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lib.rs
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// SPDX-License-Identifier: Apache-2.0
// This file is part of Frontier.
//
// Copyright (c) 2020-2022 Parity Technologies (UK) Ltd.
//
// Licensed under the Apache License, Version 2.0 (the "License");
// you may not use this file except in compliance with the License.
// You may obtain a copy of the License at
//
// http://www.apache.org/licenses/LICENSE-2.0
//
// Unless required by applicable law or agreed to in writing, software
// distributed under the License is distributed on an "AS IS" BASIS,
// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
// See the License for the specific language governing permissions and
// limitations under the License.
//! # EVM Pallet
//!
//! The EVM pallet allows unmodified EVM code to be executed in a Substrate-based blockchain.
//! - [`evm::Config`]
//!
//! ## EVM Engine
//!
//! The EVM pallet uses [`SputnikVM`](https://github.com/rust-blockchain/evm) as the underlying EVM engine.
//! The engine is overhauled so that it's [`modular`](https://github.com/corepaper/evm).
//!
//! ## Execution Lifecycle
//!
//! There are a separate set of accounts managed by the EVM pallet. Substrate based accounts can call the EVM Pallet
//! to deposit or withdraw balance from the Substrate base-currency into a different balance managed and used by
//! the EVM pallet. Once a user has populated their balance, they can create and call smart contracts using this pallet.
//!
//! There's one-to-one mapping from Substrate accounts and EVM external accounts that is defined by a conversion function.
//!
//! ## EVM Pallet vs Ethereum Network
//!
//! The EVM pallet should be able to produce nearly identical results compared to the Ethereum mainnet,
//! including gas cost and balance changes.
//!
//! Observable differences include:
//!
//! - The available length of block hashes may not be 256 depending on the configuration of the System pallet
//! in the Substrate runtime.
//! - Difficulty and coinbase, which do not make sense in this pallet and is currently hard coded to zero.
//!
//! We currently do not aim to make unobservable behaviors, such as state root, to be the same. We also don't aim to follow
//! the exact same transaction / receipt format. However, given one Ethereum transaction and one Substrate account's
//! private key, one should be able to convert any Ethereum transaction into a transaction compatible with this pallet.
//!
//! The gas configurations are configurable. Right now, a pre-defined London hard fork configuration option is provided.
// Ensure we're `no_std` when compiling for Wasm.
#![cfg_attr(not(feature = "std"), no_std)]
#![allow(clippy::too_many_arguments)]
#![cfg_attr(test, feature(assert_matches))]
#[cfg(feature = "runtime-benchmarks")]
pub mod benchmarking;
#[cfg(test)]
mod mock;
pub mod runner;
#[cfg(test)]
mod tests;
use frame_support::{
dispatch::{DispatchResultWithPostInfo, Pays, PostDispatchInfo},
traits::{
tokens::fungible::Inspect, Currency, ExistenceRequirement, FindAuthor, Get, Imbalance,
OnUnbalanced, SignedImbalance, WithdrawReasons,
},
weights::Weight,
};
use frame_system::RawOrigin;
use impl_trait_for_tuples::impl_for_tuples;
use sp_core::{Hasher, H160, H256, U256};
use sp_runtime::{
traits::{BadOrigin, Saturating, UniqueSaturatedInto, Zero},
AccountId32, DispatchErrorWithPostInfo,
};
use sp_std::{cmp::min, vec::Vec};
pub use evm::{
Config as EvmConfig, Context, ExitError, ExitFatal, ExitReason, ExitRevert, ExitSucceed,
};
#[cfg(feature = "std")]
use fp_evm::GenesisAccount;
pub use fp_evm::{
Account, CallInfo, CreateInfo, ExecutionInfo, FeeCalculator, InvalidEvmTransactionError,
LinearCostPrecompile, Log, Precompile, PrecompileFailure, PrecompileHandle, PrecompileOutput,
PrecompileResult, PrecompileSet, Vicinity,
};
pub use self::{
pallet::*,
runner::{Runner, RunnerError},
};
#[frame_support::pallet]
pub mod pallet {
use super::*;
use frame_support::pallet_prelude::*;
use frame_system::pallet_prelude::*;
#[pallet::pallet]
#[pallet::generate_store(pub(super) trait Store)]
#[pallet::without_storage_info]
pub struct Pallet<T>(PhantomData<T>);
#[pallet::config]
pub trait Config: frame_system::Config + pallet_timestamp::Config {
/// Calculator for current gas price.
