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https://github.com/pezkuwichain/pezkuwi-subxt.git
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8cb913db52
* Switch to `relay_dispatch_queue_remaining_capacity` This switches the parachain runtimes to use `relay_dispatch_queue_remaining_capacity` when possible. If the data is not yet available on the relay chain it falls back to `relay_dispatch_queue_size`. It will require that all parachains migrate to `relay_dispatch_queue_remaining_capacity` before we can start removing the call to `relay_dipatch_queue_size`. Besides that the pr adapts the xcm exumulator to make it work with the message queue. * Fix test and use correct types * ".git/.scripts/commands/fmt/fmt.sh" --------- Co-authored-by: command-bot <>
339 lines
13 KiB
Rust
339 lines
13 KiB
Rust
// Copyright 2021 Parity Technologies (UK) Ltd.
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// This file is part of Cumulus.
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// Cumulus is free software: you can redistribute it and/or modify
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// it under the terms of the GNU General Public License as published by
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// the Free Software Foundation, either version 3 of the License, or
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// (at your option) any later version.
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// Cumulus is distributed in the hope that it will be useful,
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// but WITHOUT ANY WARRANTY; without even the implied warranty of
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// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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// GNU General Public License for more details.
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// You should have received a copy of the GNU General Public License
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// along with Cumulus. If not, see <http://www.gnu.org/licenses/>.
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use codec::{Decode, Encode};
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use cumulus_primitives_core::{
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relay_chain, AbridgedHostConfiguration, AbridgedHrmpChannel, ParaId,
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};
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use scale_info::TypeInfo;
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use sp_runtime::traits::HashFor;
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use sp_state_machine::{Backend, TrieBackend, TrieBackendBuilder};
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use sp_std::vec::Vec;
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use sp_trie::{HashDBT, MemoryDB, StorageProof, EMPTY_PREFIX};
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/// The capacity of the upward message queue of a parachain on the relay chain.
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// The field order should stay the same as the data can be found in the proof to ensure both are
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// have the same encoded representation.
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#[derive(Clone, Encode, Decode, TypeInfo, Default)]
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pub struct RelayDispachQueueSize {
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/// The number of additional messages that can be enqueued.
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pub remaining_count: u32,
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/// The total size of additional messages that can be enqueued.
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pub remaining_size: u32,
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}
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/// A snapshot of some messaging related state of relay chain pertaining to the current parachain.
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///
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/// This data is essential for making sure that the parachain is aware of current resource use on
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/// the relay chain and that the candidates produced for this parachain do not exceed any of these
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/// limits.
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#[derive(Clone, Encode, Decode, TypeInfo)]
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pub struct MessagingStateSnapshot {
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/// The current message queue chain head for downward message queue.
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///
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/// If the value is absent on the relay chain this will be set to all zeros.
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pub dmq_mqc_head: relay_chain::Hash,
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/// The current capacity of the upward message queue of the current parachain on the relay chain.
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pub relay_dispatch_queue_size: RelayDispachQueueSize,
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/// Information about all the inbound HRMP channels.
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///
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/// These are structured as a list of tuples. The para id in the tuple specifies the sender
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/// of the channel. Obviously, the recipient is the current parachain.
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///
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/// The channels are sorted by the sender para id ascension.
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pub ingress_channels: Vec<(ParaId, AbridgedHrmpChannel)>,
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/// Information about all the outbound HRMP channels.
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///
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/// These are structured as a list of tuples. The para id in the tuple specifies the recipient
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/// of the channel. Obviously, the sender is the current parachain.
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///
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/// The channels are sorted by the recipient para id ascension.
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pub egress_channels: Vec<(ParaId, AbridgedHrmpChannel)>,
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}
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#[derive(Debug)]
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pub enum Error {
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/// The provided proof was created against unexpected storage root.
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RootMismatch,
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/// The entry cannot be read.
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ReadEntry(ReadEntryErr),
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/// The optional entry cannot be read.
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ReadOptionalEntry(ReadEntryErr),
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/// The slot cannot be extracted.
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Slot(ReadEntryErr),
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/// The upgrade go-ahead signal cannot be read.
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UpgradeGoAhead(ReadEntryErr),
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/// The upgrade restriction signal cannot be read.
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UpgradeRestriction(ReadEntryErr),
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/// The host configuration cannot be extracted.
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Config(ReadEntryErr),
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/// The DMQ MQC head cannot be extracted.
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DmqMqcHead(ReadEntryErr),
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/// Relay dispatch queue cannot be extracted.
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RelayDispatchQueueSize(ReadEntryErr),
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/// The hrmp inress channel index cannot be extracted.
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HrmpIngressChannelIndex(ReadEntryErr),
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/// The hrmp egress channel index cannot be extracted.
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HrmpEgressChannelIndex(ReadEntryErr),
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/// The channel identified by the sender and receiver cannot be extracted.
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HrmpChannel(ParaId, ParaId, ReadEntryErr),
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}
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#[derive(Debug)]
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pub enum ReadEntryErr {
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/// The value cannot be extracted from the proof.
