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https://github.com/pezkuwichain/pezkuwi-subxt.git
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abd08e29ce
* reformat everything again * manual formatting * last manual fix * Fix build
919 lines
28 KiB
Rust
919 lines
28 KiB
Rust
// This file is part of Substrate.
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// Copyright (C) 2019-2021 Parity Technologies (UK) Ltd.
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// SPDX-License-Identifier: GPL-3.0-or-later WITH Classpath-exception-2.0
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// This program 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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// This program 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 this program. If not, see <https://www.gnu.org/licenses/>.
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//! Generic utilities for epoch-based consensus engines.
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pub mod migration;
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use codec::{Decode, Encode};
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use fork_tree::ForkTree;
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use sc_client_api::utils::is_descendent_of;
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use sp_blockchain::{Error as ClientError, HeaderBackend, HeaderMetadata};
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use sp_runtime::traits::{Block as BlockT, NumberFor, One, Zero};
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use std::{
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borrow::{Borrow, BorrowMut},
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collections::BTreeMap,
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ops::{Add, Sub},
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};
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/// A builder for `is_descendent_of` functions.
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pub trait IsDescendentOfBuilder<Hash> {
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/// The error returned by the function.
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type Error: std::error::Error;
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/// A function that can tell you if the second parameter is a descendent of
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/// the first.
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type IsDescendentOf: Fn(&Hash, &Hash) -> Result<bool, Self::Error>;
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/// Build an `is_descendent_of` function.
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///
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/// The `current` parameter can be `Some` with the details a fresh block whose
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/// details aren't yet stored, but its parent is.
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///
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/// The format of `current` when `Some` is `(current, current_parent)`.
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fn build_is_descendent_of(&self, current: Option<(Hash, Hash)>) -> Self::IsDescendentOf;
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}
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/// Produce a descendent query object given the client.
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pub fn descendent_query<H, Block>(client: &H) -> HeaderBackendDescendentBuilder<&H, Block> {
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HeaderBackendDescendentBuilder(client, std::marker::PhantomData)
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}
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/// Wrapper to get around unconstrained type errors when implementing
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/// `IsDescendentOfBuilder` for header backends.
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pub struct HeaderBackendDescendentBuilder<H, Block>(H, std::marker::PhantomData<Block>);
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impl<'a, H, Block> IsDescendentOfBuilder<Block::Hash>
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for HeaderBackendDescendentBuilder<&'a H, Block>
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where
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H: HeaderBackend<Block> + HeaderMetadata<Block, Error = ClientError>,
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Block: BlockT,
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{
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type Error = ClientError;
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type IsDescendentOf = Box<dyn Fn(&Block::Hash, &Block::Hash) -> Result<bool, ClientError> + 'a>;
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fn build_is_descendent_of(
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&self,
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current: Option<(Block::Hash, Block::Hash)>,
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) -> Self::IsDescendentOf {
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Box::new(is_descendent_of(self.0, current))
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}
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}
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/// Epoch data, distinguish whether it is genesis or not.
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///
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/// Once an epoch is created, it must have a known `start_slot` and `end_slot`, which cannot be
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/// changed. Consensus engine may modify any other data in the epoch, if needed.
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pub trait Epoch {
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/// Descriptor for the next epoch.
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type NextEpochDescriptor;
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/// Type of the slot number.
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type Slot: Ord + Copy;
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/// The starting slot of the epoch.
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fn start_slot(&self) -> Self::Slot;
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/// Produce the "end slot" of the epoch. This is NOT inclusive to the epoch,
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/// i.e. the slots covered by the epoch are `self.start_slot() .. self.end_slot()`.
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fn end_slot(&self) -> Self::Slot;
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/// Increment the epoch data, using the next epoch descriptor.
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fn increment(&self, descriptor: Self::NextEpochDescriptor) -> Self;
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}
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impl<'a, E: Epoch> From<&'a E> for EpochHeader<E> {
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fn from(epoch: &'a E) -> EpochHeader<E> {
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Self { start_slot: epoch.start_slot(), end_slot: epoch.end_slot() }
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}
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}
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/// Header of epoch data, consisting of start and end slot.
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#[derive(Eq, PartialEq, Encode, Decode, Debug)]
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pub struct EpochHeader<E: Epoch> {
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/// The starting slot of the epoch.
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pub start_slot: E::Slot,
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/// The end slot of the epoch. This is NOT inclusive to the epoch,
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/// i.e. the slots covered by the epoch are `self.start_slot() .. self.end_slot()`.
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pub end_slot: E::Slot,
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}
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impl<E: Epoch> Clone for EpochHeader<E> {
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fn clone(&self) -> Self {
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Self { start_slot: self.start_slot, end_slot: self.end_slot }
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}
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}
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/// Position of the epoch identifier.
