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https://github.com/pezkuwichain/pezkuwi-subxt.git
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Remove bridges subtree
This commit is contained in:
committed by
Bastian Köcher
parent
d38f6e6728
commit
9a3e2c8c5a
@@ -1,461 +0,0 @@
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// Copyright (C) Parity Technologies (UK) Ltd.
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// This file is part of Parity Bridges Common.
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// Parity Bridges Common 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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// Parity Bridges Common 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 Parity Bridges Common. If not, see <http://www.gnu.org/licenses/>.
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//! Messages pallet benchmarking.
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use crate::{
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inbound_lane::InboundLaneStorage, outbound_lane, weights_ext::EXPECTED_DEFAULT_MESSAGE_LENGTH,
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Call, OutboundLanes, RuntimeInboundLaneStorage,
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};
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use bp_messages::{
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source_chain::TargetHeaderChain, target_chain::SourceHeaderChain, DeliveredMessages,
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InboundLaneData, LaneId, MessageNonce, OutboundLaneData, UnrewardedRelayer,
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UnrewardedRelayersState,
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};
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use bp_runtime::StorageProofSize;
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use codec::Decode;
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use frame_benchmarking::{account, benchmarks_instance_pallet};
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use frame_support::weights::Weight;
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use frame_system::RawOrigin;
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use sp_runtime::{traits::TrailingZeroInput, BoundedVec};
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use sp_std::{ops::RangeInclusive, prelude::*};
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const SEED: u32 = 0;
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/// Pallet we're benchmarking here.
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pub struct Pallet<T: Config<I>, I: 'static = ()>(crate::Pallet<T, I>);
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/// Benchmark-specific message proof parameters.
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#[derive(Debug)]
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pub struct MessageProofParams {
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/// Id of the lane.
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pub lane: LaneId,
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/// Range of messages to include in the proof.
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pub message_nonces: RangeInclusive<MessageNonce>,
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/// If `Some`, the proof needs to include this outbound lane data.
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pub outbound_lane_data: Option<OutboundLaneData>,
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/// If `true`, the caller expects that the proof will contain correct messages that will
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/// be successfully dispatched. This is only called from the "optional"
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/// `receive_single_message_proof_with_dispatch` benchmark. If you don't need it, just
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/// return `true` from the `is_message_successfully_dispatched`.
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pub is_successful_dispatch_expected: bool,
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/// Proof size requirements.
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pub size: StorageProofSize,
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}
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/// Benchmark-specific message delivery proof parameters.
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#[derive(Debug)]
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pub struct MessageDeliveryProofParams<ThisChainAccountId> {
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/// Id of the lane.
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pub lane: LaneId,
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/// The proof needs to include this inbound lane data.
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pub inbound_lane_data: InboundLaneData<ThisChainAccountId>,
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/// Proof size requirements.
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pub size: StorageProofSize,
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}
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/// Trait that must be implemented by runtime.
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pub trait Config<I: 'static>: crate::Config<I> {
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/// Lane id to use in benchmarks.
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///
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/// By default, lane 00000000 is used.
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fn bench_lane_id() -> LaneId {
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LaneId([0, 0, 0, 0])
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}
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/// Return id of relayer account at the bridged chain.
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///
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/// By default, zero account is returned.
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fn bridged_relayer_id() -> Self::InboundRelayer {
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Self::InboundRelayer::decode(&mut TrailingZeroInput::zeroes()).unwrap()
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}
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/// Create given account and give it enough balance for test purposes. Used to create
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/// relayer account at the target chain. Is strictly necessary when your rewards scheme
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/// assumes that the relayer account must exist.
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///
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/// Does nothing by default.
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fn endow_account(_account: &Self::AccountId) {}
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/// Prepare messages proof to receive by the module.
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fn prepare_message_proof(
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params: MessageProofParams,
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) -> (<Self::SourceHeaderChain as SourceHeaderChain>::MessagesProof, Weight);
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/// Prepare messages delivery proof to receive by the module.
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fn prepare_message_delivery_proof(
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params: MessageDeliveryProofParams<Self::AccountId>,
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) -> <Self::TargetHeaderChain as TargetHeaderChain<Self::OutboundPayload, Self::AccountId>>::MessagesDeliveryProof;
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/// Returns true if message has been successfully dispatched or not.
