of11// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the12// GNU General Public License for more details.1314// You should have received a copy of the GNU General Public License15// along with Unique Network. If not, see <http://www.gnu.org/licenses/>.1617//! Implementation of EVM RLP reader/writer1819#![allow(dead_code)]2021#[cfg(not(feature = "std"))]22use alloc::vec::Vec;23use evm_core::ExitError;24use primitive_types::{H160, U256};2526use crate::{27 execution::{Error, ResultWithPostInfo, WithPostDispatchInfo},28 types::{string, self},29};30use crate::execution::Result;3132const ABI_ALIGNMENT: usize = 32;3334trait TypeHelper {35 /// Is type dynamic sized.36 fn is_dynamic() -> bool;3738 /// Size for type aligned to [`ABI_ALIGNMENT`].39 fn size() -> usize;40}4142/// View into RLP data, which provides method to read typed items from it43#[derive(Clone)]44pub struct AbiReader<'i> {45 buf: &'i [u8],46 subresult_offset: usize,47 offset: usize,48}49impl<'i> AbiReader<'i> {50 /// Start reading RLP buffer, assuming there is no padding bytes51 pub fn new(buf: &'i [u8]) -> Self {52 Self {53 buf,54 subresult_offset: 0,55 offset: 0,56 }57 }58 /// Start reading RLP buffer, parsing first 4 bytes as selector59 pub fn new_call(buf: &'i [u8]) -> Result<(types::bytes4, Self)> {60 if buf.len() < 4 {61 return Err(Error::Error(ExitError::OutOfOffset));62 }63 let mut method_id = [0; 4];64 method_id.copy_from_slice(&buf[0..4]);6566 Ok((67 method_id,68 Self {69 buf,70 subresult_offset: 4,71 offset: 4,72 },73 ))74 }7576 fn read_pad<const S: usize>(77 buf: &[u8],78 offset: usize,79 pad_start: usize,80 pad_size: usize,81 block_start: usize,82 block_size: usize,83 ) -> Result<[u8; S]> {84 if buf.len() - offset < ABI_ALIGNMENT {85 return Err(Error::Error(ExitError::OutOfOffset));86 }87 let mut block = [0; S];88 let is_pad_zeroed = buf[pad_start..pad_size].iter().all(|&v| v == 0);89 if !is_pad_zeroed {90 return Err(Error::Error(ExitError::InvalidRange));91 }92 block.copy_from_slice(&buf[block_start..block_size]);93 Ok(block)94 }9596 fn read_padleft<const S: usize>(&mut self) -> Result<[u8; S]> {97 let offset = self.offset;98 self.offset += ABI_ALIGNMENT;99 Self::read_pad(100 self.buf,101 offset,102 offset,103 offset + ABI_ALIGNMENT - S,104 offset + ABI_ALIGNMENT - S,105 offset + ABI_ALIGNMENT,106 )107 }108109 fn read_padright<const S: usize>(&mut self) -> Result<[u8; S]> {110 let offset = self.offset;111 self.offset += ABI_ALIGNMENT;112 Self::read_pad(113 self.buf,114 offset,115 offset + S,116 offset + ABI_ALIGNMENT,117 offset,118 offset + S,119 )120 }121122 /// Read [`H160`] at current position, then advance123 pub fn address(&mut self) -> Result<H160> {124 Ok(H160(self.read_padleft()?))125 }126127 /// Read [`bool`] at current position, then advance128 pub fn bool(&mut self) -> Result<bool> {129 let data: [u8; 1] = self.read_padleft()?;130 match data[0] {131 0 => Ok(false),132 1 => Ok(true),133 _ => Err(Error::Error(ExitError::InvalidRange)),134 }135 }136137 /// Read [`[u8; 4]`] at current position, then advance138 pub fn bytes4(&mut self) -> Result<[u8; 4]> {139 self.read_padright()140 }141142 /// Read [`Vec<u8>`] at current position, then advance143 pub fn bytes(&mut self) -> Result<Vec<u8>> {144 let mut subresult = self.subresult(None)?;145 let length = subresult.uint32()? as usize;146 if subresult.buf.len() < subresult.offset + length {147 return Err(Error::Error(ExitError::OutOfOffset));148 }149 Ok(subresult.buf[subresult.offset..subresult.offset + length].into())150 }151152 /// Read [`string`] at current position, then advance153 pub fn string(&mut self) -> Result<string> {154 string::from_utf8(self.bytes()?).map_err(|_| Error::Error(ExitError::InvalidRange))155 }156157 /// Read [`u8`] at current position, then advance158 pub fn uint8(&mut self) -> Result<u8> {159 Ok(self.read_padleft::<1>()?