1c0e57d984
This commit systematically rebrands various references from Parity Technologies' Polkadot/Substrate ecosystem to PezkuwiChain within the kurdistan-sdk. Key changes include: - Updated external repository URLs (zombienet-sdk, parity-db, parity-scale-codec, wasm-instrument) to point to pezkuwichain forks. - Modified internal documentation and code comments to reflect PezkuwiChain naming and structure. - Replaced direct references to with or specific paths within the for XCM, Pezkuwi, and other modules. - Cleaned up deprecated issue and PR references in various and files, particularly in and modules. - Adjusted image and logo URLs in documentation to point to PezkuwiChain assets. - Removed or rephrased comments related to external Polkadot/Substrate PRs and issues. This is a significant step towards fully customizing the SDK for the PezkuwiChain ecosystem.
403 lines
14 KiB
Rust
403 lines
14 KiB
Rust
// This file is part of Bizinikiwi.
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// Copyright (C) Parity Technologies (UK) Ltd.
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// SPDX-License-Identifier: Apache-2.0
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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#![warn(missing_docs)]
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#![warn(unused_crate_dependencies)]
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//! Node-specific RPC methods for interaction with Merkle Mountain Range pallet.
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use std::{marker::PhantomData, sync::Arc};
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use codec::{Codec, Decode, Encode};
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use jsonrpsee::{
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core::{async_trait, RpcResult},
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proc_macros::rpc,
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types::{error::ErrorObject, ErrorObjectOwned},
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};
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use serde::{Deserialize, Serialize};
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use pezsp_api::{ApiExt, ProvideRuntimeApi};
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use pezsp_blockchain::HeaderBackend;
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use pezsp_core::{
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offchain::{storage::OffchainDb, OffchainDbExt, OffchainStorage},
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Bytes,
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};
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use pezsp_mmr_primitives::{AncestryProof as MmrAncestryProof, Error as MmrError, LeafProof};
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use pezsp_runtime::traits::{Block as BlockT, NumberFor};
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pub use pezsp_mmr_primitives::MmrApi as MmrRuntimeApi;
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const RUNTIME_ERROR: i32 = 8000;
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const MMR_ERROR: i32 = 8010;
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/// Retrieved MMR leaves and their proof.
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#[derive(Serialize, Deserialize, Debug, Clone, PartialEq, Eq)]
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#[serde(rename_all = "camelCase")]
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pub struct LeavesProof<BlockHash> {
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/// Block hash the proof was generated for.
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pub block_hash: BlockHash,
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/// SCALE-encoded vector of `LeafData`.
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pub leaves: Bytes,
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/// SCALE-encoded proof data. See [pezsp_mmr_primitives::LeafProof].
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pub proof: Bytes,
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}
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impl<BlockHash> LeavesProof<BlockHash> {
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/// Create new `LeavesProof` from a given vector of `Leaf` and a
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/// [pezsp_mmr_primitives::LeafProof].
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pub fn new<Leaf, MmrHash>(
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block_hash: BlockHash,
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leaves: Vec<Leaf>,
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proof: LeafProof<MmrHash>,
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) -> Self
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where
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Leaf: Encode,
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MmrHash: Encode,
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{
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Self { block_hash, leaves: Bytes(leaves.encode()), proof: Bytes(proof.encode()) }
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}
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}
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/// MMR RPC methods.
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#[rpc(client, server)]
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pub trait MmrApi<BlockHash, BlockNumber, MmrHash> {
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/// Get the MMR root hash for the current best block.
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#[method(name = "mmr_root")]
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fn mmr_root(&self, at: Option<BlockHash>) -> RpcResult<MmrHash>;
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/// Generate an MMR proof for the given `block_numbers`.
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///
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/// This method calls into a runtime with MMR pallet included and attempts to generate
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/// an MMR proof for the set of blocks that have the given `block_numbers` with the MMR root at
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/// `best_known_block_number`. `best_known_block_number` must be larger than all the
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/// `block_numbers` for the function to succeed.
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///
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/// Optionally via `at`, a block hash at which the runtime should be queried can be specified.