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Proof,
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/// The value cannot be decoded.
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Decode,
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/// The value is expected to be present on the relay chain, but it doesn't exist.
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Absent,
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}
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/// Read an entry given by the key and try to decode it. If the value specified by the key according
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/// to the proof is empty, the `fallback` value will be returned.
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///
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/// Returns `Err` in case the backend can't return the value under the specific key (likely due to
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/// a malformed proof), in case the decoding fails, or in case where the value is empty in the relay
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/// chain state and no fallback was provided.
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fn read_entry<T, B>(backend: &B, key: &[u8], fallback: Option<T>) -> Result<T, ReadEntryErr>
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where
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T: Decode,
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B: Backend<HashFor<relay_chain::Block>>,
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{
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backend
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.storage(key)
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.map_err(|_| ReadEntryErr::Proof)?
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.map(|raw_entry| T::decode(&mut &raw_entry[..]).map_err(|_| ReadEntryErr::Decode))
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.transpose()?
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.or(fallback)
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.ok_or(ReadEntryErr::Absent)
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}
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/// Read an optional entry given by the key and try to decode it.
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/// Returns `None` if the value specified by the key according to the proof is empty.
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///
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/// Returns `Err` in case the backend can't return the value under the specific key (likely due to
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/// a malformed proof) or if the value couldn't be decoded.
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fn read_optional_entry<T, B>(backend: &B, key: &[u8]) -> Result<Option<T>, ReadEntryErr>
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where
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T: Decode,
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B: Backend<HashFor<relay_chain::Block>>,
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{
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match read_entry(backend, key, None) {
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Ok(v) => Ok(Some(v)),
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Err(ReadEntryErr::Absent) => Ok(None),
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Err(err) => Err(err),
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}
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}
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/// A state proof extracted from the relay chain.
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///
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/// This state proof is extracted from the relay chain block we are building on top of.
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pub struct RelayChainStateProof {
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para_id: ParaId,
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trie_backend: TrieBackend<MemoryDB<HashFor<relay_chain::Block>>, HashFor<relay_chain::Block>>,
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}
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impl RelayChainStateProof {
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/// Create a new instance of `Self`.
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///
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/// Returns an error if the given `relay_parent_storage_root` is not the root of the given
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/// `proof`.
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pub fn new(
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para_id: ParaId,
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relay_parent_storage_root: relay_chain::Hash,
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proof: StorageProof,
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) -> Result<Self, Error> {
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let db = proof.into_memory_db::<HashFor<relay_chain::Block>>();
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if !db.contains(&relay_parent_storage_root, EMPTY_PREFIX) {
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return Err(Error::RootMismatch)
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}
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let trie_backend = TrieBackendBuilder::new(db, relay_parent_storage_root).build();
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Ok(Self { para_id, trie_backend })
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}
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/// Read the [`MessagingStateSnapshot`] from the relay chain state proof.
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///
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/// Returns an error if anything failed at reading or decoding.
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pub fn read_messaging_state_snapshot(
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&self,
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host_config: &AbridgedHostConfiguration,
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) -> Result<MessagingStateSnapshot, Error> {
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let dmq_mqc_head: relay_chain::Hash = read_entry(
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&self.trie_backend,
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&relay_chain::well_known_keys::dmq_mqc_head(self.para_id),
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Some(Default::default()),
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)
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.map_err(Error::DmqMqcHead)?;
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let relay_dispatch_queue_size = read_optional_entry::<RelayDispachQueueSize, _>(
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&self.trie_backend,
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&relay_chain::well_known_keys::relay_dispatch_queue_remaining_capacity(self.para_id)
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.key,
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);
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// TODO paritytech/polkadot#6283: Remove all usages of `relay_dispatch_queue_size`
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//
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// When the relay chain and all parachains support `relay_dispatch_queue_remaining_capacity`,
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// this code here needs to be removed and above needs to be changed to `read_entry` that
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// returns an error if `relay_dispatch_queue_remaining_capacity` can not be found/decoded.
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//
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// For now we just fallback to the old dispatch queue size if there is an error.