[0])160 }161162 /// Read [`u32`] at current position, then advance163 pub fn uint32(&mut self) -> Result<u32> {164 Ok(u32::from_be_bytes(self.read_padleft()?))165 }166167 /// Read [`u128`] at current position, then advance168 pub fn uint128(&mut self) -> Result<u128> {169 Ok(u128::from_be_bytes(self.read_padleft()?))170 }171172 /// Read [`U256`] at current position, then advance173 pub fn uint256(&mut self) -> Result<U256> {174 let buf: [u8; 32] = self.read_padleft()?;175 Ok(U256::from_big_endian(&buf))176 }177178 /// Read [`u64`] at current position, then advance179 pub fn uint64(&mut self) -> Result<u64> {180 Ok(u64::from_be_bytes(self.read_padleft()?))181 }182183 /// Read [`usize`] at current position, then advance184 #[deprecated = "dangerous, as usize may have different width in wasm and native execution"]185 pub fn read_usize(&mut self) -> Result<usize> {186 Ok(usize::from_be_bytes(self.read_padleft()?))187 }188189 /// Slice recursive buffer, advance one word for buffer offset190 /// If `size` is [`None`] then [`Self::offset`] and [`Self::subresult_offset`] evals from [`Self::buf`].191 fn subresult(&mut self, size: Option<usize>) -> Result<AbiReader<'i>> {192 let subresult_offset = self.subresult_offset;193 let offset = if let Some(size) = size {194 self.offset += size;195 self.subresult_offset += size;196 0197 } else {198 self.uint32()? as usize199 };200201 if offset + self.subresult_offset > self.buf.len() {202 return Err(Error::Error(ExitError::InvalidRange));203 }204205 let new_offset = offset + subresult_offset;206 Ok(AbiReader {207 buf: self.buf,208 subresult_offset: new_offset,209 offset: new_offset,210 })211 }212213 /// Is this parser reached end of buffer?214 pub fn is_finished(&self) -> bool {215 self.buf.len() == self.offset216 }217}218219/// Writer for RLP encoded data220#[derive(Default)]221pub struct AbiWriter {222 static_part: Vec<u8>,223 dynamic_part: Vec<(usize, AbiWriter)>,224 had_call: bool,225}226impl AbiWriter {227 /// Initialize internal buffers for output data, assuming no padding required228 pub fn new() -> Self {229 Self::default()230 }231 /// Initialize internal buffers, inserting method selector at beginning232 pub fn new_call(method_id: u32) -> Self {233 let mut val = Self::new();234 val.static_part.extend(&method_id.to_be_bytes());235 val.had_call = true;236 val237 }238239 fn write_padleft(&mut self, block: &[u8]) {240 assert!(block.len() <= ABI_ALIGNMENT);241 self.static_part242 .extend(&[0; ABI_ALIGNMENT][0..ABI_ALIGNMENT - block.len()]);243 self.static_part.extend(block);244 }245246 fn write_padright(&mut self, bytes: &[u8]) {247 assert!