mirror of
https://github.com/pezkuwichain/pezkuwi-subxt.git
synced 2026-06-12 18:11:10 +00:00
21b3f52191
* Use DynamicHasher256 to support Blake2 or Keccack depending on chain * remove Config::Hash associated type, replace with HashFor<Config> alias * Fix doc links * fix wasm tests * Don't strip system pallet associated types. check System.Hashing, not Hash. Rename BlockHash trait to Hash * Tweak comment * fmt * fix merge * Fix typo
397 lines
13 KiB
Rust
397 lines
13 KiB
Rust
// Copyright 2019-2024 Parity Technologies (UK) Ltd.
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// This file is dual-licensed as Apache-2.0 or GPL-3.0.
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// see LICENSE for license details.
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//! Substrate specific configuration
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use super::{Config, DefaultExtrinsicParams, DefaultExtrinsicParamsBuilder, Hasher, Header};
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pub use crate::utils::{AccountId32, MultiAddress, MultiSignature};
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use alloc::format;
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use alloc::vec::Vec;
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use codec::{Decode, Encode};
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pub use primitive_types::{H256, U256};
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use serde::{Deserialize, Serialize};
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use subxt_metadata::Metadata;
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/// Default set of commonly used types by Substrate runtimes.
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// Note: We only use this at the type level, so it should be impossible to
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// create an instance of it.
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// The trait implementations exist just to make life easier,
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// but shouldn't strictly be necessary since users can't instantiate this type.
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#[derive(Clone, Copy, Eq, PartialEq, Ord, PartialOrd, Hash, Debug)]
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pub enum SubstrateConfig {}
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impl Config for SubstrateConfig {
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type AccountId = AccountId32;
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type Address = MultiAddress<Self::AccountId, u32>;
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type Signature = MultiSignature;
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type Hasher = DynamicHasher256;
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type Header = SubstrateHeader<u32, DynamicHasher256>;
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type ExtrinsicParams = SubstrateExtrinsicParams<Self>;
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type AssetId = u32;
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}
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/// A struct representing the signed extra and additional parameters required
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/// to construct a transaction for the default substrate node.
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pub type SubstrateExtrinsicParams<T> = DefaultExtrinsicParams<T>;
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/// A builder which leads to [`SubstrateExtrinsicParams`] being constructed.
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/// This is what you provide to methods like `sign_and_submit()`.
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pub type SubstrateExtrinsicParamsBuilder<T> = DefaultExtrinsicParamsBuilder<T>;
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/// A hasher (ie implements [`Hasher`]) which hashes values using the blaks2_256 algorithm.
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#[derive(Debug, Clone, Copy, PartialEq, Eq)]
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pub struct BlakeTwo256;
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impl Hasher for BlakeTwo256 {
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type Output = H256;
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fn new(_metadata: &Metadata) -> Self {
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Self
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}
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fn hash(&self, s: &[u8]) -> Self::Output {
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sp_crypto_hashing::blake2_256(s).into()
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}
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}
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/// A hasher (ie implements [`Hasher`]) which inspects the runtime metadata to decide how to
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/// hash types, falling back to blake2_256 if the hasher information is not available.
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///
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/// Currently this hasher supports only `BlakeTwo256` and `Keccak256` hashing methods.
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#[derive(Debug, Clone, Copy, PartialEq, Eq)]
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pub struct DynamicHasher256(HashType);
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#[derive(Debug, Clone, Copy, PartialEq, Eq)]
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enum HashType {
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// Most chains use this:
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BlakeTwo256,
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// Chains like Hyperbridge use this (tends to be eth compatible chains)
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Keccak256,
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// If we don't have V16 metadata, we'll emit this and default to BlakeTwo256.
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Unknown,
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}
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impl Hasher for DynamicHasher256 {
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type Output = H256;
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fn new(metadata: &Metadata) -> Self {
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// Determine the Hash associated type used for the current chain, if possible.
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let Some(system_pallet) = metadata.pallet_by_name("System") else {
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return Self(HashType::Unknown);
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};
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let Some(hash_ty_id) = system_pallet.associated_type_id("Hashing") else {
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return Self(HashType::Unknown);
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};
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let ty = metadata
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.types()
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.resolve(hash_ty_id)
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.expect("Type information for 'Hashing' associated type should be in metadata");
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let hash_type = match ty.path.ident().as_deref().unwrap_or("") {
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"BlakeTwo256" => HashType::BlakeTwo256,
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"Keccak256" => HashType::Keccak256,
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_ => HashType::Unknown,
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};
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Self(hash_type)
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}
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fn hash(&self, s: &[u8]) -> Self::Output {
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match self.0 {
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HashType::BlakeTwo256 | HashType::Unknown => sp_crypto_hashing::blake2_256(s).into(),
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HashType::Keccak256 => sp_crypto_hashing::keccak_256(s).into(),
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}
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}
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}
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/// A generic Substrate header type, adapted from `sp_runtime::generic::Header`.
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/// The block number and hasher can be configured to adapt this for other nodes.