type FeeCalculator: FeeCalculator;
/// Maps Ethereum gas to Substrate weight.
type GasWeightMapping: GasWeightMapping;
/// Weight corresponding to a gas unit.
type WeightPerGas: Get<Weight>;
/// Block number to block hash.
type BlockHashMapping: BlockHashMapping;
/// Allow the origin to call on behalf of given address.
type CallOrigin: EnsureAddressOrigin<Self::RuntimeOrigin>;
/// Allow the origin to withdraw on behalf of given address.
type WithdrawOrigin: EnsureAddressOrigin<Self::RuntimeOrigin, Success = Self::AccountId>;
/// Mapping from address to account id.
type AddressMapping: AddressMapping<Self::AccountId>;
/// Currency type for withdraw and balance storage.
type Currency: Currency<Self::AccountId> + Inspect<Self::AccountId>;
/// The overarching event type.
type RuntimeEvent: From<Event<Self>> + IsType<<Self as frame_system::Config>::RuntimeEvent>;
/// Precompiles associated with this EVM engine.
type PrecompilesType: PrecompileSet;
type PrecompilesValue: Get<Self::PrecompilesType>;
/// Chain ID of EVM.
type ChainId: Get<u64>;
/// The block gas limit. Can be a simple constant, or an adjustment algorithm in another pallet.
type BlockGasLimit: Get<U256>;
/// EVM execution runner.
type Runner: Runner<Self>;
/// To handle fee deduction for EVM transactions. An example is this pallet being used by `pallet_ethereum`
/// where the chain implementing `pallet_ethereum` should be able to configure what happens to the fees
/// Similar to `OnChargeTransaction` of `pallet_transaction_payment`
type OnChargeTransaction: OnChargeEVMTransaction<Self>;
/// Called on create calls, used to record owner
type OnCreate: OnCreate<Self>;
/// Find author for the current block.
type FindAuthor: FindAuthor<H160>;
/// EVM config used in the module.
fn config() -> &'static EvmConfig {
&LONDON_CONFIG
}
}
#[pallet::call]
impl<T: Config> Pallet<T> {
/// Withdraw balance from EVM into currency/balances pallet.
#[pallet::call_index(0)]
#[pallet::weight(0)]
pub fn withdraw(
origin: OriginFor<T>,
address: H160,
value: BalanceOf<T>,
) -> DispatchResult {
let destination = T::WithdrawOrigin::ensure_address_origin(&address, origin)?;
let address_account_id = T::AddressMapping::into_account_id(address);
T::Currency::transfer(
&address_account_id,
&destination,
value,
ExistenceRequirement::AllowDeath,
)?;
Ok(())
}
/// Issue an EVM call operation. This is similar to a message call transaction in Ethereum.
