mirror of
https://github.com/pezkuwichain/pezkuwi-subxt.git
synced 2026-05-31 07:31:02 +00:00
a33d7922f8
* Rename `polkadot-parachain` to `polkadot-parachain-primitives` While doing this it also fixes some last `rustdoc` issues and fixes another Cargo warning related to `pallet-paged-list`. * Fix compilation * ".git/.scripts/commands/fmt/fmt.sh" * Fix XCM docs --------- Co-authored-by: command-bot <>
448 lines
14 KiB
Rust
448 lines
14 KiB
Rust
// Copyright (C) Parity Technologies (UK) Ltd.
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// This file is part of Polkadot.
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// Polkadot 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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// Polkadot 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 Polkadot. If not, see <http://www.gnu.org/licenses/>.
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//! Test kit to simulate cross-chain message passing and XCM execution.
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pub use codec::Encode;
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pub use paste;
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pub use frame_support::{
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traits::{EnqueueMessage, Get, ProcessMessage, ProcessMessageError, ServiceQueues},
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weights::{Weight, WeightMeter},
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};
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pub use sp_io::{hashing::blake2_256, TestExternalities};
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pub use sp_std::{cell::RefCell, collections::vec_deque::VecDeque, marker::PhantomData};
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pub use polkadot_core_primitives::BlockNumber as RelayBlockNumber;
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pub use polkadot_parachain_primitives::primitives::{
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DmpMessageHandler as DmpMessageHandlerT, Id as ParaId, XcmpMessageFormat,
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XcmpMessageHandler as XcmpMessageHandlerT,
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};
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pub use polkadot_runtime_parachains::{
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dmp,
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inclusion::{AggregateMessageOrigin, UmpQueueId},
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};
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pub use xcm::{latest::prelude::*, VersionedXcm};
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pub use xcm_builder::ProcessXcmMessage;
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pub use xcm_executor::XcmExecutor;
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pub trait TestExt {
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/// Initialize the test environment.
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fn new_ext() -> sp_io::TestExternalities;
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/// Resets the state of the test environment.
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fn reset_ext();
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/// Execute code in the context of the test externalities, without automatic
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/// message processing. All messages in the message buses can be processed
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/// by calling `Self::dispatch_xcm_buses()`.
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fn execute_without_dispatch<R>(execute: impl FnOnce() -> R) -> R;
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/// Process all messages in the message buses
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fn dispatch_xcm_buses();
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/// Execute some code in the context of the test externalities, with
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/// automatic message processing.
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/// Messages are dispatched once the passed closure completes.
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fn execute_with<R>(execute: impl FnOnce() -> R) -> R {
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let result = Self::execute_without_dispatch(execute);
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Self::dispatch_xcm_buses();
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result
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}
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}
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pub enum MessageKind {
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Ump,
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Dmp,
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Xcmp,
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}
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/// Encodes the provided XCM message based on the `message_kind`.
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pub fn encode_xcm(message: Xcm<()>, message_kind: MessageKind) -> Vec<u8> {
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match message_kind {
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MessageKind::Ump | MessageKind::Dmp => VersionedXcm::<()>::from(message).encode(),
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MessageKind::Xcmp => {
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let fmt = XcmpMessageFormat::ConcatenatedVersionedXcm;
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let mut outbound = fmt.encode();
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let encoded = VersionedXcm::<()>::from(message).encode();
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outbound.extend_from_slice(&encoded[..]);
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outbound
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},
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}
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}
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pub fn fake_message_hash<T>(message: &Xcm<T>) -> XcmHash {
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message.using_encoded(blake2_256)
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}
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/// The macro is implementing upward message passing(UMP) for the provided relay
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/// chain struct. The struct has to provide the XCM configuration for the relay
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/// chain.
