mirror of
https://github.com/pezkuwichain/pezkuwi-subxt.git
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0c7ce723ad
* Do not assume `AssetId`s are `Copy`
* update lockfile for {"substrate", "polkadot"}
---------
Co-authored-by: parity-processbot <>
542 lines
18 KiB
Rust
542 lines
18 KiB
Rust
// Copyright 2020-2021 Parity Technologies (UK) Ltd.
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// This file is part of Cumulus.
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// Substrate 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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// Substrate 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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//! Helper datatypes for cumulus. This includes the [`ParentAsUmp`] routing type which will route
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//! messages into an [`UpwardMessageSender`] if the destination is `Parent`.
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#![cfg_attr(not(feature = "std"), no_std)]
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use codec::Encode;
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use cumulus_primitives_core::{MessageSendError, UpwardMessageSender};
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use frame_support::{
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traits::{
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tokens::{fungibles, fungibles::Inspect},
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Get,
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},
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weights::Weight,
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};
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use polkadot_runtime_common::xcm_sender::ConstantPrice;
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use sp_runtime::{traits::Saturating, SaturatedConversion};
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use sp_std::{marker::PhantomData, prelude::*};
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use xcm::{latest::prelude::*, WrapVersion};
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use xcm_builder::TakeRevenue;
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use xcm_executor::traits::{MatchesFungibles, TransactAsset, WeightTrader};
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pub trait PriceForParentDelivery {
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fn price_for_parent_delivery(message: &Xcm<()>) -> MultiAssets;
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}
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impl PriceForParentDelivery for () {
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fn price_for_parent_delivery(_: &Xcm<()>) -> MultiAssets {
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MultiAssets::new()
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}
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}
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impl<T: Get<MultiAssets>> PriceForParentDelivery for ConstantPrice<T> {
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fn price_for_parent_delivery(_: &Xcm<()>) -> MultiAssets {
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T::get()
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}
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}
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/// Xcm router which recognises the `Parent` destination and handles it by sending the message into
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/// the given UMP `UpwardMessageSender` implementation. Thus this essentially adapts an
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/// `UpwardMessageSender` trait impl into a `SendXcm` trait impl.
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///
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/// NOTE: This is a pretty dumb "just send it" router; we will probably want to introduce queuing
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/// to UMP eventually and when we do, the pallet which implements the queuing will be responsible
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/// for the `SendXcm` implementation.
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pub struct ParentAsUmp<T, W, P>(PhantomData<(T, W, P)>);
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impl<T, W, P> SendXcm for ParentAsUmp<T, W, P>
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where
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T: UpwardMessageSender,
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W: WrapVersion,
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P: PriceForParentDelivery,
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{
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type Ticket = Vec<u8>;
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fn validate(
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dest: &mut Option<MultiLocation>,
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msg: &mut Option<Xcm<()>>,
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) -> SendResult<Vec<u8>> {
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let d = dest.take().ok_or(SendError::MissingArgument)?;
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if d.contains_parents_only(1) {
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// An upward message for the relay chain.
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let xcm = msg.take().ok_or(SendError::MissingArgument)?;
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let price = P::price_for_parent_delivery(&xcm);
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let versioned_xcm =
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W::wrap_version(&d, xcm).map_err(|()| SendError::DestinationUnsupported)?;
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let data = versioned_xcm.encode();
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Ok((data, price))
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} else {
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// Anything else is unhandled. This includes a message that is not meant for us.
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// We need to make sure that dest/msg is not consumed here.