#[pallet::call_index(1)]
#[pallet::weight({
let without_base_extrinsic_weight = true;
T::GasWeightMapping::gas_to_weight(*gas_limit, without_base_extrinsic_weight)
})]
pub fn call(
origin: OriginFor<T>,
source: H160,
target: H160,
input: Vec<u8>,
value: U256,
gas_limit: u64,
max_fee_per_gas: U256,
max_priority_fee_per_gas: Option<U256>,
nonce: Option<U256>,
access_list: Vec<(H160, Vec<H256>)>,
) -> DispatchResultWithPostInfo {
T::CallOrigin::ensure_address_origin(&source, origin)?;
let is_transactional = true;
let validate = true;
let info = match T::Runner::call(
source,
target,
input,
value,
gas_limit,
Some(max_fee_per_gas),
max_priority_fee_per_gas,
nonce,
access_list,
is_transactional,
validate,
T::config(),
) {
Ok(info) => info,
Err(e) => {
return Err(DispatchErrorWithPostInfo {
post_info: PostDispatchInfo {
actual_weight: Some(e.weight),
pays_fee: Pays::Yes,
},
error: e.error.into(),
})
}
};
match info.exit_reason {
ExitReason::Succeed(_) => {
Pallet::<T>::deposit_event(Event::<T>::Executed { address: target });
}
_ => {
Pallet::<T>::deposit_event(Event::<T>::ExecutedFailed { address: target });
}
};
Ok(PostDispatchInfo {
actual_weight: Some(T::GasWeightMapping::gas_to_weight(
info.used_gas.unique_saturated_into(),
true,
)),
pays_fee: Pays::No,
})
}
/// Issue an EVM create operation. This is similar to a contract creation transaction in
/// Ethereum.
#[pallet::call_index(2)]
#[pallet::weight({
let without_base_extrinsic_weight = true;
T::GasWeightMapping::gas_to_weight(*gas_limit, without_base_extrinsic_weight)
})]
pub fn create(
origin: OriginFor<T>,
source: H160,
init: Vec<u8>,
value: U256,
gas_limit: u64,
max_fee_per_gas: U256,
max_priority_fee_per_gas: Option<U256>,
nonce: Option<U256>,
access_list: Vec<(H160, Vec<H256>)>,
) -> DispatchResultWithPostInfo {
T::CallOrigin::ensure_address_origin(&source, origin)?;
let is_transactional = true;
let validate = true;
let info = match T::Runner::create(
source,
init,
value,
gas_limit,
Some(max_fee_per_gas),
max_priority_fee_per_gas,
nonce,
access_list,
is_transactional,
validate,
T::config(),
) {
Ok(info) => info,
Err(e) => {
return Err(DispatchErrorWithPostInfo {
post_info: PostDispatchInfo {
actual_weight: Some(e.weight),
pays_fee: Pays::Yes,
},
error: e.error.into(),
})
}
};
match info {
CreateInfo {
exit_reason: ExitReason::Succeed(_),
value: create_address,
..
} => {
Pallet::<T>::deposit_event(Event::<T>::Created {
address: create_address,
});
}
CreateInfo {
exit_reason: _,
value: create_address,
..
} => {
Pallet::<T>::deposit_event(Event::<T>::CreatedFailed {
address: create_address,
});
}
}
Ok(PostDispatchInfo {
actual_weight: Some(T::GasWeightMapping::gas_to_weight(
info.used_gas.unique_saturated_into(),
true,
)),
pays_fee: Pays::No,
})
}
/// Issue an EVM create2 operation.
#[pallet::call_index(3)]
#[pallet::weight({
let without_base_extrinsic_weight = true;
T::GasWeightMapping::gas_to_weight(*gas_limit, without_base_extrinsic_weight)
})]
pub fn create2(
origin: OriginFor<T>,
source: H160,
init: Vec<u8>,
salt: H256,
value: U256,
gas_limit: u64,
max_fee_per_gas: U256,
max_priority_fee_per_gas: Option<U256>,
nonce: Option<U256>,
access_list: Vec<(H160, Vec<H256>)>,
) -> DispatchResultWithPostInfo {
T::CallOrigin::ensure_address_origin(&source, origin)?;
let is_transactional = true;
let validate = true;
let info = match T::Runner::create2(
source,
init,
salt,
value,
gas_limit,
Some(max_fee_per_gas),
max_priority_fee_per_gas,
nonce,
access_list,
is_transactional,
validate,
T::config(),
) {
Ok(info) => info,
Err(e) => {
return Err(DispatchErrorWithPostInfo {
post_info: PostDispatchInfo {
actual_weight: Some(e.weight),
pays_fee: Pays::Yes,
},
error: e.error.into(),
})
}
};
match info {
CreateInfo {
exit_reason: ExitReason::Succeed(_),
value: create_address,
..
