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* Change copyright year to 2023 from 2022 * Fix incorrect update of copyright year * Remove years from copy right header * Fix remaining files * Fix typo in a header and remove update-copyright.sh
387 lines
10 KiB
Rust
387 lines
10 KiB
Rust
// This file is part of Substrate.
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// Copyright (C) Parity Technologies (UK) Ltd.
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// SPDX-License-Identifier: Apache-2.0
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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//! Mock file for npos-elections.
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#![cfg(test)]
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use sp_arithmetic::{
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traits::{One, SaturatedConversion, Zero},
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PerThing,
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};
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use sp_runtime::assert_eq_error_rate;
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use sp_std::collections::btree_map::BTreeMap;
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use crate::{seq_phragmen, Assignment, ElectionResult, ExtendedBalance, PerThing128, VoteWeight};
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pub type AccountId = u64;
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#[derive(Default, Debug)]
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pub(crate) struct _Candidate<A> {
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who: A,
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score: f64,
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approval_stake: f64,
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elected: bool,
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}
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#[derive(Default, Debug)]
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pub(crate) struct _Voter<A> {
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who: A,
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edges: Vec<_Edge<A>>,
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budget: f64,
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load: f64,
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}
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#[derive(Default, Debug)]
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pub(crate) struct _Edge<A> {
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who: A,
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load: f64,
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candidate_index: usize,
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}
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#[derive(Default, Debug, PartialEq)]
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pub(crate) struct _Support<A> {
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pub own: f64,
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pub total: f64,
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pub others: Vec<_Assignment<A>>,
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}
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pub(crate) type _Assignment<A> = (A, f64);
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pub(crate) type _SupportMap<A> = BTreeMap<A, _Support<A>>;
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#[derive(Debug, Clone)]
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pub(crate) struct _ElectionResult<A: Clone> {
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pub winners: Vec<(A, ExtendedBalance)>,
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pub assignments: Vec<(A, Vec<_Assignment<A>>)>,
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}
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pub(crate) fn auto_generate_self_voters<A: Clone>(candidates: &[A]) -> Vec<(A, Vec<A>)> {
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candidates.iter().map(|c| (c.clone(), vec![c.clone()])).collect()
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}
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pub(crate) fn elect_float<A>(
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candidate_count: usize,
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initial_candidates: Vec<A>,
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initial_voters: Vec<(A, Vec<A>)>,
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stake_of: impl Fn(&A) -> VoteWeight,
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) -> Option<_ElectionResult<A>>
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where
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A: Default + Ord + Copy,
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{
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let mut elected_candidates: Vec<(A, ExtendedBalance)>;
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let mut assigned: Vec<(A, Vec<_Assignment<A>>)>;
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let mut c_idx_cache = BTreeMap::<A, usize>::new();
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let num_voters = initial_candidates.len() + initial_voters.len();
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let mut voters: Vec<_Voter<A>> = Vec::with_capacity(num_voters);
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let mut candidates = initial_candidates
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.into_iter()
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.enumerate()
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.map(|(idx, who)| {
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c_idx_cache.insert(who, idx);
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_Candidate { who, ..Default::default() }
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})
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.collect::<Vec<_Candidate<A>>>();
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voters.extend(initial_voters.into_iter().map(|(who, votes)| {
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let voter_stake = stake_of(&who) as f64;
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let mut edges: Vec<_Edge<A>> = Vec::with_capacity(votes.len());
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for v in votes {
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if let Some(idx) = c_idx_cache.get(&v) {
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candidates[*idx].approval_stake = candidates[*idx].approval_stake + voter_stake;
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edges.push(_Edge { who: v, candidate_index: *idx, ..Default::default() });
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}
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}
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_Voter { who, edges, budget: voter_stake, load: 0f64 }
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}));
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let to_elect = candidate_count.min(candidates.len());
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elected_candidates = Vec::with_capacity(candidate_count);
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assigned = Vec::with_capacity(candidate_count);
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for _round in 0..to_elect {
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for c in &mut candidates {
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if !c.elected {
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c.score = 1.0 / c.approval_stake;
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}
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}
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for n in &voters {
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for e in &n.edges {
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let c = &mut candidates[e.candidate_index];
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if !c.elected && !(c.approval_stake == 0f64) {
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c.score += n.budget * n.load / c.approval_stake;
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}
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}
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}
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if let Some(winner) = candidates
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.iter_mut()