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fn is_message_successfully_dispatched(_nonce: MessageNonce) -> bool {
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true
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}
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/// Returns true if given relayer has been rewarded for some of its actions.
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fn is_relayer_rewarded(relayer: &Self::AccountId) -> bool;
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}
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benchmarks_instance_pallet! {
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//
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// Benchmarks that are used directly by the runtime calls weight formulae.
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//
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// Benchmark `receive_messages_proof` extrinsic with single minimal-weight message and following conditions:
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// * proof does not include outbound lane state proof;
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// * inbound lane already has state, so it needs to be read and decoded;
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// * message is dispatched (reminder: dispatch weight should be minimal);
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// * message requires all heavy checks done by dispatcher.
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//
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// This is base benchmark for all other message delivery benchmarks.
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receive_single_message_proof {
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let relayer_id_on_source = T::bridged_relayer_id();
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let relayer_id_on_target = account("relayer", 0, SEED);
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T::endow_account(&relayer_id_on_target);
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// mark messages 1..=20 as delivered
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receive_messages::<T, I>(20);
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let (proof, dispatch_weight) = T::prepare_message_proof(MessageProofParams {
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lane: T::bench_lane_id(),
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message_nonces: 21..=21,
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outbound_lane_data: None,
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is_successful_dispatch_expected: false,
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size: StorageProofSize::Minimal(EXPECTED_DEFAULT_MESSAGE_LENGTH),
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});
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}: receive_messages_proof(RawOrigin::Signed(relayer_id_on_target), relayer_id_on_source, proof, 1, dispatch_weight)
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verify {
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assert_eq!(
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crate::InboundLanes::<T, I>::get(&T::bench_lane_id()).last_delivered_nonce(),
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21,
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);
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}
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// Benchmark `receive_messages_proof` extrinsic with two minimal-weight messages and following conditions:
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// * proof does not include outbound lane state proof;
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// * inbound lane already has state, so it needs to be read and decoded;
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// * message is dispatched (reminder: dispatch weight should be minimal);
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// * message requires all heavy checks done by dispatcher.
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//
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// The weight of single message delivery could be approximated as
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// `weight(receive_two_messages_proof) - weight(receive_single_message_proof)`.
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// This won't be super-accurate if message has non-zero dispatch weight, but estimation should
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// be close enough to real weight.
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receive_two_messages_proof {
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let relayer_id_on_source = T::bridged_relayer_id();
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let relayer_id_on_target = account("relayer", 0, SEED);
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T::endow_account(&relayer_id_on_target);
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// mark messages 1..=20 as delivered
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receive_messages::<T, I>(20);
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let (proof, dispatch_weight) = T::prepare_message_proof(MessageProofParams {
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lane: T::bench_lane_id(),
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message_nonces: 21..=22,
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outbound_lane_data: None,
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is_successful_dispatch_expected: false,
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size: StorageProofSize::Minimal(EXPECTED_DEFAULT_MESSAGE_LENGTH),
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});
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}: receive_messages_proof(RawOrigin::Signed(relayer_id_on_target), relayer_id_on_source, proof, 2, dispatch_weight)
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verify {
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assert_eq!(
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crate::InboundLanes::<T, I>::get(&T::bench_lane_id()).last_delivered_nonce(),
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22,
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);
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}
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// Benchmark `receive_messages_proof` extrinsic with single minimal-weight message and following conditions:
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// * proof includes outbound lane state proof;
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// * inbound lane already has state, so it needs to be read and decoded;
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// * message is successfully dispatched (reminder: dispatch weight should be minimal);
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// * message requires all heavy checks done by dispatcher.
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//
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// The weight of outbound lane state delivery would be
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// `weight(receive_single_message_proof_with_outbound_lane_state) - weight(receive_single_message_proof)`.
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// This won't be super-accurate if message has non-zero dispatch weight, but estimation should
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// be close enough to real weight.