} => {
Pallet::<T>::deposit_event(Event::<T>::Created {
address: create_address,
});
}
CreateInfo {
exit_reason: _,
value: create_address,
..
} => {
Pallet::<T>::deposit_event(Event::<T>::CreatedFailed {
address: create_address,
});
}
}
Ok(PostDispatchInfo {
actual_weight: Some(T::GasWeightMapping::gas_to_weight(
info.used_gas.unique_saturated_into(),
true,
)),
pays_fee: Pays::No,
})
}
}
#[pallet::event]
#[pallet::generate_deposit(pub(super) fn deposit_event)]
pub enum Event<T: Config> {
/// Ethereum events from contracts.
Log { log: Log },
/// A contract has been created at given address.
Created { address: H160 },
/// A contract was attempted to be created, but the execution failed.
CreatedFailed { address: H160 },
/// A contract has been executed successfully with states applied.
Executed { address: H160 },
/// A contract has been executed with errors. States are reverted with only gas fees applied.
ExecutedFailed { address: H160 },
}
#[pallet::error]
pub enum Error<T> {
/// Not enough balance to perform action
BalanceLow,
/// Calculating total fee overflowed
FeeOverflow,
/// Calculating total payment overflowed
PaymentOverflow,
/// Withdraw fee failed
WithdrawFailed,
/// Gas price is too low.
GasPriceTooLow,
/// Nonce is invalid
InvalidNonce,
/// Gas limit is too low.
GasLimitTooLow,
/// Gas limit is too high.
GasLimitTooHigh,
/// Undefined error.
Undefined,
/// EVM reentrancy
Reentrancy,
/// EIP-3607,
TransactionMustComeFromEOA,
}
impl<T> From<InvalidEvmTransactionError> for Error<T> {
fn from(validation_error: InvalidEvmTransactionError) -> Self {
match validation_error {
InvalidEvmTransactionError::GasLimitTooLow => Error::<T>::GasLimitTooLow,
InvalidEvmTransactionError::GasLimitTooHigh => Error::<T>::GasLimitTooHigh,
InvalidEvmTransactionError::GasPriceTooLow => Error::<T>::GasPriceTooLow,
InvalidEvmTransactionError::PriorityFeeTooHigh => Error::<T>::GasPriceTooLow,
InvalidEvmTransactionError::BalanceTooLow => Error::<T>::BalanceLow,
InvalidEvmTransactionError::TxNonceTooLow => Error::<T>::InvalidNonce,
InvalidEvmTransactionError::TxNonceTooHigh => Error::<T>::InvalidNonce,
InvalidEvmTransactionError::InvalidPaymentInput => Error::<T>::GasPriceTooLow,
_ => Error::<T>::Undefined,
}
}
}
#[pallet::genesis_config]
#[cfg_attr(feature = "std", derive(Default))]
pub struct GenesisConfig {
pub accounts: std::collections::BTreeMap<H160, GenesisAccount>,
}
#[pallet::genesis_build]
impl<T: Config> GenesisBuild<T> for GenesisConfig
where
U256: UniqueSaturatedInto<BalanceOf<T>>,
{
fn build(&self) {
const MAX_ACCOUNT_NONCE: usize = 100;
for (address, account) in &self.accounts {
let account_id = T::AddressMapping::into_account_id(*address);
// ASSUME: in one single EVM transaction, the nonce will not increase more than
// `u128::max_value()`.