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#[derive(PartialEq, Eq, PartialOrd, Ord, Copy, Clone, Debug)]
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pub enum EpochIdentifierPosition {
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/// The identifier points to a genesis epoch `epoch_0`.
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Genesis0,
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/// The identifier points to a genesis epoch `epoch_1`.
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Genesis1,
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/// The identifier points to a regular epoch.
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Regular,
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}
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/// Epoch identifier.
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#[derive(PartialEq, Eq, PartialOrd, Ord, Clone, Debug)]
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pub struct EpochIdentifier<Hash, Number> {
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/// Location of the epoch.
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pub position: EpochIdentifierPosition,
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/// Hash of the block when the epoch is signaled.
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pub hash: Hash,
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/// Number of the block when the epoch is signaled.
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pub number: Number,
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}
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/// The viable epoch under which a block can be verified.
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///
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/// If this is the first non-genesis block in the chain, then it will
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/// hold an `UnimportedGenesis` epoch.
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pub enum ViableEpoch<E, ERef = E> {
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/// Unimported genesis viable epoch data.
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UnimportedGenesis(E),
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/// Regular viable epoch data.
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Signaled(ERef),
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}
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impl<E, ERef> AsRef<E> for ViableEpoch<E, ERef>
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where
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ERef: Borrow<E>,
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{
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fn as_ref(&self) -> &E {
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match *self {
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ViableEpoch::UnimportedGenesis(ref e) => e,
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ViableEpoch::Signaled(ref e) => e.borrow(),
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}
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}
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}
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impl<E, ERef> AsMut<E> for ViableEpoch<E, ERef>
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where
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ERef: BorrowMut<E>,
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{
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fn as_mut(&mut self) -> &mut E {
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match *self {
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ViableEpoch::UnimportedGenesis(ref mut e) => e,
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ViableEpoch::Signaled(ref mut e) => e.borrow_mut(),
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}
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}
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}
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impl<E, ERef> ViableEpoch<E, ERef>
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where
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E: Epoch + Clone,
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ERef: Borrow<E>,
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{
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/// Extract the underlying epoch, disregarding the fact that a genesis
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/// epoch may be unimported.
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pub fn into_cloned_inner(self) -> E {
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match self {
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ViableEpoch::UnimportedGenesis(e) => e,
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ViableEpoch::Signaled(e) => e.borrow().clone(),
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}
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}
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/// Get cloned value for the viable epoch.
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pub fn into_cloned(self) -> ViableEpoch<E, E> {
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match self {
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ViableEpoch::UnimportedGenesis(e) => ViableEpoch::UnimportedGenesis(e),
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ViableEpoch::Signaled(e) => ViableEpoch::Signaled(e.borrow().clone()),
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}
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}
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/// Increment the epoch, yielding an `IncrementedEpoch` to be imported
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/// into the fork-tree.
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pub fn increment(&self, next_descriptor: E::NextEpochDescriptor) -> IncrementedEpoch<E> {
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let next = self.as_ref().increment(next_descriptor);
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let to_persist = match *self {
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ViableEpoch::UnimportedGenesis(ref epoch_0) =>
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PersistedEpoch::Genesis(epoch_0.clone(), next),
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ViableEpoch::Signaled(_) => PersistedEpoch::Regular(next),
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};
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IncrementedEpoch(to_persist)
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}
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}
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/// Descriptor for a viable epoch.
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#[derive(PartialEq, Eq, Clone, Debug)]
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pub enum ViableEpochDescriptor<Hash, Number, E: Epoch> {
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/// The epoch is an unimported genesis, with given start slot number.
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UnimportedGenesis(E::Slot),
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/// The epoch is signaled and has been imported, with given identifier and header.
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Signaled(EpochIdentifier<Hash, Number>, EpochHeader<E>),
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}
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impl<Hash, Number, E: Epoch> ViableEpochDescriptor<Hash, Number, E> {
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/// Start slot of the descriptor.
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pub fn start_slot(&self) -> E::Slot {
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match self {
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Self::UnimportedGenesis(start_slot) => *start_slot,
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Self::Signaled(_, header) => header.start_slot,
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}
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}
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}
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/// Persisted epoch stored in EpochChanges.
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#[derive(Clone, Encode, Decode)]
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pub enum PersistedEpoch<E: Epoch> {
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/// Genesis persisted epoch data. epoch_0, epoch_1.
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Genesis(E, E),
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/// Regular persisted epoch data. epoch_n.