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receive_single_message_proof_with_outbound_lane_state {
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let relayer_id_on_source = T::bridged_relayer_id();
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let relayer_id_on_target = account("relayer", 0, SEED);
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T::endow_account(&relayer_id_on_target);
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// mark messages 1..=20 as delivered
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receive_messages::<T, I>(20);
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let (proof, dispatch_weight) = T::prepare_message_proof(MessageProofParams {
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lane: T::bench_lane_id(),
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message_nonces: 21..=21,
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outbound_lane_data: Some(OutboundLaneData {
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oldest_unpruned_nonce: 21,
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latest_received_nonce: 20,
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latest_generated_nonce: 21,
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}),
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is_successful_dispatch_expected: false,
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size: StorageProofSize::Minimal(EXPECTED_DEFAULT_MESSAGE_LENGTH),
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});
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}: receive_messages_proof(RawOrigin::Signed(relayer_id_on_target), relayer_id_on_source, proof, 1, dispatch_weight)
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verify {
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let lane_state = crate::InboundLanes::<T, I>::get(&T::bench_lane_id());
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assert_eq!(lane_state.last_delivered_nonce(), 21);
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assert_eq!(lane_state.last_confirmed_nonce, 20);
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}
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// Benchmark `receive_messages_proof` extrinsic with single minimal-weight message and following conditions:
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// * the proof has large leaf with total size of approximately 1KB;
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// * proof does not include outbound lane state proof;
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// * inbound lane already has state, so it needs to be read and decoded;
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// * message is dispatched (reminder: dispatch weight should be minimal);
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// * message requires all heavy checks done by dispatcher.
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//
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// With single KB of messages proof, the weight of the call is increased (roughly) by
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// `(receive_single_message_proof_16KB - receive_single_message_proof_1_kb) / 15`.
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receive_single_message_proof_1_kb {
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let relayer_id_on_source = T::bridged_relayer_id();
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let relayer_id_on_target = account("relayer", 0, SEED);
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T::endow_account(&relayer_id_on_target);
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// mark messages 1..=20 as delivered
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receive_messages::<T, I>(20);
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let (proof, dispatch_weight) = T::prepare_message_proof(MessageProofParams {
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lane: T::bench_lane_id(),
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message_nonces: 21..=21,
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outbound_lane_data: None,
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is_successful_dispatch_expected: false,
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size: StorageProofSize::HasLargeLeaf(1024),
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});
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}: receive_messages_proof(RawOrigin::Signed(relayer_id_on_target), relayer_id_on_source, proof, 1, dispatch_weight)
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verify {
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assert_eq!(
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crate::InboundLanes::<T, I>::get(&T::bench_lane_id()).last_delivered_nonce(),
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21,
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);
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}
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// Benchmark `receive_messages_proof` extrinsic with single minimal-weight message and following conditions:
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// * the proof has large leaf with total size of approximately 16KB;
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// * proof does not include outbound lane state proof;
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// * inbound lane already has state, so it needs to be read and decoded;
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// * message is dispatched (reminder: dispatch weight should be minimal);
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// * message requires all heavy checks done by dispatcher.
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//
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// Size of proof grows because it contains extra trie nodes in it.
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//
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// With single KB of messages proof, the weight of the call is increased (roughly) by
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// `(receive_single_message_proof_16KB - receive_single_message_proof) / 15`.
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receive_single_message_proof_16_kb {
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let relayer_id_on_source = T::bridged_relayer_id();
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let relayer_id_on_target = account("relayer", 0, SEED);
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T::endow_account(&relayer_id_on_target);
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// mark messages 1..=20 as delivered
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receive_messages::<T, I>(20);
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let (proof, dispatch_weight) = T::prepare_message_proof(MessageProofParams {
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lane: T::bench_lane_id(),
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message_nonces: 21..=21,
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outbound_lane_data: None,
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is_successful_dispatch_expected: false,
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size: StorageProofSize::HasLargeLeaf(16 * 1024),
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});
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}: receive_messages_proof(RawOrigin::Signed(relayer_id_on_target), relayer_id_on_source, proof, 1, dispatch_weight)
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verify {
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assert_eq!(
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crate::InboundLanes::<T, I>::get(&T::bench_lane_id()).last_delivered_nonce(),
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21,
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);
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}
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// Benchmark `receive_messages_delivery_proof` extrinsic with following conditions:
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// * single relayer is rewarded for relaying single message;
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// * relayer account does not exist (in practice it needs to exist in production environment).