for _ in 0..min(
MAX_ACCOUNT_NONCE,
UniqueSaturatedInto::<usize>::unique_saturated_into(account.nonce),
) {
frame_system::Pallet::<T>::inc_account_nonce(&account_id);
}
T::Currency::deposit_creating(&account_id, account.balance.unique_saturated_into());
Pallet::<T>::create_account(*address, account.code.clone());
for (index, value) in &account.storage {
<AccountStorages<T>>::insert(address, index, value);
}
}
}
}
#[pallet::storage]
#[pallet::getter(fn account_codes)]
pub type AccountCodes<T: Config> = StorageMap<_, Blake2_128Concat, H160, Vec<u8>, ValueQuery>;
#[pallet::storage]
#[pallet::getter(fn account_storages)]
pub type AccountStorages<T: Config> =
StorageDoubleMap<_, Blake2_128Concat, H160, Blake2_128Concat, H256, H256, ValueQuery>;
}
/// Type alias for currency balance.
pub type BalanceOf<T> =
<<T as Config>::Currency as Currency<<T as frame_system::Config>::AccountId>>::Balance;
/// Type alias for negative imbalance during fees
type NegativeImbalanceOf<C, T> =
<C as Currency<<T as frame_system::Config>::AccountId>>::NegativeImbalance;
pub trait EnsureAddressOrigin<OuterOrigin> {
/// Success return type.
type Success;
/// Perform the origin check.
fn ensure_address_origin(
address: &H160,
origin: OuterOrigin,
) -> Result<Self::Success, BadOrigin> {
Self::try_address_origin(address, origin).map_err(|_| BadOrigin)
}
/// Try with origin.
fn try_address_origin(
address: &H160,
origin: OuterOrigin,
) -> Result<Self::Success, OuterOrigin>;
}
/// Ensure that the EVM address is the same as the Substrate address. This only works if the account
/// ID is `H160`.
pub struct EnsureAddressSame;
impl<OuterOrigin> EnsureAddressOrigin<OuterOrigin> for EnsureAddressSame
where
OuterOrigin: Into<Result<RawOrigin<H160>, OuterOrigin>> + From<RawOrigin<H160>>,
{
type Success = H160;
fn try_address_origin(address: &H160, origin: OuterOrigin) -> Result<H160, OuterOrigin> {
origin.into().and_then(|o| match o {
RawOrigin::Signed(who) if &who == address => Ok(who),
r => Err(OuterOrigin::from(r)),
})
}
}
/// Ensure that the origin is root.
pub struct EnsureAddressRoot<AccountId>(sp_std::marker::PhantomData<AccountId>);
impl<OuterOrigin, AccountId> EnsureAddressOrigin<OuterOrigin> for EnsureAddressRoot<AccountId>
where
OuterOrigin: Into<Result<RawOrigin<AccountId>, OuterOrigin>> + From<RawOrigin<AccountId>>,
{
type Success = ();
fn try_address_origin(_address: &H160, origin: OuterOrigin) -> Result<(), OuterOrigin> {
origin.into().and_then(|o| match o {
RawOrigin::Root => Ok(()),
r => Err(OuterOrigin::from(r)),
})
}
}
/// Ensure that the origin never happens.
pub struct EnsureAddressNever<AccountId>(sp_std::marker::PhantomData<AccountId>);
impl<OuterOrigin, AccountId> EnsureAddressOrigin<OuterOrigin> for EnsureAddressNever<AccountId> {
type Success = AccountId;
fn try_address_origin(_address: &H160, origin: OuterOrigin) -> Result<AccountId, OuterOrigin> {
Err(origin)
}
}
/// Ensure that the address is truncated hash of the origin. Only works if the account id is
/// `AccountId32`.
pub struct EnsureAddressTruncated;
impl<OuterOrigin> EnsureAddressOrigin<OuterOrigin> for EnsureAddressTruncated
where
OuterOrigin: Into<Result<RawOrigin<AccountId32>, OuterOrigin>> + From<RawOrigin<AccountId32>>,
{
type Success = AccountId32;
fn try_address_origin(address: &H160, origin: OuterOrigin) -> Result<AccountId32, OuterOrigin> {
origin.into().and_then(|o| match o {
RawOrigin::Signed(who) if AsRef::<[u8; 32]>::as_ref(&who)[0..20] == address[0..20] => {
Ok(who)
}
r => Err(OuterOrigin::from(r)),
})
}
}
pub trait AddressMapping<A> {
fn into_account_id(address: H160) -> A;
}
/// Identity address mapping.