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Regular(E),
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}
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impl<'a, E: Epoch> From<&'a PersistedEpoch<E>> for PersistedEpochHeader<E> {
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fn from(epoch: &'a PersistedEpoch<E>) -> Self {
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match epoch {
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PersistedEpoch::Genesis(ref epoch_0, ref epoch_1) =>
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PersistedEpochHeader::Genesis(epoch_0.into(), epoch_1.into()),
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PersistedEpoch::Regular(ref epoch_n) => PersistedEpochHeader::Regular(epoch_n.into()),
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}
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}
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}
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/// Persisted epoch header stored in ForkTree.
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#[derive(Encode, Decode, PartialEq, Eq)]
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pub enum PersistedEpochHeader<E: Epoch> {
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/// Genesis persisted epoch header. epoch_0, epoch_1.
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Genesis(EpochHeader<E>, EpochHeader<E>),
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/// Regular persisted epoch header. epoch_n.
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Regular(EpochHeader<E>),
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}
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impl<E: Epoch> Clone for PersistedEpochHeader<E> {
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fn clone(&self) -> Self {
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match self {
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Self::Genesis(epoch_0, epoch_1) => Self::Genesis(epoch_0.clone(), epoch_1.clone()),
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Self::Regular(epoch_n) => Self::Regular(epoch_n.clone()),
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}
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}
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}
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/// A fresh, incremented epoch to import into the underlying fork-tree.
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///
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/// Create this with `ViableEpoch::increment`.
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#[must_use = "Freshly-incremented epoch must be imported with `EpochChanges::import`"]
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pub struct IncrementedEpoch<E: Epoch>(PersistedEpoch<E>);
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impl<E: Epoch> AsRef<E> for IncrementedEpoch<E> {
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fn as_ref(&self) -> &E {
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match self.0 {
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PersistedEpoch::Genesis(_, ref epoch_1) => epoch_1,
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PersistedEpoch::Regular(ref epoch_n) => epoch_n,
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}
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}
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}
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/// Tree of all epoch changes across all *seen* forks. Data stored in tree is
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/// the hash and block number of the block signaling the epoch change, and the
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/// epoch that was signalled at that block.
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///
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/// The first epoch, epoch_0, is special cased by saying that it starts at
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/// slot number of the first block in the chain. When bootstrapping a chain,
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/// there can be multiple competing block #1s, so we have to ensure that the overlayed
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/// DAG doesn't get confused.
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///
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/// The first block of every epoch should be producing a descriptor for the next
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/// epoch - this is checked in higher-level code. So the first block of epoch_0 contains
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/// a descriptor for epoch_1. We special-case these and bundle them together in the
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/// same DAG entry, pinned to a specific block #1.
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///
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/// Further epochs (epoch_2, ..., epoch_n) each get their own entry.
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#[derive(Clone, Encode, Decode)]
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pub struct EpochChanges<Hash, Number, E: Epoch> {
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inner: ForkTree<Hash, Number, PersistedEpochHeader<E>>,
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epochs: BTreeMap<(Hash, Number), PersistedEpoch<E>>,
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}
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// create a fake header hash which hasn't been included in the chain.
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fn fake_head_hash<H: AsRef<[u8]> + AsMut<[u8]> + Clone>(parent_hash: &H) -> H {
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let mut h = parent_hash.clone();
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// dirty trick: flip the first bit of the parent hash to create a hash
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// which has not been in the chain before (assuming a strong hash function).
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h.as_mut()[0] ^= 0b10000000;
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h
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}
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impl<Hash, Number, E: Epoch> Default for EpochChanges<Hash, Number, E>
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where
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Hash: PartialEq + Ord,
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Number: Ord,
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{
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fn default() -> Self {
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EpochChanges { inner: ForkTree::new(), epochs: BTreeMap::new() }
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}
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}
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impl<Hash, Number, E: Epoch> EpochChanges<Hash, Number, E>
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where
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Hash: PartialEq + Ord + AsRef<[u8]> + AsMut<[u8]> + Copy,
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Number: Ord + One + Zero + Add<Output = Number> + Sub<Output = Number> + Copy,
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{
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/// Create a new epoch change.
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pub fn new() -> Self {
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Self::default()
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}
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/// Rebalances the tree of epoch changes so that it is sorted by length of
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/// fork (longest fork first).
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pub fn rebalance(&mut self) {
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self.inner.rebalance()
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}
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/// Map the epoch changes from one storing data to a different one.