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//
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// This is base benchmark for all other confirmations delivery benchmarks.
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receive_delivery_proof_for_single_message {
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let relayer_id: T::AccountId = account("relayer", 0, SEED);
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// send message that we're going to confirm
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send_regular_message::<T, I>();
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let relayers_state = UnrewardedRelayersState {
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unrewarded_relayer_entries: 1,
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messages_in_oldest_entry: 1,
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total_messages: 1,
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last_delivered_nonce: 1,
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};
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let proof = T::prepare_message_delivery_proof(MessageDeliveryProofParams {
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lane: T::bench_lane_id(),
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inbound_lane_data: InboundLaneData {
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relayers: vec![UnrewardedRelayer {
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relayer: relayer_id.clone(),
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messages: DeliveredMessages::new(1),
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}].into_iter().collect(),
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last_confirmed_nonce: 0,
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},
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size: StorageProofSize::Minimal(0),
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});
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}: receive_messages_delivery_proof(RawOrigin::Signed(relayer_id.clone()), proof, relayers_state)
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verify {
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assert_eq!(OutboundLanes::<T, I>::get(T::bench_lane_id()).latest_received_nonce, 1);
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assert!(T::is_relayer_rewarded(&relayer_id));
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}
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// Benchmark `receive_messages_delivery_proof` extrinsic with following conditions:
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// * single relayer is rewarded for relaying two messages;
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// * relayer account does not exist (in practice it needs to exist in production environment).
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//
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// Additional weight for paying single-message reward to the same relayer could be computed
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// as `weight(receive_delivery_proof_for_two_messages_by_single_relayer)
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// - weight(receive_delivery_proof_for_single_message)`.
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receive_delivery_proof_for_two_messages_by_single_relayer {
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let relayer_id: T::AccountId = account("relayer", 0, SEED);
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// send message that we're going to confirm
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send_regular_message::<T, I>();
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send_regular_message::<T, I>();
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let relayers_state = UnrewardedRelayersState {
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unrewarded_relayer_entries: 1,
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messages_in_oldest_entry: 2,
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total_messages: 2,
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last_delivered_nonce: 2,
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};
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let mut delivered_messages = DeliveredMessages::new(1);
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delivered_messages.note_dispatched_message();
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let proof = T::prepare_message_delivery_proof(MessageDeliveryProofParams {
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lane: T::bench_lane_id(),
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inbound_lane_data: InboundLaneData {
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relayers: vec![UnrewardedRelayer {
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relayer: relayer_id.clone(),
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messages: delivered_messages,
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}].into_iter().collect(),
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last_confirmed_nonce: 0,
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},
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size: StorageProofSize::Minimal(0),
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});
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}: receive_messages_delivery_proof(RawOrigin::Signed(relayer_id.clone()), proof, relayers_state)
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verify {
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assert_eq!(OutboundLanes::<T, I>::get(T::bench_lane_id()).latest_received_nonce, 2);
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assert!(T::is_relayer_rewarded(&relayer_id));
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}
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// Benchmark `receive_messages_delivery_proof` extrinsic with following conditions:
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// * two relayers are rewarded for relaying single message each;
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// * relayer account does not exist (in practice it needs to exist in production environment).
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//
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// Additional weight for paying reward to the next relayer could be computed
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// as `weight(receive_delivery_proof_for_two_messages_by_two_relayers)
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// - weight(receive_delivery_proof_for_two_messages_by_single_relayer)`.