(bytes.len() <= ABI_ALIGNMENT);248 self.static_part.extend(bytes);249 self.static_part250 .extend(&[0; ABI_ALIGNMENT][0..ABI_ALIGNMENT - bytes.len()]);251 }252253 /// Write [`H160`] to end of buffer254 pub fn address(&mut self, address: &H160) {255 self.write_padleft(&address.0)256 }257258 /// Write [`bool`] to end of buffer259 pub fn bool(&mut self, value: &bool) {260 self.write_padleft(&[if *value { 1 } else { 0 }])261 }262263 /// Write [`u8`] to end of buffer264 pub fn uint8(&mut self, value: &u8) {265 self.write_padleft(&[*value])266 }267268 /// Write [`u32`] to end of buffer269 pub fn uint32(&mut self, value: &u32) {270 self.write_padleft(&u32::to_be_bytes(*value))271 }272273 /// Write [`u128`] to end of buffer274 pub fn uint128(&mut self, value: &u128) {275 self.write_padleft(&u128::to_be_bytes(*value))276 }277278 /// Write [`U256`] to end of buffer279 pub fn uint256(&mut self, value: &U256) {280 let mut out = [0; 32];281 value.to_big_endian(&mut out);282 self.write_padleft(&out)283 }284285 /// Write [`usize`] to end of buffer286 #[deprecated = "dangerous, as usize may have different width in wasm and native execution"]287 pub fn write_usize(&mut self, value: &usize) {288 self.write_padleft(&usize::to_be_bytes(*value))289 }290291 /// Append recursive data, writing pending offset at end of buffer292 pub fn write_subresult(&mut self, result: Self) {293 self.dynamic_part.push((self.static_part.len(), result));294 // Empty block, to be filled later295 self.write_padleft(&[]);296 }297298 fn memory(&mut self, value: &[u8]) {299 let mut sub = Self::new();300 sub.uint32(&(value.len() as u32));301 for chunk in value.chunks(ABI_ALIGNMENT) {302 sub.write_padright(chunk);303 }304 self.write_subresult(sub);305 }306307 /// Append recursive [`str`] at end of buffer308 pub fn string(&mut self, value: &str) {309 self.memory(value.as_bytes())310 }311312 /// Append recursive [`[u8]`] at end of buffer313 pub fn bytes(&mut self, value: &[u8]) {314 self.memory(value)315 }316317 /// Finish writer, concatenating all internal buffers318 pub fn finish(mut self) -> Vec<u8> {319 for (static_offset, part) in self.dynamic_part {320 let part_offset = self.static_part.len() - if self.had_call { 4 } else { 0 };321322 let encoded_dynamic_offset = usize::to_be_bytes(part_offset);323 let start = static_offset + ABI_ALIGNMENT - encoded_dynamic_offset.len();324 let stop = static_offset + ABI_ALIGNMENT;325 self.static_part[start..stop].copy_from_slice(&encoded_dynamic_offset);326 self.static_part.extend(part.finish())327 }328 self.static_part329 }330}331332/// [`AbiReader`] implements reading of many types, but it should333/// be limited to types defined in spec334///335/// As this trait can't be made sealed,336/// instead of having `impl AbiRead for T`, we have `impl AbiRead<T> for AbiReader`337pub trait AbiRead<T> {338 /// Read item from current position, advanding decoder339 fn abi_read(&mut self) -> Result<T>;340}341342macro_rules! impl_abi_readable {343 ($ty:ty, $method:ident, $dynamic:literal) => {344 impl TypeHelper for $ty {345 fn is_dynamic() -> bool {346 $dynamic347 }348349 fn size() -> usize {350 ABI_ALIGNMENT351 }352 }353 impl AbiRead<$ty> for AbiReader<'_> {354 fn abi_read(&mut self) -> Result<$ty> {355 self.$method()356 }357 }358 };359}360361impl_abi_readable!(u8, uint8, false);362impl_abi_readable!(u32, uint32, false);363impl_abi_readable!(u64, uint64, false);364impl_abi_readable!(u128, uint128, false);365impl_abi_readable!(U256, uint256, false);366impl_abi_readable!([u8; 4], bytes4, false);367impl_abi_readable!(H160, address, false);368impl_abi_readable!(Vec<u8>, bytes, true);369impl_abi_readable!(bool, bool, true);370impl_abi_readable!