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pub fn map<B, F>(self, mut f: F) -> EpochChanges<Hash, Number, B>
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where
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B: Epoch<Slot = E::Slot>,
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F: FnMut(&Hash, &Number, E) -> B,
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{
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EpochChanges {
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inner: self.inner.map(&mut |_, _, header| match header {
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PersistedEpochHeader::Genesis(epoch_0, epoch_1) => PersistedEpochHeader::Genesis(
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EpochHeader { start_slot: epoch_0.start_slot, end_slot: epoch_0.end_slot },
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EpochHeader { start_slot: epoch_1.start_slot, end_slot: epoch_1.end_slot },
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),
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PersistedEpochHeader::Regular(epoch_n) =>
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PersistedEpochHeader::Regular(EpochHeader {
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start_slot: epoch_n.start_slot,
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end_slot: epoch_n.end_slot,
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}),
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}),
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epochs: self
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.epochs
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.into_iter()
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.map(|((hash, number), epoch)| {
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let bepoch = match epoch {
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PersistedEpoch::Genesis(epoch_0, epoch_1) => PersistedEpoch::Genesis(
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f(&hash, &number, epoch_0),
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f(&hash, &number, epoch_1),
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),
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PersistedEpoch::Regular(epoch_n) =>
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PersistedEpoch::Regular(f(&hash, &number, epoch_n)),
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};
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((hash, number), bepoch)
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})
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.collect(),
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}
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}
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/// Prune out finalized epochs, except for the ancestor of the finalized
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/// block. The given slot should be the slot number at which the finalized
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/// block was authored.
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pub fn prune_finalized<D: IsDescendentOfBuilder<Hash>>(
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&mut self,
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descendent_of_builder: D,
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hash: &Hash,
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number: Number,
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slot: E::Slot,
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) -> Result<(), fork_tree::Error<D::Error>> {
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let is_descendent_of = descendent_of_builder.build_is_descendent_of(None);
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let predicate = |epoch: &PersistedEpochHeader<E>| match *epoch {
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PersistedEpochHeader::Genesis(_, ref epoch_1) => slot >= epoch_1.end_slot,
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PersistedEpochHeader::Regular(ref epoch_n) => slot >= epoch_n.end_slot,
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};
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// prune any epochs which could not be _live_ as of the children of the
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// finalized block, i.e. re-root the fork tree to the oldest ancestor of
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// (hash, number) where epoch.end_slot() >= finalized_slot
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let removed = self.inner.prune(hash, &number, &is_descendent_of, &predicate)?;
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for (hash, number, _) in removed {
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self.epochs.remove(&(hash, number));
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}
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Ok(())
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}
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/// Get a reference to an epoch with given identifier.
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pub fn epoch(&self, id: &EpochIdentifier<Hash, Number>) -> Option<&E> {
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self.epochs.get(&(id.hash, id.number)).and_then(|v| match v {
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PersistedEpoch::Genesis(ref epoch_0, _)
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if id.position == EpochIdentifierPosition::Genesis0 =>
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Some(epoch_0),
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PersistedEpoch::Genesis(_, ref epoch_1)
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if id.position == EpochIdentifierPosition::Genesis1 =>
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Some(epoch_1),
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PersistedEpoch::Regular(ref epoch_n)
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if id.position == EpochIdentifierPosition::Regular =>
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Some(epoch_n),
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_ => None,
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})
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}
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/// Get a reference to a viable epoch with given descriptor.
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pub fn viable_epoch<G>(
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&self,
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descriptor: &ViableEpochDescriptor<Hash, Number, E>,
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make_genesis: G,
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) -> Option<ViableEpoch<E, &E>>
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where
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G: FnOnce(E::Slot) -> E,
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{
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match descriptor {
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ViableEpochDescriptor::UnimportedGenesis(slot) =>
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Some(ViableEpoch::UnimportedGenesis(make_genesis(*slot))),
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ViableEpochDescriptor::Signaled(identifier, _) =>
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self.epoch(&identifier).map(ViableEpoch::Signaled),
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}
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}
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/// Get a mutable reference to an epoch with given identifier.
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pub fn epoch_mut(&mut self, id: &EpochIdentifier<Hash, Number>) -> Option<&mut E> {
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self.epochs.get_mut(&(id.hash, id.number)).and_then(|v| match v {
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PersistedEpoch::Genesis(ref mut epoch_0, _)
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if id.position == EpochIdentifierPosition::Genesis0 =>
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Some(epoch_0),
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PersistedEpoch::Genesis(_, ref mut epoch_1)
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if id.position == EpochIdentifierPosition::Genesis1 =>
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Some(epoch_1),
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PersistedEpoch::Regular(ref mut epoch_n)
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if id.position == EpochIdentifierPosition::Regular =>
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Some(epoch_n),
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_ => None,
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})
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}
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/// Get a mutable reference to a viable epoch with given descriptor.