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.filter(|c| !c.elected)
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.min_by(|x, y| x.score.partial_cmp(&y.score).unwrap_or(sp_std::cmp::Ordering::Equal))
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{
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winner.elected = true;
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for n in &mut voters {
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for e in &mut n.edges {
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if e.who == winner.who {
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e.load = winner.score - n.load;
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n.load = winner.score;
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}
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}
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}
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elected_candidates.push((winner.who, winner.approval_stake as ExtendedBalance));
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} else {
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break
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}
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}
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for n in &mut voters {
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let mut assignment = (n.who, vec![]);
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for e in &mut n.edges {
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if let Some(c) =
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elected_candidates.iter().cloned().map(|(c, _)| c).find(|c| *c == e.who)
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{
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if c != n.who {
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let ratio = e.load / n.load;
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assignment.1.push((e.who, ratio));
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}
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}
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}
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if assignment.1.len() > 0 {
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assigned.push(assignment);
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}
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}
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Some(_ElectionResult { winners: elected_candidates, assignments: assigned })
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}
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pub(crate) fn equalize_float<A, FS>(
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mut assignments: Vec<(A, Vec<_Assignment<A>>)>,
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supports: &mut _SupportMap<A>,
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tolerance: f64,
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iterations: usize,
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stake_of: FS,
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) where
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for<'r> FS: Fn(&'r A) -> VoteWeight,
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A: Ord + Clone + std::fmt::Debug,
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{
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for _i in 0..iterations {
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let mut max_diff = 0.0;
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for (voter, assignment) in assignments.iter_mut() {
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let voter_budget = stake_of(&voter);
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let diff = do_equalize_float(voter, voter_budget, assignment, supports, tolerance);
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if diff > max_diff {
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max_diff = diff;
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}
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}
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if max_diff < tolerance {
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break
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}
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}
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}
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pub(crate) fn do_equalize_float<A>(
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voter: &A,
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budget_balance: VoteWeight,
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elected_edges: &mut Vec<_Assignment<A>>,
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support_map: &mut _SupportMap<A>,
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tolerance: f64,
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) -> f64
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where
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A: Ord + Clone,
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{
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let budget = budget_balance as f64;
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if elected_edges.is_empty() {
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return 0.0
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}
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let stake_used = elected_edges.iter().fold(0.0, |s, e| s + e.1);
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let backed_stakes_iter =
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elected_edges.iter().filter_map(|e| support_map.get(&e.0)).map(|e| e.total);
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let backing_backed_stake = elected_edges
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.iter()
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.filter(|e| e.1 > 0.0)
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.filter_map(|e| support_map.get(&e.0))
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.map(|e| e.total)
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.collect::<Vec<f64>>();
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let mut difference;
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if backing_backed_stake.len() > 0 {
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let max_stake = backing_backed_stake
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.iter()
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.max_by(|x, y| x.partial_cmp(&y).unwrap_or(sp_std::cmp::Ordering::Equal))
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.expect("vector with positive length will have a max; qed");
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let min_stake = backed_stakes_iter
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.min_by(|x, y| x.partial_cmp(&y).unwrap_or(sp_std::cmp::Ordering::Equal))
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.expect("iterator with positive length will have a min; qed");
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difference = max_stake - min_stake;
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difference = difference + budget - stake_used;
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if difference < tolerance {
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return difference
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}
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} else {
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difference = budget;
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}
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// Undo updates to support
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elected_edges.iter_mut().for_each(|e| {
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if let Some(support) = support_map.get_mut(&e.0) {
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support.total = support.total - e.1;
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support.others.retain(|i_support| i_support.0 != *voter);
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}
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e.1 = 0.0;
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});
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elected_edges.sort_by(|x, y| {
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support_map
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.get(&x.0)