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///
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/// ```ignore
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/// decl_test_relay_chain! {
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/// pub struct Relay {
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/// Runtime = relay_chain::Runtime,
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/// XcmConfig = relay_chain::XcmConfig,
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/// new_ext = relay_ext(),
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/// }
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/// }
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/// ```
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#[macro_export]
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#[rustfmt::skip]
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macro_rules! decl_test_relay_chain {
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(
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pub struct $name:ident {
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Runtime = $runtime:path,
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RuntimeCall = $runtime_call:path,
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RuntimeEvent = $runtime_event:path,
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XcmConfig = $xcm_config:path,
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MessageQueue = $mq:path,
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System = $system:path,
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new_ext = $new_ext:expr,
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}
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) => {
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pub struct $name;
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$crate::__impl_ext!($name, $new_ext);
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impl $crate::ProcessMessage for $name {
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type Origin = $crate::ParaId;
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fn process_message(
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msg: &[u8],
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para: Self::Origin,
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meter: &mut $crate::WeightMeter,
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id: &mut [u8; 32],
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) -> Result<bool, $crate::ProcessMessageError> {
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use $crate::{Weight, AggregateMessageOrigin, UmpQueueId, ServiceQueues, EnqueueMessage};
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use $mq as message_queue;
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use $runtime_event as runtime_event;
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Self::execute_with(|| {
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<$mq as EnqueueMessage<AggregateMessageOrigin>>::enqueue_message(
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msg.try_into().expect("Message too long"),
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AggregateMessageOrigin::Ump(UmpQueueId::Para(para.clone()))
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);
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<$system>::reset_events();
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<$mq as ServiceQueues>::service_queues(Weight::MAX);
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let events = <$system>::events();
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let event = events.last().expect("There must be at least one event");
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match &event.event {
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runtime_event::MessageQueue(
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pallet_message_queue::Event::Processed {origin, ..}) => {
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assert_eq!(origin, &AggregateMessageOrigin::Ump(UmpQueueId::Para(para)));
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},
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event => panic!("Unexpected event: {:#?}", event),
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}
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Ok(true)
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})
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}
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}
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};
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}
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/// The macro is implementing the `XcmMessageHandlerT` and `DmpMessageHandlerT`
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/// traits for the provided parachain struct. Expects the provided parachain
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/// struct to define the XcmpMessageHandler and DmpMessageHandler pallets that
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/// contain the message handling logic.
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///
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/// ```ignore
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/// decl_test_parachain! {
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/// pub struct ParaA {
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/// Runtime = parachain::Runtime,
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/// XcmpMessageHandler = parachain::MsgQueue,
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/// DmpMessageHandler = parachain::MsgQueue,
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/// new_ext = para_ext(),
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/// }
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/// }
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/// ```
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#[macro_export]
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macro_rules! decl_test_parachain {
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(
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pub struct $name:ident {
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Runtime = $runtime:path,
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XcmpMessageHandler = $xcmp_message_handler:path,
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DmpMessageHandler = $dmp_message_handler:path,
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new_ext = $new_ext:expr,
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}
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) => {
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pub struct $name;
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$crate::__impl_ext!($name, $new_ext);
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impl $crate::XcmpMessageHandlerT for $name {
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fn handle_xcmp_messages<
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'a,
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I: Iterator<Item = ($crate::ParaId, $crate::RelayBlockNumber, &'a [u8])>,
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>(
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iter: I,
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max_weight: $crate::Weight,
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) -> $crate::Weight {
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use $crate::{TestExt, XcmpMessageHandlerT};
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$name::execute_with(|| {
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<$xcmp_message_handler>::handle_xcmp_messages(iter, max_weight)
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})
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}
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}
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impl $crate::DmpMessageHandlerT for $name {
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fn handle_dmp_messages(
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iter: impl Iterator<Item = ($crate::RelayBlockNumber, Vec<u8>)>,
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max_weight: $crate::Weight,
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) -> $crate::Weight {
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use $crate::{DmpMessageHandlerT, TestExt};
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$name::execute_with(|| {
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<$dmp_message_handler>::handle_dmp_messages(iter, max_weight)
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})
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}
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}
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};
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}
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/// Implements the `TestExt` trait for a specified struct.