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pub fn viable_epoch_mut<G>(
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&mut self,
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descriptor: &ViableEpochDescriptor<Hash, Number, E>,
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make_genesis: G,
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) -> Option<ViableEpoch<E, &mut E>>
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where
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G: FnOnce(E::Slot) -> E,
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{
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match descriptor {
|
|
ViableEpochDescriptor::UnimportedGenesis(slot) =>
|
|
Some(ViableEpoch::UnimportedGenesis(make_genesis(*slot))),
|
|
ViableEpochDescriptor::Signaled(identifier, _) =>
|
|
self.epoch_mut(&identifier).map(ViableEpoch::Signaled),
|
|
}
|
|
}
|
|
|
|
/// Get the epoch data from an epoch descriptor.
|
|
///
|
|
/// Note that this function ignores the fact that an genesis epoch might need to be imported.
|
|
/// Mostly useful for testing.
|
|
pub fn epoch_data<G>(
|
|
&self,
|
|
descriptor: &ViableEpochDescriptor<Hash, Number, E>,
|
|
make_genesis: G,
|
|
) -> Option<E>
|
|
where
|
|
G: FnOnce(E::Slot) -> E,
|
|
E: Clone,
|
|
{
|
|
match descriptor {
|
|
ViableEpochDescriptor::UnimportedGenesis(slot) => Some(make_genesis(*slot)),
|
|
ViableEpochDescriptor::Signaled(identifier, _) => self.epoch(&identifier).cloned(),
|
|
}
|
|
}
|
|
|
|
/// Finds the epoch data for a child of the given block. Similar to
|
|
/// `epoch_descriptor_for_child_of` but returns the full data.
|
|
///
|
|
/// Note that this function ignores the fact that an genesis epoch might need to be imported.
|
|
/// Mostly useful for testing.
|
|
pub fn epoch_data_for_child_of<D: IsDescendentOfBuilder<Hash>, G>(
|
|
&self,
|
|
descendent_of_builder: D,
|
|
parent_hash: &Hash,
|
|
parent_number: Number,
|
|
slot: E::Slot,
|
|
make_genesis: G,
|
|
) -> Result<Option<E>, fork_tree::Error<D::Error>>
|
|
where
|
|
G: FnOnce(E::Slot) -> E,
|
|
E: Clone,
|
|
{
|
|
let descriptor = self.epoch_descriptor_for_child_of(
|
|
descendent_of_builder,
|
|
parent_hash,
|
|
parent_number,
|
|
slot,
|
|
)?;
|
|
|
|
Ok(descriptor.and_then(|des| self.epoch_data(&des, make_genesis)))
|
|
}
|
|
|
|
/// Finds the epoch for a child of the given block, assuming the given slot number.
|
|
///
|
|
/// If the returned epoch is an `UnimportedGenesis` epoch, it should be imported into the
|
|
/// tree.
|
|
pub fn epoch_descriptor_for_child_of<D: IsDescendentOfBuilder<Hash>>(
|
|
&self,
|
|
descendent_of_builder: D,
|
|
parent_hash: &Hash,
|
|
parent_number: Number,
|
|
slot: E::Slot,
|
|
) -> Result<Option<ViableEpochDescriptor<Hash, Number, E>>, fork_tree::Error<D::Error>> {
|
|
// find_node_where will give you the node in the fork-tree which is an ancestor
|
|
// of the `parent_hash` by default. if the last epoch was signalled at the parent_hash,
|
|
// then it won't be returned. we need to create a new fake chain head hash which
|
|
// "descends" from our parent-hash.
|
|
let fake_head_hash = fake_head_hash(parent_hash);
|
|
|
|
let is_descendent_of =
|
|
descendent_of_builder.build_is_descendent_of(Some((fake_head_hash, *parent_hash)));
|
|
|
|
if parent_number == Zero::zero() {
|
|
// need to insert the genesis epoch.
|
|
return Ok(Some(ViableEpochDescriptor::UnimportedGenesis(slot)))
|
|
}
|
|
|
|
// We want to find the deepest node in the tree which is an ancestor
|
|
// of our block and where the start slot of the epoch was before the
|
|
// slot of our block. The genesis special-case doesn't need to look
|
|
// at epoch_1 -- all we're doing here is figuring out which node
|
|
// we need.
|
|
let predicate = |epoch: &PersistedEpochHeader<E>| match *epoch {
|
|
PersistedEpochHeader::Genesis(ref epoch_0, _) => epoch_0.start_slot <= slot,
|
|
PersistedEpochHeader::Regular(ref epoch_n) => epoch_n.start_slot <= slot,
|
|
};
|
|
|
|
self.inner
|
|
.find_node_where(
|
|
&fake_head_hash,
|
|
&(parent_number + One::one()),
|
|
&is_descendent_of,
|
|
&predicate,
|
|
)
|
|
.map(|n| {
|
|
n.map(|node| {
|
|
(
|
|
match node.data {
|
|
// Ok, we found our node.
|
|
// and here we figure out which of the internal epochs
|
|
// of a genesis node to use based on their start slot.