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#[derive(Encode, Decode, Debug, PartialEq, Eq, Clone, Serialize, Deserialize)]
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#[serde(rename_all = "camelCase")]
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pub struct SubstrateHeader<N: Copy + Into<U256> + TryFrom<U256>, H: Hasher> {
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/// The parent hash.
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pub parent_hash: H::Output,
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/// The block number.
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#[serde(
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serialize_with = "serialize_number",
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deserialize_with = "deserialize_number"
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)]
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#[codec(compact)]
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pub number: N,
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/// The state trie merkle root
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pub state_root: H::Output,
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/// The merkle root of the extrinsics.
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pub extrinsics_root: H::Output,
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/// A chain-specific digest of data useful for light clients or referencing auxiliary data.
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pub digest: Digest,
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}
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impl<N, H> Header for SubstrateHeader<N, H>
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where
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N: Copy + Into<u64> + Into<U256> + TryFrom<U256> + Encode,
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H: Hasher,
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SubstrateHeader<N, H>: Encode + Decode,
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{
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type Number = N;
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type Hasher = H;
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fn number(&self) -> Self::Number {
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self.number
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}
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}
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/// Generic header digest. From `sp_runtime::generic::digest`.
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#[derive(Encode, Decode, Debug, PartialEq, Eq, Clone, Serialize, Deserialize, Default)]
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pub struct Digest {
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/// A list of digest items.
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pub logs: Vec<DigestItem>,
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}
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/// Digest item that is able to encode/decode 'system' digest items and
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/// provide opaque access to other items. From `sp_runtime::generic::digest`.
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#[derive(Debug, PartialEq, Eq, Clone)]
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pub enum DigestItem {
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/// A pre-runtime digest.
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///
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/// These are messages from the consensus engine to the runtime, although
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/// the consensus engine can (and should) read them itself to avoid
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/// code and state duplication. It is erroneous for a runtime to produce
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/// these, but this is not (yet) checked.
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///
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/// NOTE: the runtime is not allowed to panic or fail in an `on_initialize`
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/// call if an expected `PreRuntime` digest is not present. It is the
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/// responsibility of a external block verifier to check this. Runtime API calls
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/// will initialize the block without pre-runtime digests, so initialization
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/// cannot fail when they are missing.
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PreRuntime(ConsensusEngineId, Vec<u8>),
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/// A message from the runtime to the consensus engine. This should *never*
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/// be generated by the native code of any consensus engine, but this is not
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/// checked (yet).
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Consensus(ConsensusEngineId, Vec<u8>),
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/// Put a Seal on it. This is only used by native code, and is never seen
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/// by runtimes.
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Seal(ConsensusEngineId, Vec<u8>),
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/// Some other thing. Unsupported and experimental.
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Other(Vec<u8>),
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/// An indication for the light clients that the runtime execution
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/// environment is updated.
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///
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/// Currently this is triggered when:
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/// 1. Runtime code blob is changed or
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/// 2. `heap_pages` value is changed.
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RuntimeEnvironmentUpdated,
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}
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// From sp_runtime::generic, DigestItem enum indexes are encoded using this:
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#[repr(u32)]
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#[derive(Encode, Decode)]
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enum DigestItemType {
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Other = 0u32,
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Consensus = 4u32,
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Seal = 5u32,
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PreRuntime = 6u32,
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RuntimeEnvironmentUpdated = 8u32,
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}
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impl Encode for DigestItem {
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fn encode(&self) -> Vec<u8> {
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let mut v = Vec::new();
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match self {
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Self::Consensus(val, data) => {
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DigestItemType::Consensus.encode_to(&mut v);
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(val, data).encode_to(&mut v);
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}
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Self::Seal(val, sig) => {
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DigestItemType::Seal.encode_to(&mut v);
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(val, sig).encode_to(&mut v);
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}
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Self::PreRuntime(val, data) => {
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DigestItemType::PreRuntime.encode_to(&mut v);
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(val, data).encode_to(&mut v);
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}
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Self::Other(val) => {
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DigestItemType::Other.encode_to(&mut v);
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val.encode_to(&mut v);
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}
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Self::RuntimeEnvironmentUpdated => {
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DigestItemType::RuntimeEnvironmentUpdated.encode_to(&mut v);
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}
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}
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v
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}
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}
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impl Decode for DigestItem {
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fn decode<I: codec::Input>(input: &mut I) -> Result<Self, codec::Error> {
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let item_type: DigestItemType = Decode::decode(input)?;
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match item_type {
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DigestItemType::PreRuntime => {
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let vals: (ConsensusEngineId, Vec<u8>) = Decode::decode(input)?;
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Ok(Self::PreRuntime(vals.0, vals.1))
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}
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DigestItemType::Consensus => {
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let vals: (ConsensusEngineId, Vec<u8>) = Decode::decode(input)?;
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Ok(Self::Consensus(vals.0, vals.1))
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}
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DigestItemType::Seal => {
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let vals: (ConsensusEngineId, Vec<u8>) = Decode::decode(input)?;
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Ok(Self::Seal(vals.0, vals.1))
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}
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DigestItemType::Other => Ok(Self::Other(Decode::decode(input)?)),
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DigestItemType::RuntimeEnvironmentUpdated => Ok(Self::RuntimeEnvironmentUpdated),
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}
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}
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}
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/// Consensus engine unique ID. From `sp_runtime::ConsensusEngineId`.