pub struct IdentityAddressMapping;
impl AddressMapping<H160> for IdentityAddressMapping {
fn into_account_id(address: H160) -> H160 {
address
}
}
/// Hashed address mapping.
pub struct HashedAddressMapping<H>(sp_std::marker::PhantomData<H>);
impl<H: Hasher<Out = H256>> AddressMapping<AccountId32> for HashedAddressMapping<H> {
fn into_account_id(address: H160) -> AccountId32 {
let mut data = [0u8; 24];
data[0..4].copy_from_slice(b"evm:");
data[4..24].copy_from_slice(&address[..]);
let hash = H::hash(&data);
AccountId32::from(Into::<[u8; 32]>::into(hash))
}
}
/// A trait for getting a block hash by number.
pub trait BlockHashMapping {
fn block_hash(number: u32) -> H256;
}
/// Returns the Substrate block hash by number.
pub struct SubstrateBlockHashMapping<T>(sp_std::marker::PhantomData<T>);
impl<T: Config> BlockHashMapping for SubstrateBlockHashMapping<T> {
fn block_hash(number: u32) -> H256 {
let number = T::BlockNumber::from(number);
H256::from_slice(frame_system::Pallet::<T>::block_hash(number).as_ref())
}
}
/// A mapping function that converts Ethereum gas to Substrate weight
pub trait GasWeightMapping {
fn gas_to_weight(gas: u64, without_base_weight: bool) -> Weight;
fn weight_to_gas(weight: Weight) -> u64;
}
pub struct FixedGasWeightMapping<T>(sp_std::marker::PhantomData<T>);
impl<T: Config> GasWeightMapping for FixedGasWeightMapping<T> {
fn gas_to_weight(gas: u64, without_base_weight: bool) -> Weight {
let mut weight = T::WeightPerGas::get().saturating_mul(gas);
if without_base_weight {
weight = weight.saturating_sub(
T::BlockWeights::get()
.get(frame_support::dispatch::DispatchClass::Normal)
.base_extrinsic,
);
}
weight
}
fn weight_to_gas(weight: Weight) -> u64 {
weight.div(T::WeightPerGas::get().ref_time()).ref_time()
}
}
static LONDON_CONFIG: EvmConfig = EvmConfig::london();
impl<T: Config> Pallet<T> {
/// Check whether an account is empty.
pub fn is_account_empty(address: &H160) -> bool {
let (account, _) = Self::account_basic(address);
let code_len = <AccountCodes<T>>::decode_len(address).unwrap_or(0);
account.nonce == U256::zero() && account.balance == U256::zero() && code_len == 0
}
/// Remove an account if its empty.
pub fn remove_account_if_empty(address: &H160) {
if Self::is_account_empty(address) {
Self::remove_account(address);
}
}
/// Remove an account.
pub fn remove_account(address: &H160) {
if <AccountCodes<T>>::contains_key(address) {
let account_id = T::AddressMapping::into_account_id(*address);
let _ = frame_system::Pallet::<T>::dec_sufficients(&account_id);
}
<AccountCodes<T>>::remove(address);
#[allow(deprecated)]
let _ = <AccountStorages<T>>::remove_prefix(address, None);
}
/// Create an account.
pub fn create_account(address: H160, code: Vec<u8>) {
if code.is_empty() {
return;
}
if !<AccountCodes<T>>::contains_key(address) {
let account_id = T::AddressMapping::into_account_id(address);
let _ = frame_system::Pallet::<T>::inc_sufficients(&account_id);
}
<AccountCodes<T>>::insert(address, code);
}
/// Get the account basic in EVM format.
pub fn account_basic(address: &H160) -> (Account, frame_support::weights::Weight) {
let account_id = T::AddressMapping::into_account_id(*address);
let nonce = frame_system::Pallet::<T>::account_nonce(&account_id);
// keepalive `true` takes into account ExistentialDeposit as part of what's considered liquid balance.