|
|
PersistedEpochHeader::Genesis(ref epoch_0, ref epoch_1) =>
|
|
if epoch_1.start_slot <= slot {
|
|
(EpochIdentifierPosition::Genesis1, epoch_1.clone())
|
|
} else {
|
|
(EpochIdentifierPosition::Genesis0, epoch_0.clone())
|
|
},
|
|
PersistedEpochHeader::Regular(ref epoch_n) =>
|
|
(EpochIdentifierPosition::Regular, epoch_n.clone()),
|
|
},
|
|
node,
|
|
)
|
|
})
|
|
.map(|((position, header), node)| {
|
|
ViableEpochDescriptor::Signaled(
|
|
EpochIdentifier { position, hash: node.hash, number: node.number },
|
|
header,
|
|
)
|
|
})
|
|
})
|
|
}
|
|
|
|
/// Import a new epoch-change, signalled at the given block.
|
|
///
|
|
/// This assumes that the given block is prospective (i.e. has not been
|
|
/// imported yet), but its parent has. This is why the parent hash needs
|
|
/// to be provided.
|
|
pub fn import<D: IsDescendentOfBuilder<Hash>>(
|
|
&mut self,
|
|
descendent_of_builder: D,
|
|
hash: Hash,
|
|
number: Number,
|
|
parent_hash: Hash,
|
|
epoch: IncrementedEpoch<E>,
|
|
) -> Result<(), fork_tree::Error<D::Error>> {
|
|
let is_descendent_of =
|
|
descendent_of_builder.build_is_descendent_of(Some((hash, parent_hash)));
|
|
let header = PersistedEpochHeader::<E>::from(&epoch.0);
|
|
|
|
let res = self.inner.import(hash, number, header, &is_descendent_of);
|
|
|
|
match res {
|
|
Ok(_) | Err(fork_tree::Error::Duplicate) => {
|
|
self.epochs.insert((hash, number), epoch.0);
|
|
Ok(())
|
|
},
|
|
Err(e) => Err(e),
|
|
}
|
|
}
|
|
|
|
/// Return the inner fork tree.
|
|
pub fn tree(&self) -> &ForkTree<Hash, Number, PersistedEpochHeader<E>> {
|
|
&self.inner
|
|
}
|
|
|
|
/// Reset to a specified pair of epochs, as if they were announced at blocks `parent_hash` and
|
|
/// `hash`.
|
|
pub fn reset(&mut self, parent_hash: Hash, hash: Hash, number: Number, current: E, next: E) {
|
|
self.inner = ForkTree::new();
|
|
self.epochs.clear();
|
|
let persisted = PersistedEpoch::Regular(current);
|
|
let header = PersistedEpochHeader::from(&persisted);
|
|
let _res = self.inner.import(parent_hash, number - One::one(), header, &|_, _| {
|
|
Ok(false) as Result<bool, fork_tree::Error<ClientError>>
|
|
});
|
|
self.epochs.insert((parent_hash, number - One::one()), persisted);
|
|
|
|
let persisted = PersistedEpoch::Regular(next);
|
|
let header = PersistedEpochHeader::from(&persisted);
|
|
let _res = self.inner.import(hash, number, header, &|_, _| {
|
|
Ok(true) as Result<bool, fork_tree::Error<ClientError>>
|
|
});
|
|
self.epochs.insert((hash, number), persisted);
|
|
}
|
|
}
|
|
|
|
/// Type alias to produce the epoch-changes tree from a block type.
|
|
pub type EpochChangesFor<Block, Epoch> =
|
|
EpochChanges<<Block as BlockT>::Hash, NumberFor<Block>, Epoch>;
|
|
|
|
/// A shared epoch changes tree.