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let relay_dispatch_queue_size = match relay_dispatch_queue_size {
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Ok(Some(r)) => r,
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_ => {
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let res = read_entry::<(u32, u32), _>(
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&self.trie_backend,
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#[allow(deprecated)]
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&relay_chain::well_known_keys::relay_dispatch_queue_size(self.para_id),
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Some((0, 0)),
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)
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.map_err(Error::RelayDispatchQueueSize)?;
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let remaining_count = host_config.max_upward_queue_count.saturating_sub(res.0);
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let remaining_size = host_config.max_upward_queue_size.saturating_sub(res.1);
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RelayDispachQueueSize { remaining_count, remaining_size }
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},
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};
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let ingress_channel_index: Vec<ParaId> = read_entry(
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&self.trie_backend,
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&relay_chain::well_known_keys::hrmp_ingress_channel_index(self.para_id),
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Some(Vec::new()),
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)
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.map_err(Error::HrmpIngressChannelIndex)?;
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let egress_channel_index: Vec<ParaId> = read_entry(
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&self.trie_backend,
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&relay_chain::well_known_keys::hrmp_egress_channel_index(self.para_id),
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Some(Vec::new()),
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)
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.map_err(Error::HrmpEgressChannelIndex)?;
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let mut ingress_channels = Vec::with_capacity(ingress_channel_index.len());
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for sender in ingress_channel_index {
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let channel_id = relay_chain::HrmpChannelId { sender, recipient: self.para_id };
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let hrmp_channel: AbridgedHrmpChannel = read_entry(
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&self.trie_backend,
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&relay_chain::well_known_keys::hrmp_channels(channel_id),
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None,
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)
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.map_err(|read_err| Error::HrmpChannel(sender, self.para_id, read_err))?;
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ingress_channels.push((sender, hrmp_channel));
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}
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let mut egress_channels = Vec::with_capacity(egress_channel_index.len());
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for recipient in egress_channel_index {
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let channel_id = relay_chain::HrmpChannelId { sender: self.para_id, recipient };
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let hrmp_channel: AbridgedHrmpChannel = read_entry(
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&self.trie_backend,
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&relay_chain::well_known_keys::hrmp_channels(channel_id),
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None,
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)
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.map_err(|read_err| Error::HrmpChannel(self.para_id, recipient, read_err))?;
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egress_channels.push((recipient, hrmp_channel));
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}
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// NOTE that ingress_channels and egress_channels promise to be sorted. We satisfy this property
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// by relying on the fact that `ingress_channel_index` and `egress_channel_index` are themselves sorted.
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Ok(MessagingStateSnapshot {
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dmq_mqc_head,
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relay_dispatch_queue_size,
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ingress_channels,
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egress_channels,
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})
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}
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/// Read the [`AbridgedHostConfiguration`] from the relay chain state proof.
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///
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/// Returns an error if anything failed at reading or decoding.
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pub fn read_abridged_host_configuration(&self) -> Result<AbridgedHostConfiguration, Error> {
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read_entry(&self.trie_backend, relay_chain::well_known_keys::ACTIVE_CONFIG, None)
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.map_err(Error::Config)
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}
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/// Read the [`Slot`](relay_chain::Slot) from the relay chain state proof.
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///
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/// The slot is slot of the relay chain block this state proof was extracted from.
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///
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/// Returns an error if anything failed at reading or decoding.
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pub fn read_slot(&self) -> Result<relay_chain::Slot, Error> {
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read_entry(&self.trie_backend, relay_chain::well_known_keys::CURRENT_SLOT, None)
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.map_err(Error::Slot)
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}
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/// Read the go-ahead signal for the upgrade from the relay chain state proof.
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///
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/// The go-ahead specifies whether the parachain can apply the upgrade or should abort it. If
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/// the value is absent then there is either no judgment by the relay chain yet or no upgrade
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/// is pending.
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///
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/// Returns an error if anything failed at reading or decoding.
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pub fn read_upgrade_go_ahead_signal(
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&self,
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) -> Result<Option<relay_chain::UpgradeGoAhead>, Error> {
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read_optional_entry(
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&self.trie_backend,
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&relay_chain::well_known_keys::upgrade_go_ahead_signal(self.para_id),
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)
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.map_err(Error::UpgradeGoAhead)
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}
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/// Read the upgrade restriction signal for the upgrade from the relay chain state proof.
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///
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/// If the upgrade restriction is not `None`, then the parachain cannot signal an upgrade at
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/// this block.
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///
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/// Returns an error if anything failed at reading or decoding.
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pub fn read_upgrade_restriction_signal(
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&self,
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) -> Result<Option<relay_chain::UpgradeRestriction>, Error> {
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read_optional_entry(
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&self.trie_backend,
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&relay_chain::well_known_keys::upgrade_restriction_signal(self.para_id),
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)
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.map_err(Error::UpgradeRestriction)
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}
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/// Read an entry given by the key and try to decode it. If the value specified by the key according
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/// to the proof is empty, the `fallback` value will be returned.
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///
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/// Returns `Err` in case the backend can't return the value under the specific key (likely due to
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/// a malformed proof), in case the decoding fails, or in case where the value is empty in the relay
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/// chain state and no fallback was provided.
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pub fn read_entry<T>(&self, key: &[u8], fallback: Option<T>) -> Result<T, Error>
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where
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T: Decode,
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{
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read_entry(&self.trie_backend, key, fallback).map_err(Error::ReadEntry)
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}
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/// Read an optional entry given by the key and try to decode it.
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///
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/// Returns `Err` in case the backend can't return the value under the specific key (likely due to
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/// a malformed proof) or if the value couldn't be decoded.
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pub fn read_optional_entry<T>(&self, key: &[u8]) -> Result<Option<T>, Error>
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where
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T: Decode,
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{
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read_optional_entry(&self.trie_backend, key).map_err(Error::ReadOptionalEntry)
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}
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}
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