(string, string, true);371372mod sealed {373 /// Not all types can be placed in vec, i.e `Vec<u8>` is restricted, `bytes` should be used instead374 pub trait CanBePlacedInVec {}375}376377impl sealed::CanBePlacedInVec for U256 {}378impl sealed::CanBePlacedInVec for string {}379impl sealed::CanBePlacedInVec for H160 {}380381impl<R: sealed::CanBePlacedInVec> AbiRead<Vec<R>> for AbiReader<'_>382where383 Self: AbiRead<R>,384{385 fn abi_read(&mut self) -> Result<Vec<R>> {386 let mut sub = self.subresult(None)?;387 let size = sub.uint32()? as usize;388 sub.subresult_offset = sub.offset;389 let mut out = Vec::with_capacity(size);390 for _ in 0..size {391 out.push(<Self as AbiRead<R>>::abi_read(&mut sub)?);392 }393 Ok(out)394 }395}396397macro_rules! impl_tuples {398 ($($ident:ident)+) => {399 impl<$($ident: TypeHelper,)+> TypeHelper for ($($ident,)+)400 where401 $(402 $ident: TypeHelper,403 )+404 {405 fn is_dynamic() -> bool {406 false407 $(408 || <$ident>::is_dynamic()409 )*410 }411412 fn size() -> usize {413 0 $(+ <$ident>::size())+414 }415 }416 impl<$($ident),+> sealed::CanBePlacedInVec for ($($ident,)+) {}417 impl<$($ident),+> AbiRead<($($ident,)+)> for AbiReader<'_>418 where419 $(420 Self: AbiRead<$ident>,421 )+422 ($($ident,)+): TypeHelper,423 {424 fn abi_read(&mut self) -> Result<($($ident,)+)> {425 let size = if !<($($ident,)+)>::is_dynamic() { Some(<($($ident,)+)>::size()) } else { None };426 let mut subresult = self.subresult(size)?;427 Ok((428 $(<Self as AbiRead<$ident>>::abi_read(&mut subresult)?,)+429 ))430 }431 }432 #[allow(non_snake_case)]433 impl<$($ident),+> AbiWrite for ($($ident,)+)434 where435 $($ident: AbiWrite,)+436 {437 fn abi_write(&self, writer: &mut AbiWriter) {438 let ($($ident,)+) = self;439 $($ident.abi_write(writer);)+440 }441 }442 };443}444445impl_tuples! {A}446impl_tuples! {A B}447impl_tuples! {A B C}448impl_tuples! {A B C D}449impl_tuples! {A B C D E}450impl_tuples! {A B C D E F}451impl_tuples! {A B C D E F G}452impl_tuples! {A B C D E F G H}453impl_tuples! {A B C D E F G H I}454impl_tuples! {A B C D E F G H I J}455456/// For questions about inability to provide custom implementations,457/// see [`AbiRead`]458pub trait AbiWrite {459 /// Write value to end of specified encoder460 fn abi_write(&self, writer: &mut AbiWriter);461 /// Specialization for [`crate::solidity_interface`] implementation,462 /// see comment in `impl AbiWrite for ResultWithPostInfo`463 fn to_result(&self) -> ResultWithPostInfo<AbiWriter> {464 let mut writer = AbiWriter::new();465 self.abi_write(&mut writer);466 Ok(writer.into())467 }468}469470/// This particular AbiWrite implementation should be split to another trait,471/// which only implements `to_result`, but due to lack of specialization feature472/// in stable Rust, we can't have blanket impl of this trait `for T where T: AbiWrite`,473/// so here we abusing default trait methods for it474impl<T: AbiWrite> AbiWrite for ResultWithPostInfo<T> {475 fn abi_write(&self, _writer: &mut AbiWriter) {476 debug_assert!(false, "shouldn't be called, see comment")477 }478 fn to_result(&self) -> ResultWithPostInfo<AbiWriter> {479 match self {480 Ok(v) => Ok(WithPostDispatchInfo {481 post_info: v.post_info.clone(),482 data: {483 let mut out = AbiWriter::new();484 v.data.abi_write(&mut out);485 out486 },487 }),488 Err(e) => Err(e.clone()),489 }490 }491}492493macro_rules! impl_abi_writeable {494 ($ty:ty, $method:ident) => {495 impl AbiWrite for $ty {496 fn abi_write(&self, writer: &mut AbiWriter) {497 writer.$method(&self)498 }499 }500 };501}502503impl_abi_writeable!(u8, uint8);504impl_abi_writeable!(u32, uint32);505impl_abi_writeable!(u128, uint128);506impl_abi_writeable!(U256, uint256);507impl_abi_writeable!(H160, address);508impl_abi_writeable!(bool, bool);509impl_abi_writeable!