let balance = T::Currency::reducible_balance(&account_id, true);
(
Account {
nonce: U256::from(UniqueSaturatedInto::<u128>::unique_saturated_into(nonce)),
balance: U256::from(UniqueSaturatedInto::<u128>::unique_saturated_into(balance)),
},
T::DbWeight::get().reads(2),
)
}
/// Get the author using the FindAuthor trait.
pub fn find_author() -> H160 {
let digest = <frame_system::Pallet<T>>::digest();
let pre_runtime_digests = digest.logs.iter().filter_map(|d| d.as_pre_runtime());
T::FindAuthor::find_author(pre_runtime_digests).unwrap_or_default()
}
}
/// Handle withdrawing, refunding and depositing of transaction fees.
/// Similar to `OnChargeTransaction` of `pallet_transaction_payment`
pub trait OnChargeEVMTransaction<T: Config> {
type LiquidityInfo: Default;
/// Before the transaction is executed the payment of the transaction fees
/// need to be secured.
fn withdraw_fee(who: &H160, fee: U256) -> Result<Self::LiquidityInfo, Error<T>>;
/// After the transaction was executed the actual fee can be calculated.
/// This function should refund any overpaid fees and optionally deposit
/// the corrected amount, and handles the base fee rationing using the provided
/// `OnUnbalanced` implementation.
/// Returns the `NegativeImbalance` - if any - produced by the priority fee.
fn correct_and_deposit_fee(
who: &H160,
corrected_fee: U256,
base_fee: U256,
already_withdrawn: Self::LiquidityInfo,
) -> Self::LiquidityInfo;
/// Introduced in EIP1559 to handle the priority tip.
fn pay_priority_fee(tip: Self::LiquidityInfo);
}
/// Implements the transaction payment for a pallet implementing the `Currency`
/// trait (eg. the pallet_balances) using an unbalance handler (implementing
/// `OnUnbalanced`).
/// Similar to `CurrencyAdapter` of `pallet_transaction_payment`
pub struct EVMCurrencyAdapter<C, OU>(sp_std::marker::PhantomData<(C, OU)>);
impl<T, C, OU> OnChargeEVMTransaction<T> for EVMCurrencyAdapter<C, OU>
where
T: Config,
C: Currency<<T as frame_system::Config>::AccountId>,
C::PositiveImbalance: Imbalance<
<C as Currency<<T as frame_system::Config>::AccountId>>::Balance,
Opposite = C::NegativeImbalance,
>,
C::NegativeImbalance: Imbalance<
<C as Currency<<T as frame_system::Config>::AccountId>>::Balance,
Opposite = C::PositiveImbalance,
>,
OU: OnUnbalanced<NegativeImbalanceOf<C, T>>,
U256: UniqueSaturatedInto<<C as Currency<<T as frame_system::Config>::AccountId>>::Balance>,
{
// Kept type as Option to satisfy bound of Default
type LiquidityInfo = Option<NegativeImbalanceOf<C, T>>;
fn withdraw_fee(who: &H160, fee: U256) -> Result<Self::LiquidityInfo, Error<T>> {
if fee.is_zero() {
return Ok(None);
}
let account_id = T::AddressMapping::into_account_id(*who);
let imbalance = C::withdraw(
&account_id,
fee.unique_saturated_into(),
WithdrawReasons::FEE,
ExistenceRequirement::AllowDeath,
)
.map_err(|_| Error::<T>::BalanceLow)?;
Ok(Some(imbalance))
}
fn correct_and_deposit_fee(
who: &H160,
corrected_fee: U256,
base_fee: U256,
already_withdrawn: Self::LiquidityInfo,
) -> Self::LiquidityInfo {
if let Some(paid) = already_withdrawn {
let account_id = T::AddressMapping::into_account_id(*who);
// Calculate how much refund we should return
let refund_amount = paid
.peek()
.saturating_sub(corrected_fee.unique_saturated_into());
// refund to the account that paid the fees. If this fails, the
// account might have dropped below the existential balance. In
// that case we don't refund anything.