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*dest = Some(d);
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Err(SendError::NotApplicable)
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}
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}
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fn deliver(data: Vec<u8>) -> Result<XcmHash, SendError> {
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let (_, hash) = T::send_upward_message(data).map_err(|e| match e {
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MessageSendError::TooBig => SendError::ExceedsMaxMessageSize,
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e => SendError::Transport(e.into()),
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})?;
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Ok(hash)
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}
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}
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/// Contains information to handle refund/payment for xcm-execution
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#[derive(Clone, Eq, PartialEq, Debug)]
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struct AssetTraderRefunder {
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// The amount of weight bought minus the weigh already refunded
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weight_outstanding: Weight,
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// The concrete asset containing the asset location and outstanding balance
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outstanding_concrete_asset: MultiAsset,
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}
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/// Charges for execution in the first multiasset of those selected for fee payment
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/// Only succeeds for Concrete Fungible Assets
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/// First tries to convert the this MultiAsset into a local assetId
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/// Then charges for this assetId as described by FeeCharger
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/// Weight, paid balance, local asset Id and the multilocation is stored for
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/// later refund purposes
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/// Important: Errors if the Trader is being called twice by 2 BuyExecution instructions
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/// Alternatively we could just return payment in the aforementioned case
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pub struct TakeFirstAssetTrader<
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AccountId,
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FeeCharger: ChargeWeightInFungibles<AccountId, ConcreteAssets>,
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Matcher: MatchesFungibles<ConcreteAssets::AssetId, ConcreteAssets::Balance>,
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ConcreteAssets: fungibles::Mutate<AccountId> + fungibles::Balanced<AccountId>,
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HandleRefund: TakeRevenue,
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>(
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Option<AssetTraderRefunder>,
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PhantomData<(AccountId, FeeCharger, Matcher, ConcreteAssets, HandleRefund)>,
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);
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impl<
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AccountId,
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FeeCharger: ChargeWeightInFungibles<AccountId, ConcreteAssets>,
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Matcher: MatchesFungibles<ConcreteAssets::AssetId, ConcreteAssets::Balance>,
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ConcreteAssets: fungibles::Mutate<AccountId> + fungibles::Balanced<AccountId>,
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HandleRefund: TakeRevenue,
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> WeightTrader
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for TakeFirstAssetTrader<AccountId, FeeCharger, Matcher, ConcreteAssets, HandleRefund>
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{
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fn new() -> Self {
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Self(None, PhantomData)
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}
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// We take first multiasset
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// Check whether we can convert fee to asset_fee (is_sufficient, min_deposit)
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// If everything goes well, we charge.
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fn buy_weight(
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&mut self,
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weight: Weight,
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payment: xcm_executor::Assets,
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) -> Result<xcm_executor::Assets, XcmError> {
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log::trace!(target: "xcm::weight", "TakeFirstAssetTrader::buy_weight weight: {:?}, payment: {:?}", weight, payment);
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// Make sure we dont enter twice
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if self.0.is_some() {
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return Err(XcmError::NotWithdrawable)
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}
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// We take the very first multiasset from payment
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// (assets are sorted by fungibility/amount after this conversion)
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let multiassets: MultiAssets = payment.clone().into();
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// Take the first multiasset from the selected MultiAssets
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let first = multiassets.get(0).ok_or(XcmError::AssetNotFound)?;
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// Get the local asset id in which we can pay for fees
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let (local_asset_id, _) =
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Matcher::matches_fungibles(first).map_err(|_| XcmError::AssetNotFound)?;
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// Calculate how much we should charge in the asset_id for such amount of weight
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// Require at least a payment of minimum_balance
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// Necessary for fully collateral-backed assets
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let asset_balance: u128 =
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FeeCharger::charge_weight_in_fungibles(local_asset_id.clone(), weight)
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.map(|amount| {
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let minimum_balance = ConcreteAssets::minimum_balance(local_asset_id);
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if amount < minimum_balance {
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minimum_balance
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} else {
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amount
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}
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})?