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#[macro_export]
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macro_rules! __impl_ext {
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// entry point: generate ext name
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($name:ident, $new_ext:expr) => {
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$crate::paste::paste! {
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$crate::__impl_ext!(@impl $name, $new_ext, [<EXT_ $name:upper>]);
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}
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};
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// impl
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(@impl $name:ident, $new_ext:expr, $ext_name:ident) => {
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thread_local! {
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pub static $ext_name: $crate::RefCell<$crate::TestExternalities>
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= $crate::RefCell::new($new_ext);
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}
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impl $crate::TestExt for $name {
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fn new_ext() -> $crate::TestExternalities {
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$new_ext
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}
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fn reset_ext() {
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$ext_name.with(|v| *v.borrow_mut() = $new_ext);
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}
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fn execute_without_dispatch<R>(execute: impl FnOnce() -> R) -> R {
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$ext_name.with(|v| v.borrow_mut().execute_with(execute))
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}
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fn dispatch_xcm_buses() {
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while exists_messages_in_any_bus() {
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if let Err(xcm_error) = process_relay_messages() {
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panic!("Relay chain XCM execution failure: {:?}", xcm_error);
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}
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if let Err(xcm_error) = process_para_messages() {
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panic!("Parachain XCM execution failure: {:?}", xcm_error);
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}
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}
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}
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}
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};
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}
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thread_local! {
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pub static PARA_MESSAGE_BUS: RefCell<VecDeque<(ParaId, MultiLocation, Xcm<()>)>>
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= RefCell::new(VecDeque::new());
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pub static RELAY_MESSAGE_BUS: RefCell<VecDeque<(MultiLocation, Xcm<()>)>>
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= RefCell::new(VecDeque::new());
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}
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/// Declares a test network that consists of a relay chain and multiple
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/// parachains. Expects a network struct as an argument and implements testing
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/// functionality, `ParachainXcmRouter` and the `RelayChainXcmRouter`. The
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/// struct needs to contain the relay chain struct and an indexed list of
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/// parachains that are going to be in the network.
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///
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/// ```ignore
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/// decl_test_network! {
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/// pub struct ExampleNet {
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/// relay_chain = Relay,
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/// parachains = vec![
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/// (1, ParaA),
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/// (2, ParaB),
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/// ],
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/// }
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/// }
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/// ```
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#[macro_export]
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macro_rules! decl_test_network {
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(
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pub struct $name:ident {
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relay_chain = $relay_chain:ty,
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parachains = vec![ $( ($para_id:expr, $parachain:ty), )* ],
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}
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) => {
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use $crate::Encode;
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pub struct $name;
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impl $name {
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pub fn reset() {
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use $crate::{TestExt, VecDeque};
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// Reset relay chain message bus.
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$crate::RELAY_MESSAGE_BUS.with(|b| b.replace(VecDeque::new()));
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// Reset parachain message bus.
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$crate::PARA_MESSAGE_BUS.with(|b| b.replace(VecDeque::new()));
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<$relay_chain>::reset_ext();
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$( <$parachain>::reset_ext(); )*
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}
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}
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/// Check if any messages exist in either message bus.
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fn exists_messages_in_any_bus() -> bool {
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use $crate::{RELAY_MESSAGE_BUS, PARA_MESSAGE_BUS};
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let no_relay_messages_left = RELAY_MESSAGE_BUS.with(|b| b.borrow().is_empty());
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let no_parachain_messages_left = PARA_MESSAGE_BUS.with(|b| b.borrow().is_empty());
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!(no_relay_messages_left && no_parachain_messages_left)
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}
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/// Process all messages originating from parachains.
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fn process_para_messages() -> $crate::XcmResult {
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use $crate::{ProcessMessage, XcmpMessageHandlerT};
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while let Some((para_id, destination, message)) = $crate::PARA_MESSAGE_BUS.with(
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|b| b.borrow_mut().pop_front()) {
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match destination.interior() {
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$crate::Junctions::Here if destination.parent_count() == 1 => {
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let encoded = $crate::encode_xcm(message, $crate::MessageKind::Ump);
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let mut _id = [0; 32];
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let r = <$relay_chain>::process_message(
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encoded.as_slice(), para_id,
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&mut $crate::WeightMeter::max_limit(),
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&mut _id,
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);
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match r {
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Err($crate::ProcessMessageError::Overweight(required)) =>
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return Err($crate::XcmError::WeightLimitReached(required)),
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// Not really the correct error, but there is no "undecodable".