let refund_imbalance = C::deposit_into_existing(&account_id, refund_amount)
.unwrap_or_else(|_| C::PositiveImbalance::zero());
// Make sure this works with 0 ExistentialDeposit
// https://github.com/paritytech/substrate/issues/10117
// If we tried to refund something, the account still empty and the ED is set to 0,
// we call `make_free_balance_be` with the refunded amount.
let refund_imbalance = if C::minimum_balance().is_zero()
&& refund_amount > C::Balance::zero()
&& C::total_balance(&account_id).is_zero()
{
// Known bug: Substrate tried to refund to a zeroed AccountData, but
// interpreted the account to not exist.
match C::make_free_balance_be(&account_id, refund_amount) {
SignedImbalance::Positive(p) => p,
_ => C::PositiveImbalance::zero(),
}
} else {
refund_imbalance
};
// merge the imbalance caused by paying the fees and refunding parts of it again.
let adjusted_paid = paid
.offset(refund_imbalance)
.same()
.unwrap_or_else(|_| C::NegativeImbalance::zero());
let (base_fee, tip) = adjusted_paid.split(base_fee.unique_saturated_into());
// Handle base fee. Can be either burned, rationed, etc ...
OU::on_unbalanced(base_fee);
return Some(tip);
}
None
}
fn pay_priority_fee(tip: Self::LiquidityInfo) {
// Default Ethereum behaviour: issue the tip to the block author.
if let Some(tip) = tip {
let account_id = T::AddressMapping::into_account_id(<Pallet<T>>::find_author());
let _ = C::deposit_into_existing(&account_id, tip.peek());
}
}
}
/// Implementation for () does not specify what to do with imbalance
impl<T> OnChargeEVMTransaction<T> for ()
where
T: Config,
<T::Currency as Currency<<T as frame_system::Config>::AccountId>>::PositiveImbalance:
Imbalance<<T::Currency as Currency<<T as frame_system::Config>::AccountId>>::Balance, Opposite = <T::Currency as Currency<<T as frame_system::Config>::AccountId>>::NegativeImbalance>,
<T::Currency as Currency<<T as frame_system::Config>::AccountId>>::NegativeImbalance:
Imbalance<<T::Currency as Currency<<T as frame_system::Config>::AccountId>>::Balance, Opposite = <T::Currency as Currency<<T as frame_system::Config>::AccountId>>::PositiveImbalance>,
U256: UniqueSaturatedInto<BalanceOf<T>>,
{
// Kept type as Option to satisfy bound of Default
type LiquidityInfo = Option<NegativeImbalanceOf<T::Currency, T>>;
fn withdraw_fee(
who: &H160,
fee: U256,
) -> Result<Self::LiquidityInfo, Error<T>> {
EVMCurrencyAdapter::<<T as Config>::Currency, ()>::withdraw_fee(who, fee)
}
fn correct_and_deposit_fee(
who: &H160,
corrected_fee: U256,
base_fee: U256,
already_withdrawn: Self::LiquidityInfo,
) -> Self::LiquidityInfo {
<EVMCurrencyAdapter::<<T as Config>::Currency, ()> as OnChargeEVMTransaction<T>>::correct_and_deposit_fee(who, corrected_fee, base_fee, already_withdrawn)
}
fn pay_priority_fee(tip: Self::LiquidityInfo) {
<EVMCurrencyAdapter::<<T as Config>::Currency, ()> as OnChargeEVMTransaction<T>>::pay_priority_fee(tip);
}
}
pub trait OnCreate<T> {
fn on_create(owner: H160, contract: H160);
}
impl<T> OnCreate<T> for () {
fn on_create(_owner: H160, _contract: H160) {}
}
#[impl_for_tuples(1, 12)]
impl<T> OnCreate<T> for Tuple {
fn on_create(owner: H160, contract: H160) {
for_tuples!(#(
Tuple::on_create(owner, contract);
)*)
}
}