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.try_into()
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.map_err(|_| XcmError::Overflow)?;
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// Convert to the same kind of multiasset, with the required fungible balance
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let required = first.id.into_multiasset(asset_balance.into());
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// Substract payment
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let unused = payment.checked_sub(required.clone()).map_err(|_| XcmError::TooExpensive)?;
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// record weight and multiasset
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self.0 = Some(AssetTraderRefunder {
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weight_outstanding: weight,
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outstanding_concrete_asset: required,
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});
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Ok(unused)
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}
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fn refund_weight(&mut self, weight: Weight) -> Option<MultiAsset> {
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log::trace!(target: "xcm::weight", "TakeFirstAssetTrader::refund_weight weight: {:?}", weight);
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if let Some(AssetTraderRefunder {
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mut weight_outstanding,
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outstanding_concrete_asset: MultiAsset { id, fun },
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}) = self.0.clone()
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{
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// Get the local asset id in which we can refund fees
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let (local_asset_id, outstanding_balance) =
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Matcher::matches_fungibles(&(id, fun).into()).ok()?;
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let minimum_balance = ConcreteAssets::minimum_balance(local_asset_id.clone());
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// Calculate asset_balance
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// This read should have already be cached in buy_weight
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let (asset_balance, outstanding_minus_substracted) =
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FeeCharger::charge_weight_in_fungibles(local_asset_id, weight).ok().map(
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|asset_balance| {
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// Require at least a drop of minimum_balance
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// Necessary for fully collateral-backed assets
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if outstanding_balance.saturating_sub(asset_balance) > minimum_balance {
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(asset_balance, outstanding_balance.saturating_sub(asset_balance))
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}
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// If the amount to be refunded leaves the remaining balance below ED,
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// we just refund the exact amount that guarantees at least ED will be
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// dropped
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else {
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(outstanding_balance.saturating_sub(minimum_balance), minimum_balance)
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}
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},
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)?;
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// Convert balances into u128
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let outstanding_minus_substracted: u128 =
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outstanding_minus_substracted.saturated_into();
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let asset_balance: u128 = asset_balance.saturated_into();
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// Construct outstanding_concrete_asset with the same location id and substracted balance
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let outstanding_concrete_asset: MultiAsset = (id, outstanding_minus_substracted).into();
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// Substract from existing weight and balance
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weight_outstanding = weight_outstanding.saturating_sub(weight);
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// Override AssetTraderRefunder
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self.0 = Some(AssetTraderRefunder { weight_outstanding, outstanding_concrete_asset });
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// Only refund if positive
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if asset_balance > 0 {
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Some((id, asset_balance).into())
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} else {
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None
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}
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} else {
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None
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}
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}
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}
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impl<
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AccountId,
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FeeCharger: ChargeWeightInFungibles<AccountId, ConcreteAssets>,
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Matcher: MatchesFungibles<ConcreteAssets::AssetId, ConcreteAssets::Balance>,
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ConcreteAssets: fungibles::Mutate<AccountId> + fungibles::Balanced<AccountId>,
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HandleRefund: TakeRevenue,
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> Drop for TakeFirstAssetTrader<AccountId, FeeCharger, Matcher, ConcreteAssets, HandleRefund>
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{
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fn drop(&mut self) {
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if let Some(asset_trader) = self.0.clone() {
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HandleRefund::take_revenue(asset_trader.outstanding_concrete_asset);
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}
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}
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}
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/// XCM fee depositor to which we implement the TakeRevenue trait
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/// It receives a Transact implemented argument, a 32 byte convertible acocuntId, and the fee receiver account
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/// FungiblesMutateAdapter should be identical to that implemented by WithdrawAsset
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pub struct XcmFeesTo32ByteAccount<FungiblesMutateAdapter, AccountId, ReceiverAccount>(
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PhantomData<(FungiblesMutateAdapter, AccountId, ReceiverAccount)>,
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);
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impl<
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FungiblesMutateAdapter: TransactAsset,
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AccountId: Clone + Into<[u8; 32]>,
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ReceiverAccount: frame_support::traits::Get<Option<AccountId>>,