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pub type ConsensusEngineId = [u8; 4];
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impl serde::Serialize for DigestItem {
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fn serialize<S>(&self, seq: S) -> Result<S::Ok, S::Error>
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where
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S: serde::Serializer,
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{
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self.using_encoded(|bytes| impl_serde::serialize::serialize(bytes, seq))
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}
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}
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impl<'a> serde::Deserialize<'a> for DigestItem {
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fn deserialize<D>(de: D) -> Result<Self, D::Error>
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where
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D: serde::Deserializer<'a>,
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{
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let r = impl_serde::serialize::deserialize(de)?;
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Decode::decode(&mut &r[..])
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.map_err(|e| serde::de::Error::custom(format!("Decode error: {e}")))
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}
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}
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fn serialize_number<S, T: Copy + Into<U256>>(val: &T, s: S) -> Result<S::Ok, S::Error>
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where
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S: serde::Serializer,
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{
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let u256: U256 = (*val).into();
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serde::Serialize::serialize(&u256, s)
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}
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fn deserialize_number<'a, D, T: TryFrom<U256>>(d: D) -> Result<T, D::Error>
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where
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D: serde::Deserializer<'a>,
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{
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// At the time of writing, Smoldot gives back block numbers in numeric rather
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// than hex format. So let's support deserializing from both here:
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let number_or_hex = NumberOrHex::deserialize(d)?;
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let u256 = number_or_hex.into_u256();
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TryFrom::try_from(u256).map_err(|_| serde::de::Error::custom("Try from failed"))
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}
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/// A number type that can be serialized both as a number or a string that encodes a number in a
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/// string.
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///
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/// We allow two representations of the block number as input. Either we deserialize to the type
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/// that is specified in the block type or we attempt to parse given hex value.
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///
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/// The primary motivation for having this type is to avoid overflows when using big integers in
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/// JavaScript (which we consider as an important RPC API consumer).
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#[derive(Copy, Clone, Serialize, Deserialize, Debug, PartialEq, Eq)]
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#[serde(untagged)]
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pub enum NumberOrHex {
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/// The number represented directly.
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Number(u64),
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/// Hex representation of the number.
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Hex(U256),
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}
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impl NumberOrHex {
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/// Converts this number into an U256.
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pub fn into_u256(self) -> U256 {
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match self {
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NumberOrHex::Number(n) => n.into(),
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NumberOrHex::Hex(h) => h,
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}
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}
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}
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impl From<NumberOrHex> for U256 {
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fn from(num_or_hex: NumberOrHex) -> U256 {
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num_or_hex.into_u256()
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}
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}
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macro_rules! into_number_or_hex {
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($($t: ty)+) => {
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$(
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impl From<$t> for NumberOrHex {
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fn from(x: $t) -> Self {
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NumberOrHex::Number(x.into())
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}
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}
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)+
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}
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}
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into_number_or_hex!(u8 u16 u32 u64);
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impl From<u128> for NumberOrHex {
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fn from(n: u128) -> Self {
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NumberOrHex::Hex(n.into())
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}
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}
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impl From<U256> for NumberOrHex {
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fn from(n: U256) -> Self {
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NumberOrHex::Hex(n)
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}
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}
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#[cfg(test)]
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mod test {
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use super::*;
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// Smoldot returns numeric block numbers in the header at the time of writing;
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// ensure we can deserialize them properly.
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#[test]
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fn can_deserialize_numeric_block_number() {
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let numeric_block_number_json = r#"
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{
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"digest": {
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"logs": []
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},
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"extrinsicsRoot": "0x0000000000000000000000000000000000000000000000000000000000000000",
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"number": 4,
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"parentHash": "0xcb2690b2c85ceab55be03fc7f7f5f3857e7efeb7a020600ebd4331e10be2f7a5",
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"stateRoot": "0x0000000000000000000000000000000000000000000000000000000000000000"
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}
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"#;
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let header: SubstrateHeader<u32, BlakeTwo256> =
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serde_json::from_str(numeric_block_number_json).expect("valid block header");
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assert_eq!(header.number(), 4);
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}
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// Substrate returns hex block numbers; ensure we can also deserialize those OK.
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#[test]
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fn can_deserialize_hex_block_number() {
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let numeric_block_number_json = r#"
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{
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"digest": {
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"logs": []
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},
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"extrinsicsRoot": "0x0000000000000000000000000000000000000000000000000000000000000000",
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"number": "0x04",
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"parentHash": "0xcb2690b2c85ceab55be03fc7f7f5f3857e7efeb7a020600ebd4331e10be2f7a5",
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"stateRoot": "0x0000000000000000000000000000000000000000000000000000000000000000"
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}
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"#;
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let header: SubstrateHeader<u32, BlakeTwo256> =
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serde_json::from_str(numeric_block_number_json).expect("valid block header");
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assert_eq!(header.number(), 4);
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}
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}
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