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/// Optionally via `best_known_block_number`, the proof can be generated using the MMR's state
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/// at a specific best block. Note that if `best_known_block_number` is provided, then also
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/// specifying the block hash via `at` isn't super-useful here, unless you're generating proof
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/// using non-finalized blocks where there are several competing forks. That's because MMR state
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/// will be fixed to the state with `best_known_block_number`, which already points to
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/// some historical block.
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///
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/// Returns the (full) leaves and a proof for these leaves (compact encoding, i.e. hash of
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/// the leaves). Both parameters are SCALE-encoded.
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/// The order of entries in the `leaves` field of the returned struct
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/// is the same as the order of the entries in `block_numbers` supplied
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#[method(name = "mmr_generateProof")]
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fn generate_proof(
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&self,
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block_numbers: Vec<BlockNumber>,
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best_known_block_number: Option<BlockNumber>,
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at: Option<BlockHash>,
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) -> RpcResult<LeavesProof<BlockHash>>;
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/// Generate an MMR ancestry proof for the given `prev_block_number`.
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///
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/// This method calls into a runtime with MMR pallet included and attempts to generate
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/// an MMR ancestry proof for the MMR root at the prior block with number `prev_block_number`,
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/// with the reference MMR root at `best_known_block_number`. `best_known_block_number` must be
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/// larger than the `prev_block_number` for the function to succeed.
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///
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/// Optionally via `at`, a block hash at which the runtime should be queried can be specified.
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/// Optionally via `best_known_block_number`, the proof can be generated using the MMR's state
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/// at a specific best block. Note that if `best_known_block_number` is provided, then also
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/// specifying the block hash via `at` isn't super-useful here, unless you're generating proof
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/// using non-finalized blocks where there are several competing forks. That's because MMR state
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/// will be fixed to the state with `best_known_block_number`, which already points to
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/// some historical block.
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///
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/// Returns the SCALE-encoded ancestry proof for the prior block's MMR root against the MMR root
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/// of the best block specified. The order of entries in the `leaves` field of the returned
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/// struct is the same as the order of the entries in `block_numbers` supplied
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#[method(name = "mmr_generateAncestryProof")]
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fn generate_ancestry_proof(
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&self,
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prev_block_number: BlockNumber,
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best_known_block_number: Option<BlockNumber>,
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at: Option<BlockHash>,
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) -> RpcResult<MmrAncestryProof<MmrHash>>;
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/// Verify an MMR `proof`.
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///
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/// This method calls into a runtime with MMR pallet included and attempts to verify
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/// an MMR proof.
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///
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/// Returns `true` if the proof is valid, else returns the verification error.
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#[method(name = "mmr_verifyProof")]
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fn verify_proof(&self, proof: LeavesProof<BlockHash>) -> RpcResult<bool>;
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/// Verify an MMR `proof` statelessly given an `mmr_root`.
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///
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/// This method calls into a runtime with MMR pallet included and attempts to verify
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/// an MMR proof against a provided MMR root.
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///
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/// Returns `true` if the proof is valid, else returns the verification error.
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#[method(name = "mmr_verifyProofStateless")]
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fn verify_proof_stateless(
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&self,
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mmr_root: MmrHash,
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proof: LeavesProof<BlockHash>,
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) -> RpcResult<bool>;
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}
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/// MMR RPC methods.
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pub struct Mmr<Client, Block, S> {
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client: Arc<Client>,
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offchain_db: OffchainDb<S>,
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_marker: PhantomData<Block>,
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}
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impl<C, B, S> Mmr<C, B, S> {
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/// Create new `Mmr` with the given reference to the client.
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pub fn new(client: Arc<C>, offchain_storage: S) -> Self {
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Self { client, _marker: Default::default(), offchain_db: OffchainDb::new(offchain_storage) }
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}
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}
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#[async_trait]
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impl<Client, Block, MmrHash, S> MmrApiServer<<Block as BlockT>::Hash, NumberFor<Block>, MmrHash>
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for Mmr<Client, (Block, MmrHash), S>
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where
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Block: BlockT,
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Client: Send + Sync + 'static + ProvideRuntimeApi<Block> + HeaderBackend<Block>,
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Client::Api: MmrRuntimeApi<Block, MmrHash, NumberFor<Block>>,
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MmrHash: Codec + Send + Sync + 'static,
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S: OffchainStorage + 'static,
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{
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fn mmr_root(&self, at: Option<<Block as BlockT>::Hash>) -> RpcResult<MmrHash> {
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let block_hash = at.unwrap_or_else(||
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// If the block hash is not supplied assume the best block.