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Err(_) => return Err($crate::XcmError::Unimplemented),
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Ok(_) => (),
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}
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},
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$(
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$crate::X1($crate::Parachain(id)) if *id == $para_id && destination.parent_count() == 1 => {
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let encoded = $crate::encode_xcm(message, $crate::MessageKind::Xcmp);
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let messages = vec![(para_id, 1, &encoded[..])];
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let _weight = <$parachain>::handle_xcmp_messages(
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messages.into_iter(),
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$crate::Weight::MAX,
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);
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},
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)*
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_ => {
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return Err($crate::XcmError::Unroutable);
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}
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}
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}
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Ok(())
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}
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/// Process all messages originating from the relay chain.
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fn process_relay_messages() -> $crate::XcmResult {
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use $crate::DmpMessageHandlerT;
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while let Some((destination, message)) = $crate::RELAY_MESSAGE_BUS.with(
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|b| b.borrow_mut().pop_front()) {
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match destination.interior() {
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$(
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$crate::X1($crate::Parachain(id)) if *id == $para_id && destination.parent_count() == 0 => {
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let encoded = $crate::encode_xcm(message, $crate::MessageKind::Dmp);
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// NOTE: RelayChainBlockNumber is hard-coded to 1
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let messages = vec![(1, encoded)];
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let _weight = <$parachain>::handle_dmp_messages(
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messages.into_iter(), $crate::Weight::MAX,
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);
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},
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)*
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_ => return Err($crate::XcmError::Transport("Only sends to children parachain.")),
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}
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}
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Ok(())
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}
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/// XCM router for parachain.
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pub struct ParachainXcmRouter<T>($crate::PhantomData<T>);
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impl<T: $crate::Get<$crate::ParaId>> $crate::SendXcm for ParachainXcmRouter<T> {
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type Ticket = ($crate::ParaId, $crate::MultiLocation, $crate::Xcm<()>);
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fn validate(
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destination: &mut Option<$crate::MultiLocation>,
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message: &mut Option<$crate::Xcm<()>>,
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) -> $crate::SendResult<($crate::ParaId, $crate::MultiLocation, $crate::Xcm<()>)> {
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use $crate::XcmpMessageHandlerT;
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let d = destination.take().ok_or($crate::SendError::MissingArgument)?;
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match (d.interior(), d.parent_count()) {
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($crate::Junctions::Here, 1) => {},
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$(
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($crate::X1($crate::Parachain(id)), 1) if id == &$para_id => {}
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)*
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_ => {
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*destination = Some(d);
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return Err($crate::SendError::NotApplicable)
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},
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}
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let m = message.take().ok_or($crate::SendError::MissingArgument)?;
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Ok(((T::get(), d, m), $crate::MultiAssets::new()))
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}
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fn deliver(
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triple: ($crate::ParaId, $crate::MultiLocation, $crate::Xcm<()>),
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) -> Result<$crate::XcmHash, $crate::SendError> {
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let hash = $crate::fake_message_hash(&triple.2);
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$crate::PARA_MESSAGE_BUS.with(|b| b.borrow_mut().push_back(triple));
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Ok(hash)
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}
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}
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/// XCM router for relay chain.
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pub struct RelayChainXcmRouter;
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impl $crate::SendXcm for RelayChainXcmRouter {
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type Ticket = ($crate::MultiLocation, $crate::Xcm<()>);
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fn validate(
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destination: &mut Option<$crate::MultiLocation>,
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message: &mut Option<$crate::Xcm<()>>,
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) -> $crate::SendResult<($crate::MultiLocation, $crate::Xcm<()>)> {
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use $crate::DmpMessageHandlerT;
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let d = destination.take().ok_or($crate::SendError::MissingArgument)?;
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match (d.interior(), d.parent_count()) {
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$(
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($crate::X1($crate::Parachain(id)), 0) if id == &$para_id => {},
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)*
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_ => {
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*destination = Some(d);
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return Err($crate::SendError::NotApplicable)
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},
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}
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let m = message.take().ok_or($crate::SendError::MissingArgument)?;
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Ok(((d, m), $crate::MultiAssets::new()))
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}
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fn deliver(
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pair: ($crate::MultiLocation, $crate::Xcm<()>),
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) -> Result<$crate::XcmHash, $crate::SendError> {
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let hash = $crate::fake_message_hash(&pair.1);
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$crate::RELAY_MESSAGE_BUS.with(|b| b.borrow_mut().push_back(pair));
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Ok(hash)
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}
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}
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};
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}
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