|
|
pub type SharedEpochChanges<Block, Epoch> =
|
|
sc_consensus::shared_data::SharedData<EpochChangesFor<Block, Epoch>>;
|
|
|
|
#[cfg(test)]
|
|
mod tests {
|
|
use super::{Epoch as EpochT, *};
|
|
|
|
#[derive(Debug, PartialEq)]
|
|
pub struct TestError;
|
|
|
|
impl std::fmt::Display for TestError {
|
|
fn fmt(&self, f: &mut std::fmt::Formatter) -> std::fmt::Result {
|
|
write!(f, "TestError")
|
|
}
|
|
}
|
|
|
|
impl std::error::Error for TestError {}
|
|
|
|
impl<'a, F: 'a, H: 'a + PartialEq + std::fmt::Debug> IsDescendentOfBuilder<H> for &'a F
|
|
where
|
|
F: Fn(&H, &H) -> Result<bool, TestError>,
|
|
{
|
|
type Error = TestError;
|
|
type IsDescendentOf = Box<dyn Fn(&H, &H) -> Result<bool, TestError> + 'a>;
|
|
|
|
fn build_is_descendent_of(&self, current: Option<(H, H)>) -> Self::IsDescendentOf {
|
|
let f = *self;
|
|
Box::new(move |base, head| {
|
|
let mut head = head;
|
|
|
|
if let Some((ref c_head, ref c_parent)) = current {
|
|
if head == c_head {
|
|
if base == c_parent {
|
|
return Ok(true)
|
|
} else {
|
|
head = c_parent;
|
|
}
|
|
}
|
|
}
|
|
|
|
f(base, head)
|
|
})
|
|
}
|
|
}
|
|
|
|
type Hash = [u8; 1];
|
|
type Slot = u64;
|
|
|
|
#[derive(Debug, Clone, Eq, PartialEq)]
|
|
struct Epoch {
|
|
start_slot: Slot,
|
|
duration: Slot,
|
|
}
|
|
|
|
impl EpochT for Epoch {
|
|
type NextEpochDescriptor = ();
|
|
type Slot = Slot;
|
|
|
|
fn increment(&self, _: ()) -> Self {
|
|
Epoch { start_slot: self.start_slot + self.duration, duration: self.duration }
|
|
}
|
|
|
|
fn end_slot(&self) -> Slot {
|
|
self.start_slot + self.duration
|
|
}
|
|
|
|
fn start_slot(&self) -> Slot {
|
|
self.start_slot
|
|
}
|
|
}
|
|
|
|
#[test]
|
|
fn genesis_epoch_is_created_but_not_imported() {
|
|
//
|
|
// A - B
|
|
// \
|
|
// — C
|
|
//
|
|
let is_descendent_of = |base: &Hash, block: &Hash| -> Result<bool, TestError> {
|
|
match (base, *block) {
|
|
(b"A", b) => Ok(b == *b"B" || b == *b"C" || b == *b"D"),
|
|
(b"B", b) | (b"C", b) => Ok(b == *b"D"),
|
|
(b"0", _) => Ok(true),
|
|
_ => Ok(false),
|
|
}
|
|
};
|
|
|
|
let epoch_changes = EpochChanges::<_, _, Epoch>::new();
|
|
let genesis_epoch = epoch_changes
|
|
.epoch_descriptor_for_child_of(&is_descendent_of, b"0", 0, 10101)
|
|
.unwrap()
|
|
.unwrap();
|
|
|
|
match genesis_epoch {
|
|
ViableEpochDescriptor::UnimportedGenesis(slot) => {
|
|
assert_eq!(slot, 10101u64);
|
|
},
|
|
_ => panic!("should be unimported genesis"),
|
|
};
|
|
|
|
let genesis_epoch_2 = epoch_changes
|
|
.epoch_descriptor_for_child_of(&is_descendent_of, b"0", 0, 10102)
|
|
.unwrap()
|
|
.unwrap();
|
|
|
|
match genesis_epoch_2 {
|
|
ViableEpochDescriptor::UnimportedGenesis(slot) => {
|
|
assert_eq!(slot, 10102u64);
|
|
},
|
|
_ => panic!("should be unimported genesis"),
|
|
};
|
|
}
|
|
|
|
#[test]
|
|
fn epoch_changes_between_blocks() {
|
|
//
|
|
// A - B
|
|
// \
|
|
// — C
|
|
//
|
|
let is_descendent_of = |base: &Hash, block: &Hash| -> Result<bool, TestError> {
|
|
match (base, *block) {
|
|
(b"A", b) => Ok(b == *b"B" || b == *b"C" || b == *b"D"),
|
|
(b"B", b) | (b"C", b) => Ok(b == *b"D"),
|
|
(b"0", _) => Ok(true),
|
|
_ => Ok(false),
|
|
}
|
|
};
|
|
|
|
let make_genesis = |slot| Epoch { start_slot: slot, duration: 100 };
|
|
|
|
let mut epoch_changes = EpochChanges::<_, _, Epoch>::new();
|
|
let genesis_epoch = epoch_changes
|
|
.epoch_descriptor_for_child_of(&is_descendent_of, b"0", 0, 100)
|
|
.unwrap()
|
|
.unwrap();
|
|
|
|
assert_eq!(genesis_epoch, ViableEpochDescriptor::UnimportedGenesis(100));
|
|
|
|
let import_epoch_1 =
|
|
epoch_changes.viable_epoch(&genesis_epoch, &make_genesis).unwrap().increment(());
|
|
let epoch_1 = import_epoch_1.as_ref().clone();
|
|
|
|
epoch_changes
|
|
.import(&is_descendent_of, *b"A", 1, *b"0", import_epoch_1)
|
|
.unwrap();
|
|
let genesis_epoch = epoch_changes.epoch_data(&genesis_epoch, &make_genesis).unwrap();
|
|
|
|
assert!(is_descendent_of(b"0", b"A").unwrap());
|
|
|
|
let end_slot = genesis_epoch.end_slot();
|
|
assert_eq!(end_slot, epoch_1.start_slot);
|
|
|
|
{
|
|
// x is still within the genesis epoch.