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> TakeRevenue for XcmFeesTo32ByteAccount<FungiblesMutateAdapter, AccountId, ReceiverAccount>
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{
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fn take_revenue(revenue: MultiAsset) {
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if let Some(receiver) = ReceiverAccount::get() {
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let ok = FungiblesMutateAdapter::deposit_asset(
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&revenue,
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&(X1(AccountId32 { network: None, id: receiver.into() }).into()),
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// We aren't able to track the XCM that initiated the fee deposit, so we create a
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// fake message hash here
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&XcmContext::with_message_hash([0; 32]),
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)
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.is_ok();
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debug_assert!(ok, "`deposit_asset` cannot generally fail; qed");
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}
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}
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}
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/// ChargeWeightInFungibles trait, which converts a given amount of weight
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/// and an assetId, and it returns the balance amount that should be charged
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/// in such assetId for that amount of weight
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pub trait ChargeWeightInFungibles<AccountId, Assets: fungibles::Inspect<AccountId>> {
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fn charge_weight_in_fungibles(
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asset_id: <Assets as Inspect<AccountId>>::AssetId,
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weight: Weight,
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) -> Result<<Assets as Inspect<AccountId>>::Balance, XcmError>;
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}
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#[cfg(test)]
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mod tests {
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use super::*;
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use cumulus_primitives_core::UpwardMessage;
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use frame_support::{
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assert_ok,
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dispatch::DispatchError,
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traits::tokens::{
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DepositConsequence, Fortitude, Preservation, Provenance, WithdrawConsequence,
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},
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};
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use xcm_executor::{traits::Error, Assets};
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/// Validates [`validate`] for required Some(destination) and Some(message)
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struct OkFixedXcmHashWithAssertingRequiredInputsSender;
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impl OkFixedXcmHashWithAssertingRequiredInputsSender {
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const FIXED_XCM_HASH: [u8; 32] = [9; 32];
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fn fixed_delivery_asset() -> MultiAssets {
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MultiAssets::new()
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}
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fn expected_delivery_result() -> Result<(XcmHash, MultiAssets), SendError> {
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Ok((Self::FIXED_XCM_HASH, Self::fixed_delivery_asset()))
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}
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}
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impl SendXcm for OkFixedXcmHashWithAssertingRequiredInputsSender {
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type Ticket = ();
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fn validate(
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destination: &mut Option<MultiLocation>,
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message: &mut Option<Xcm<()>>,
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) -> SendResult<Self::Ticket> {
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assert!(destination.is_some());
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assert!(message.is_some());
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Ok(((), OkFixedXcmHashWithAssertingRequiredInputsSender::fixed_delivery_asset()))
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}
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fn deliver(_: Self::Ticket) -> Result<XcmHash, SendError> {
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Ok(Self::FIXED_XCM_HASH)
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}
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}
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/// Impl [`UpwardMessageSender`] that return `Other` error
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struct OtherErrorUpwardMessageSender;
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impl UpwardMessageSender for OtherErrorUpwardMessageSender {
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fn send_upward_message(_: UpwardMessage) -> Result<(u32, XcmHash), MessageSendError> {
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Err(MessageSendError::Other)
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}
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}
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#[test]
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fn parent_as_ump_does_not_consume_dest_or_msg_on_not_applicable() {
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// dummy message
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let message = Xcm(vec![Trap(5)]);
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// ParentAsUmp - check dest is really not applicable
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let dest = (Parent, Parent, Parent);
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let mut dest_wrapper = Some(dest.into());
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let mut msg_wrapper = Some(message.clone());
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assert_eq!(
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Err(SendError::NotApplicable),
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<ParentAsUmp<(), (), ()> as SendXcm>::validate(&mut dest_wrapper, &mut msg_wrapper)
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);
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// check wrapper were not consumed
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assert_eq!(Some(dest.into()), dest_wrapper.take());
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assert_eq!(Some(message.clone()), msg_wrapper.take());
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// another try with router chain with asserting sender
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assert_eq!(
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OkFixedXcmHashWithAssertingRequiredInputsSender::expected_delivery_result(),
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send_xcm::<(ParentAsUmp<(), (), ()>, OkFixedXcmHashWithAssertingRequiredInputsSender)>(
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dest.into(),
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message
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)
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);