(&str, string);510impl AbiWrite for string {511 fn abi_write(&self, writer: &mut AbiWriter) {512 writer.string(self)513 }514}515// impl AbiWrite for Vec<u8> {516// fn abi_write(&self, writer: &mut AbiWriter) {517// writer.bytes(self)518// }519// }520521impl<T: AbiWrite> AbiWrite for Vec<T> {522 fn abi_write(&self, writer: &mut AbiWriter) {523 let mut sub = AbiWriter::new();524 (self.len() as u32).abi_write(&mut sub);525 for item in self {526 item.abi_write(&mut sub);527 }528 writer.write_subresult(sub);529 }530}531532impl AbiWrite for () {533 fn abi_write(&self, _writer: &mut AbiWriter) {}534}535536/// Helper macros to parse reader into variables537#[deprecated]538#[macro_export]539macro_rules! abi_decode {540 ($reader:expr, $($name:ident: $typ:ident),+ $(,)?) => {541 $(542 let $name = $reader.$typ()?;543 )+544 }545}546547/// Helper macros to construct RLP-encoded buffer548#[deprecated]549#[macro_export]550macro_rules! abi_encode {551 ($($typ:ident($value:expr)),* $(,)?) => {{552 #[allow(unused_mut)]553 let mut writer = ::evm_coder::abi::AbiWriter::new();554 $(555 writer.$typ($value);556 )*557 writer558 }};559 (call $val:expr; $($typ:ident($value:expr)),* $(,)?) => {{560 #[allow(unused_mut)]561 let mut writer = ::evm_coder::abi::AbiWriter::new_call($val);562 $(563 writer.$typ($value);564 )*565 writer566 }}567}568569#[cfg(test)]570pub mod test {571 use crate::{572 abi::{AbiRead, AbiWrite},573 types::{string, uint256, address},574 };575576 use super::{AbiReader, AbiWriter};577 use hex_literal::hex;578 use primitive_types::{H160, U256};579580 #[test]581 fn dynamic_after_static() {582 let mut encoder = AbiWriter::new();583 encoder.bool(&true);584 encoder.string("test");585 let encoded = encoder.finish();586587 let mut encoder = AbiWriter::new();588 encoder.bool(&true);589 // Offset to subresult590 encoder.uint32(&(32 * 2));591 // Len of "test"592 encoder.uint32(&4);593 encoder.write_padright(&[b't', b'e', b's', b't']);594 let alternative_encoded = encoder.finish();595596 assert_eq!(encoded, alternative_encoded);597598 let mut decoder = AbiReader::new(&encoded);599 assert!(decoder.bool().unwrap());600 assert_eq!(decoder.string().unwrap(), "test");601 }602603 #[test]604 fn mint_sample() {605 let (call, mut decoder) = AbiReader::new_call(&hex!(606 "607 50bb4e7f608 000000000000000000000000ad2c0954693c2b5404b7e50967d3481bea432374609 0000000000000000000000000000000000000000000000000000000000000001610 0000000000000000000000000000000000000000000000000000000000000060611 0000000000000000000000000000000000000000000000000000000000000008612 5465737420555249000000000000000000000000000000000000000000000000613 "614 ))615 .unwrap();616 assert_eq!(call, u32::to_be_bytes(0x50bb4e7f));617 assert_eq!(618 format!("{:?}", decoder.address().unwrap()),619 "0xad2c0954693c2b5404b7e50967d3481bea432374"620 );621 assert_eq!(decoder.uint32().unwrap(), 1);622 assert_eq!(decoder.string().unwrap(), "Test URI");623 }624625 #[test]626 fn parse_vec_with_dynamic_type() {627 let decoded_data = (628 0x36543006,629 vec![630 (1.into(), "Test URI 0".to_string()),631 (11.into(), "Test URI 1".to_string()),632 (12.into(), "Test URI 2".to_string()),633 ],634 );635636 let encoded_data = &hex!