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self.client.info().best_hash);
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let api = self.client.runtime_api();
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let mmr_root = api
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.mmr_root(block_hash)
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.map_err(runtime_error_into_rpc_error)?
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.map_err(mmr_error_into_rpc_error)?;
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Ok(mmr_root)
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}
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fn generate_proof(
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&self,
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block_numbers: Vec<NumberFor<Block>>,
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best_known_block_number: Option<NumberFor<Block>>,
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at: Option<<Block as BlockT>::Hash>,
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) -> RpcResult<LeavesProof<<Block as BlockT>::Hash>> {
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let mut api = self.client.runtime_api();
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let block_hash = at.unwrap_or_else(||
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// If the block hash is not supplied assume the best block.
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self.client.info().best_hash);
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api.register_extension(OffchainDbExt::new(self.offchain_db.clone()));
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let (leaves, proof) = api
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.generate_proof(block_hash, block_numbers, best_known_block_number)
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.map_err(runtime_error_into_rpc_error)?
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.map_err(mmr_error_into_rpc_error)?;
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Ok(LeavesProof::new(block_hash, leaves, proof))
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}
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fn generate_ancestry_proof(
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&self,
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prev_block_number: NumberFor<Block>,
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best_known_block_number: Option<NumberFor<Block>>,
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at: Option<<Block as BlockT>::Hash>,
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) -> RpcResult<MmrAncestryProof<MmrHash>> {
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let mut api = self.client.runtime_api();
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let block_hash = at.unwrap_or_else(||
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// If the block hash is not supplied assume the best block.
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self.client.info().best_hash);
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api.register_extension(OffchainDbExt::new(self.offchain_db.clone()));
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let proof = api
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.generate_ancestry_proof(block_hash, prev_block_number, best_known_block_number)
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.map_err(runtime_error_into_rpc_error)?
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.map_err(mmr_error_into_rpc_error)?;
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Ok(proof)
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}
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fn verify_proof(&self, proof: LeavesProof<<Block as BlockT>::Hash>) -> RpcResult<bool> {
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let mut api = self.client.runtime_api();
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let leaves = Decode::decode(&mut &proof.leaves.0[..]).map_err(invalid_params)?;
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let decoded_proof = Decode::decode(&mut &proof.proof.0[..]).map_err(invalid_params)?;
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api.register_extension(OffchainDbExt::new(self.offchain_db.clone()));
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api.verify_proof(proof.block_hash, leaves, decoded_proof)
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.map_err(runtime_error_into_rpc_error)?
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.map_err(mmr_error_into_rpc_error)?;
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Ok(true)
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}
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fn verify_proof_stateless(
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&self,
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mmr_root: MmrHash,
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proof: LeavesProof<<Block as BlockT>::Hash>,
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) -> RpcResult<bool> {
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let api = self.client.runtime_api();
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let leaves = Decode::decode(&mut &proof.leaves.0[..]).map_err(invalid_params)?;
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let decoded_proof = Decode::decode(&mut &proof.proof.0[..]).map_err(invalid_params)?;
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api.verify_proof_stateless(proof.block_hash, mmr_root, leaves, decoded_proof)
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.map_err(runtime_error_into_rpc_error)?
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.map_err(mmr_error_into_rpc_error)?;
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Ok(true)
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}
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}
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/// Converts an mmr-specific error into a [`CallError`].
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fn mmr_error_into_rpc_error(err: MmrError) -> ErrorObjectOwned {
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let error_code = MMR_ERROR +
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match err {
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MmrError::LeafNotFound => 1,
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MmrError::GenerateProof => 2,
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MmrError::Verify => 3,
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MmrError::InvalidNumericOp => 4,
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MmrError::InvalidBestKnownBlock => 5,
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_ => 0,
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};
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ErrorObject::owned(error_code, err.to_string(), Some(format!("{:?}", err)))
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}
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/// Converts a runtime trap into a [`CallError`].