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receive_delivery_proof_for_two_messages_by_two_relayers {
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let relayer1_id: T::AccountId = account("relayer1", 1, SEED);
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let relayer2_id: T::AccountId = account("relayer2", 2, SEED);
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// send message that we're going to confirm
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send_regular_message::<T, I>();
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send_regular_message::<T, I>();
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let relayers_state = UnrewardedRelayersState {
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unrewarded_relayer_entries: 2,
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messages_in_oldest_entry: 1,
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total_messages: 2,
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last_delivered_nonce: 2,
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};
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let proof = T::prepare_message_delivery_proof(MessageDeliveryProofParams {
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lane: T::bench_lane_id(),
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inbound_lane_data: InboundLaneData {
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relayers: vec![
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UnrewardedRelayer {
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relayer: relayer1_id.clone(),
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messages: DeliveredMessages::new(1),
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},
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UnrewardedRelayer {
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relayer: relayer2_id.clone(),
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messages: DeliveredMessages::new(2),
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},
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].into_iter().collect(),
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last_confirmed_nonce: 0,
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},
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size: StorageProofSize::Minimal(0),
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});
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}: receive_messages_delivery_proof(RawOrigin::Signed(relayer1_id.clone()), proof, relayers_state)
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verify {
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assert_eq!(OutboundLanes::<T, I>::get(T::bench_lane_id()).latest_received_nonce, 2);
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assert!(T::is_relayer_rewarded(&relayer1_id));
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assert!(T::is_relayer_rewarded(&relayer2_id));
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}
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//
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// Benchmarks that the runtime developers may use for proper pallet configuration.
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//
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// This benchmark is optional and may be used when runtime developer need a way to compute
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// message dispatch weight. In this case, he needs to provide messages that can go the whole
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// dispatch
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//
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// Benchmark `receive_messages_proof` extrinsic with single message and following conditions:
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//
|
||||
// * proof does not include outbound lane state proof;
|
||||
// * inbound lane already has state, so it needs to be read and decoded;
|
||||
// * message is **SUCCESSFULLY** dispatched;
|
||||
// * message requires all heavy checks done by dispatcher.
|
||||
receive_single_message_proof_with_dispatch {
|
||||
// maybe dispatch weight relies on the message size too?
|
||||
let i in EXPECTED_DEFAULT_MESSAGE_LENGTH .. EXPECTED_DEFAULT_MESSAGE_LENGTH * 16;
|
||||
|
||||
let relayer_id_on_source = T::bridged_relayer_id();
|
||||
let relayer_id_on_target = account("relayer", 0, SEED);
|
||||
T::endow_account(&relayer_id_on_target);
|
||||
|
||||
// mark messages 1..=20 as delivered
|
||||
receive_messages::<T, I>(20);
|
||||
|
||||
let (proof, dispatch_weight) = T::prepare_message_proof(MessageProofParams {
|
||||
lane: T::bench_lane_id(),
|
||||
message_nonces: 21..=21,
|
||||
outbound_lane_data: None,
|
||||
is_successful_dispatch_expected: true,
|
||||
size: StorageProofSize::Minimal(i),
|
||||
});
|
||||
}: receive_messages_proof(RawOrigin::Signed(relayer_id_on_target), relayer_id_on_source, proof, 1, dispatch_weight)
|
||||
verify {
|
||||
assert_eq!(
|
||||
crate::InboundLanes::<T, I>::get(&T::bench_lane_id()).last_delivered_nonce(),
|
||||
21,
|
||||
);
|
||||
assert!(T::is_message_successfully_dispatched(21));
|
||||
}
|
||||
|
||||
impl_benchmark_test_suite!(Pallet, crate::mock::new_test_ext(), crate::mock::TestRuntime)
|
||||
}
|
||||
|
||||
fn send_regular_message<T: Config<I>, I: 'static>() {
|
||||
let mut outbound_lane = outbound_lane::<T, I>(T::bench_lane_id());
|
||||
outbound_lane.send_message(BoundedVec::try_from(vec![]).expect("We craft valid messages"));
|
||||
}
|
||||
|
||||
fn receive_messages<T: Config<I>, I: 'static>(nonce: MessageNonce) {
|
||||
let mut inbound_lane_storage =
|
||||
RuntimeInboundLaneStorage::<T, I>::from_lane_id(T::bench_lane_id());
|
||||
inbound_lane_storage.set_data(InboundLaneData {
|
||||
relayers: vec![UnrewardedRelayer {
|
||||
relayer: T::bridged_relayer_id(),
|
||||
messages: DeliveredMessages::new(nonce),
|
||||
}]
|
||||
.into_iter()
|
||||
.collect(),
|
||||
last_confirmed_nonce: 0,
|
||||
});
|
||||
}
|
||||
Reference in New Issue
Block a user