(637 "638 36543006639 00000000000000000000000053744e6da587ba10b32a2554d2efdcd985bc27a3 // address640 0000000000000000000000000000000000000000000000000000000000000040 // offset of (uint256, string)[]641 0000000000000000000000000000000000000000000000000000000000000003 // length of (uint256, string)[]642643 0000000000000000000000000000000000000000000000000000000000000060 // offset of first elem644 00000000000000000000000000000000000000000000000000000000000000e0 // offset of second elem645 0000000000000000000000000000000000000000000000000000000000000160 // offset of third elem646647 0000000000000000000000000000000000000000000000000000000000000001 // first token id? #60648 0000000000000000000000000000000000000000000000000000000000000040 // offset of string649 000000000000000000000000000000000000000000000000000000000000000a // size of string650 5465737420555249203000000000000000000000000000000000000000000000 // string651652 000000000000000000000000000000000000000000000000000000000000000b // second token id? Why ==11? #e0653 0000000000000000000000000000000000000000000000000000000000000040 // offset of string654 000000000000000000000000000000000000000000000000000000000000000a // size of string655 5465737420555249203100000000000000000000000000000000000000000000 // string656657 000000000000000000000000000000000000000000000000000000000000000c // third token id? Why ==12? #160658 0000000000000000000000000000000000000000000000000000000000000040 // offset of string659 000000000000000000000000000000000000000000000000000000000000000a // size of string660 5465737420555249203200000000000000000000000000000000000000000000 // string661 "662 );663664 let (call, mut decoder) = AbiReader::new_call(encoded_data).unwrap();665 assert_eq!(call, u32::to_be_bytes(decoded_data.0));666 let _ = decoder.address().unwrap();667 let data =668 <AbiReader<'_> as AbiRead<Vec<(uint256, string)>>>::abi_read(&mut decoder).unwrap();669 assert_eq!(data, decoded_data.1);670671 let mut writer = AbiWriter::new_call(decoded_data.0);672 decoded_data.1.abi_write(&mut writer);673 let ed = writer.finish();674 assert_eq!(encoded_data, ed.as_slice());675 }676677 #[test]678 fn parse_vec_with_simple_type() {679 let decoded_data = (680 0x1ACF2D55,681 vec![682 (683 H160(hex!("2D2FF76104B7BACB2E8F6731D5BFC184EBECDDBC")),684 U256([10, 0, 0, 0]),685 ),686 (687 H160(hex!("AB8E3D9134955566483B11E6825C9223B6737B10")),688 U256([20, 0, 0, 0]),689 ),690 (691 H160(hex!("8C582BDF2953046705FC56F189385255EFC1BE18")),692 U256([30, 0, 0, 0]),693 ),694 ],695 );696697 let encoded_data = &hex!(698 "699 1ACF2D55700 0000000000000000000000000000000000000000000000000000000000000020 // offset of (address, uint256)[]701 0000000000000000000000000000000000000000000000000000000000000003 // length of (address, uint256)[]702703 0000000000000000000000002D2FF76104B7BACB2E8F6731D5BFC184EBECDDBC // address704 000000000000000000000000000000000000000000000000000000000000000A // uint256705706 000000000000000000000000AB8E3D9134955566483B11E6825C9223B6737B10 // address707 0000000000000000000000000000000000000000000000000000000000000014 // uint256708709 0000000000000000000000008C582BDF2953046705FC56F189385255EFC1BE18 // address710 000000000000000000000000000000000000000000000000000000000000001E // uint256711 "712 );713714 let (call, mut decoder) = AbiReader::new_call(encoded_data).unwrap();715 assert_eq!(call, u32::to_be_bytes(decoded_data.0));716 let data =717 <AbiReader<'_> as AbiRead<Vec<(address, uint256)>>>::abi_read(&mut decoder).unwrap();718 assert_eq!(data.len(), 3);719 assert_eq!(data, decoded_data.1);720721 let mut writer = AbiWriter::new_call(decoded_data.0);722 decoded_data.1.abi_write(&mut writer);723 let ed = writer.finish();724 assert_eq!(encoded_data, ed.as_slice());725 }726}