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fn runtime_error_into_rpc_error(err: impl std::fmt::Debug) -> ErrorObjectOwned {
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ErrorObject::owned(RUNTIME_ERROR, "Runtime trapped", Some(format!("{:?}", err)))
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}
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fn invalid_params(e: impl std::error::Error) -> ErrorObjectOwned {
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ErrorObject::owned(
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jsonrpsee::types::error::ErrorCode::InvalidParams.code(),
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e.to_string(),
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None::<()>,
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)
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}
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#[cfg(test)]
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mod tests {
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use super::*;
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use pezsp_core::H256;
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#[test]
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fn should_serialize_leaf_proof() {
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// given
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let leaf = vec![1_u8, 2, 3, 4];
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let proof = LeafProof {
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leaf_indices: vec![1],
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leaf_count: 9,
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items: vec![H256::repeat_byte(1), H256::repeat_byte(2)],
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};
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let leaf_proof = LeavesProof::new(H256::repeat_byte(0), vec![leaf], proof);
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// when
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let actual = serde_json::to_string(&leaf_proof).unwrap();
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// then
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assert_eq!(
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actual,
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r#"{"blockHash":"0x0000000000000000000000000000000000000000000000000000000000000000","leaves":"0x041001020304","proof":"0x04010000000000000009000000000000000801010101010101010101010101010101010101010101010101010101010101010202020202020202020202020202020202020202020202020202020202020202"}"#
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);
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}
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#[test]
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fn should_serialize_leaves_proof() {
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// given
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let leaf_a = vec![1_u8, 2, 3, 4];
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let leaf_b = vec![2_u8, 2, 3, 4];
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let proof = LeafProof {
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leaf_indices: vec![1, 2],
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leaf_count: 9,
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items: vec![H256::repeat_byte(1), H256::repeat_byte(2)],
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};
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let leaf_proof = LeavesProof::new(H256::repeat_byte(0), vec![leaf_a, leaf_b], proof);
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// when
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let actual = serde_json::to_string(&leaf_proof).unwrap();
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// then
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assert_eq!(
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actual,
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r#"{"blockHash":"0x0000000000000000000000000000000000000000000000000000000000000000","leaves":"0x0810010203041002020304","proof":"0x080100000000000000020000000000000009000000000000000801010101010101010101010101010101010101010101010101010101010101010202020202020202020202020202020202020202020202020202020202020202"}"#
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);
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}
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#[test]
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fn should_deserialize_leaf_proof() {
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// given
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let expected = LeavesProof {
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block_hash: H256::repeat_byte(0),
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leaves: Bytes(vec![vec![1_u8, 2, 3, 4]].encode()),
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proof: Bytes(
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LeafProof {
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leaf_indices: vec![1],
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leaf_count: 9,
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items: vec![H256::repeat_byte(1), H256::repeat_byte(2)],
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}
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.encode(),
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),
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};
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// when
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let actual: LeavesProof<H256> = serde_json::from_str(r#"{
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"blockHash":"0x0000000000000000000000000000000000000000000000000000000000000000",
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"leaves":"0x041001020304",
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"proof":"0x04010000000000000009000000000000000801010101010101010101010101010101010101010101010101010101010101010202020202020202020202020202020202020202020202020202020202020202"
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}"#).unwrap();
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// then
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assert_eq!(actual, expected);
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}
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#[test]
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fn should_deserialize_leaves_proof() {
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// given
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let expected = LeavesProof {
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block_hash: H256::repeat_byte(0),
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leaves: Bytes(vec![vec![1_u8, 2, 3, 4], vec![2_u8, 2, 3, 4]].encode()),
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proof: Bytes(
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LeafProof {
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leaf_indices: vec![1, 2],
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leaf_count: 9,
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items: vec![H256::repeat_byte(1), H256::repeat_byte(2)],
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}
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.encode(),
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),
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};
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// when
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let actual: LeavesProof<H256> = serde_json::from_str(r#"{
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"blockHash":"0x0000000000000000000000000000000000000000000000000000000000000000",
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"leaves":"0x0810010203041002020304",
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"proof":"0x080100000000000000020000000000000009000000000000000801010101010101010101010101010101010101010101010101010101010101010202020202020202020202020202020202020202020202020202020202020202"
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}"#).unwrap();
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// then
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assert_eq!(actual, expected);
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}
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}
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