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}
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#[test]
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fn parent_as_ump_consumes_dest_and_msg_on_ok_validate() {
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// dummy message
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let message = Xcm(vec![Trap(5)]);
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// ParentAsUmp - check dest/msg is valid
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let dest = (Parent, Here);
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let mut dest_wrapper = Some(dest.into());
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let mut msg_wrapper = Some(message.clone());
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assert!(<ParentAsUmp<(), (), ()> as SendXcm>::validate(
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&mut dest_wrapper,
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&mut msg_wrapper
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)
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.is_ok());
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// check wrapper were consumed
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assert_eq!(None, dest_wrapper.take());
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assert_eq!(None, msg_wrapper.take());
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// another try with router chain with asserting sender
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assert_eq!(
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Err(SendError::Transport("Other")),
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send_xcm::<(
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ParentAsUmp<OtherErrorUpwardMessageSender, (), ()>,
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OkFixedXcmHashWithAssertingRequiredInputsSender
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)>(dest.into(), message)
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);
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}
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#[test]
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fn take_first_asset_trader_buy_weight_called_twice_throws_error() {
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const AMOUNT: u128 = 100;
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// prepare prerequisites to instantiate `TakeFirstAssetTrader`
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type TestAccountId = u32;
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type TestAssetId = u32;
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type TestBalance = u128;
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struct TestAssets;
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impl MatchesFungibles<TestAssetId, TestBalance> for TestAssets {
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fn matches_fungibles(a: &MultiAsset) -> Result<(TestAssetId, TestBalance), Error> {
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match a {
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MultiAsset { fun: Fungible(amount), id: Concrete(_id) } => Ok((1, *amount)),
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_ => Err(Error::AssetNotHandled),
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}
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}
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}
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impl fungibles::Inspect<TestAccountId> for TestAssets {
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type AssetId = TestAssetId;
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type Balance = TestBalance;
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fn total_issuance(_: Self::AssetId) -> Self::Balance {
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todo!()
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}
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fn minimum_balance(_: Self::AssetId) -> Self::Balance {
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0
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}
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fn balance(_: Self::AssetId, _: &TestAccountId) -> Self::Balance {
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todo!()
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}
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fn total_balance(_: Self::AssetId, _: &TestAccountId) -> Self::Balance {
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todo!()
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}
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fn reducible_balance(
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_: Self::AssetId,
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_: &TestAccountId,
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_: Preservation,
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_: Fortitude,
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) -> Self::Balance {
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todo!()
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}
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fn can_deposit(
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_: Self::AssetId,
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_: &TestAccountId,
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_: Self::Balance,
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_: Provenance,
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) -> DepositConsequence {
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todo!()
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}
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fn can_withdraw(
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_: Self::AssetId,
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_: &TestAccountId,
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_: Self::Balance,
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) -> WithdrawConsequence<Self::Balance> {
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todo!()
|
|
}
|
|
|
|
fn asset_exists(_: Self::AssetId) -> bool {
|
|
todo!()
|
|
}
|
|
}
|
|
impl fungibles::Mutate<TestAccountId> for TestAssets {}
|
|
impl fungibles::Balanced<TestAccountId> for TestAssets {
|
|
type OnDropCredit = fungibles::DecreaseIssuance<TestAccountId, Self>;
|
|
type OnDropDebt = fungibles::IncreaseIssuance<TestAccountId, Self>;
|
|
}
|
|
impl fungibles::Unbalanced<TestAccountId> for TestAssets {
|
|
fn handle_dust(_: fungibles::Dust<TestAccountId, Self>) {
|
|
todo!()
|
|
}
|
|
fn write_balance(
|
|
_: Self::AssetId,
|
|
_: &TestAccountId,
|
|
_: Self::Balance,
|
|
) -> Result<Option<Self::Balance>, DispatchError> {
|
|
todo!()
|
|
}
|
|
|
|
fn set_total_issuance(_: Self::AssetId, _: Self::Balance) {
|
|
todo!()
|
|
}
|
|
}
|
|
|
|
struct FeeChargerAssetsHandleRefund;
|
|
impl ChargeWeightInFungibles<TestAccountId, TestAssets> for FeeChargerAssetsHandleRefund {
|
|
fn charge_weight_in_fungibles(
|
|
_: <TestAssets as Inspect<TestAccountId>>::AssetId,
|
|
_: Weight,
|
|
) -> Result<<TestAssets as Inspect<TestAccountId>>::Balance, XcmError> {
|
|
Ok(AMOUNT)
|
|
}
|
|
}
|
|
impl TakeRevenue for FeeChargerAssetsHandleRefund {
|
|
fn take_revenue(_: MultiAsset) {}
|
|
}
|
|
|
|
// create new instance
|
|
type Trader = TakeFirstAssetTrader<
|
|
TestAccountId,
|
|
FeeChargerAssetsHandleRefund,
|
|
TestAssets,
|
|
TestAssets,
|
|
FeeChargerAssetsHandleRefund,
|
|
>;
|
|
let mut trader = <Trader as WeightTrader>::new();
|
|
|
|
// prepare test data
|
|
let asset: MultiAsset = (Here, AMOUNT).into();
|
|
let payment = Assets::from(asset);
|
|
let weight_to_buy = Weight::from_parts(1_000, 1_000);
|
|
|
|
// lets do first call (success)
|
|
assert_ok!(trader.buy_weight(weight_to_buy, payment.clone()));
|
|
|
|
// lets do second call (error)
|
|
assert_eq!(trader.buy_weight(weight_to_buy, payment), Err(XcmError::NotWithdrawable));
|
|
}
|
|
}
|