|
|
let x = epoch_changes
|
|
.epoch_data_for_child_of(&is_descendent_of, b"A", 1, end_slot - 1, &make_genesis)
|
|
.unwrap()
|
|
.unwrap();
|
|
|
|
assert_eq!(x, genesis_epoch);
|
|
}
|
|
|
|
{
|
|
// x is now at the next epoch, because the block is now at the
|
|
// start slot of epoch 1.
|
|
let x = epoch_changes
|
|
.epoch_data_for_child_of(&is_descendent_of, b"A", 1, end_slot, &make_genesis)
|
|
.unwrap()
|
|
.unwrap();
|
|
|
|
assert_eq!(x, epoch_1);
|
|
}
|
|
|
|
{
|
|
// x is now at the next epoch, because the block is now after
|
|
// start slot of epoch 1.
|
|
let x = epoch_changes
|
|
.epoch_data_for_child_of(
|
|
&is_descendent_of,
|
|
b"A",
|
|
1,
|
|
epoch_1.end_slot() - 1,
|
|
&make_genesis,
|
|
)
|
|
.unwrap()
|
|
.unwrap();
|
|
|
|
assert_eq!(x, epoch_1);
|
|
}
|
|
}
|
|
|
|
#[test]
|
|
fn two_block_ones_dont_conflict() {
|
|
// X - Y
|
|
// /
|
|
// 0 - A - B
|
|
//
|
|
let is_descendent_of = |base: &Hash, block: &Hash| -> Result<bool, TestError> {
|
|
match (base, *block) {
|
|
(b"A", b) => Ok(b == *b"B"),
|
|
(b"X", b) => Ok(b == *b"Y"),
|
|
(b"0", _) => Ok(true),
|
|
_ => Ok(false),
|
|
}
|
|
};
|
|
|
|
let duration = 100;
|
|
|
|
let make_genesis = |slot| Epoch { start_slot: slot, duration };
|
|
|
|
let mut epoch_changes = EpochChanges::new();
|
|
let next_descriptor = ();
|
|
|
|
// insert genesis epoch for A
|
|
{
|
|
let genesis_epoch_a_descriptor = epoch_changes
|
|
.epoch_descriptor_for_child_of(&is_descendent_of, b"0", 0, 100)
|
|
.unwrap()
|
|
.unwrap();
|
|
|
|
let incremented_epoch = epoch_changes
|
|
.viable_epoch(&genesis_epoch_a_descriptor, &make_genesis)
|
|
.unwrap()
|
|
.increment(next_descriptor.clone());
|
|
|
|
epoch_changes
|
|
.import(&is_descendent_of, *b"A", 1, *b"0", incremented_epoch)
|
|
.unwrap();
|
|
}
|
|
|
|
// insert genesis epoch for X
|
|
{
|
|
let genesis_epoch_x_descriptor = epoch_changes
|
|
.epoch_descriptor_for_child_of(&is_descendent_of, b"0", 0, 1000)
|
|
.unwrap()
|
|
.unwrap();
|
|
|
|
let incremented_epoch = epoch_changes
|
|
.viable_epoch(&genesis_epoch_x_descriptor, &make_genesis)
|
|
.unwrap()
|
|
.increment(next_descriptor.clone());
|
|
|
|
epoch_changes
|
|
.import(&is_descendent_of, *b"X", 1, *b"0", incremented_epoch)
|
|
.unwrap();
|
|
}
|
|
|
|
// now check that the genesis epochs for our respective block 1s
|
|
// respect the chain structure.
|
|
{
|
|
let epoch_for_a_child = epoch_changes
|
|
.epoch_data_for_child_of(&is_descendent_of, b"A", 1, 101, &make_genesis)
|
|
.unwrap()
|
|
.unwrap();
|
|
|
|
assert_eq!(epoch_for_a_child, make_genesis(100));
|
|
|
|
let epoch_for_x_child = epoch_changes
|
|
.epoch_data_for_child_of(&is_descendent_of, b"X", 1, 1001, &make_genesis)
|
|
.unwrap()
|
|
.unwrap();
|
|
|
|
assert_eq!(epoch_for_x_child, make_genesis(1000));
|
|
|
|
let epoch_for_x_child_before_genesis = epoch_changes
|
|
.epoch_data_for_child_of(&is_descendent_of, b"X", 1, 101, &make_genesis)
|
|
.unwrap();
|
|
|
|
// even though there is a genesis epoch at that slot, it's not in
|
|
// this chain.
|
|
assert!(epoch_for_x_child_before_genesis.is_none());
|
|
}
|
|
}
|
|
}
|