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.and_then(|x| support_map.get(&y.0).and_then(|y| x.total.partial_cmp(&y.total)))
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.unwrap_or(sp_std::cmp::Ordering::Equal)
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});
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let mut cumulative_stake = 0.0;
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let mut last_index = elected_edges.len() - 1;
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elected_edges.iter_mut().enumerate().for_each(|(idx, e)| {
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if let Some(support) = support_map.get_mut(&e.0) {
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let stake = support.total;
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let stake_mul = stake * (idx as f64);
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let stake_sub = stake_mul - cumulative_stake;
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if stake_sub > budget {
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last_index = idx.checked_sub(1).unwrap_or(0);
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return
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}
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cumulative_stake = cumulative_stake + stake;
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}
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});
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let last_stake = elected_edges[last_index].1;
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let split_ways = last_index + 1;
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let excess = budget + cumulative_stake - last_stake * (split_ways as f64);
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elected_edges.iter_mut().take(split_ways).for_each(|e| {
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if let Some(support) = support_map.get_mut(&e.0) {
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e.1 = excess / (split_ways as f64) + last_stake - support.total;
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support.total = support.total + e.1;
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support.others.push((voter.clone(), e.1));
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}
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});
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difference
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}
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pub(crate) fn create_stake_of(
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stakes: &[(AccountId, VoteWeight)],
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) -> impl Fn(&AccountId) -> VoteWeight {
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let mut storage = BTreeMap::<AccountId, VoteWeight>::new();
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stakes.iter().for_each(|s| {
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storage.insert(s.0, s.1);
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});
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move |who: &AccountId| -> VoteWeight { storage.get(who).unwrap().to_owned() }
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}
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pub fn check_assignments_sum<T: PerThing>(assignments: &[Assignment<AccountId, T>]) {
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for Assignment { distribution, .. } in assignments {
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let mut sum: u128 = Zero::zero();
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distribution
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.iter()
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.for_each(|(_, p)| sum += p.deconstruct().saturated_into::<u128>());
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assert_eq!(sum, T::ACCURACY.saturated_into(), "Assignment ratio sum is not 100%");
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}
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}
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pub(crate) fn run_and_compare<Output: PerThing128, FS>(
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candidates: Vec<AccountId>,
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voters: Vec<(AccountId, Vec<AccountId>)>,
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stake_of: FS,
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to_elect: usize,
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) where
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Output: PerThing128,
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FS: Fn(&AccountId) -> VoteWeight,
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{
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// run fixed point code.
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let ElectionResult::<_, Output> { winners, assignments } = seq_phragmen(
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to_elect,
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candidates.clone(),
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voters
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.iter()
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.map(|(ref v, ref vs)| (*v, stake_of(v), vs.clone()))
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.collect::<Vec<_>>(),
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None,
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)
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.unwrap();
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// run float poc code.
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let truth_value = elect_float(to_elect, candidates, voters, &stake_of).unwrap();
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assert_eq!(
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winners.iter().map(|(x, _)| x).collect::<Vec<_>>(),
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truth_value.winners.iter().map(|(x, _)| x).collect::<Vec<_>>()
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);
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for Assignment { who, distribution } in assignments.iter() {
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if let Some(float_assignments) = truth_value.assignments.iter().find(|x| x.0 == *who) {
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for (candidate, per_thingy) in distribution {
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if let Some(float_assignment) =
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float_assignments.1.iter().find(|x| x.0 == *candidate)
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{
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assert_eq_error_rate!(
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Output::from_float(float_assignment.1).deconstruct(),
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per_thingy.deconstruct(),
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Output::Inner::one(),
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);
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} else {
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panic!(
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"candidate mismatch. This should never happen. could not find ({:?}, {:?})",
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candidate, per_thingy,
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)
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}
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}
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} else {
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panic!("nominator mismatch. This should never happen.")
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}
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}
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check_assignments_sum(&assignments);
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}
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pub(crate) fn build_support_map_float(
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result: &mut _ElectionResult<AccountId>,
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stake_of: impl Fn(&AccountId) -> VoteWeight,
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) -> _SupportMap<AccountId> {
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let mut supports = <_SupportMap<AccountId>>::new();
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result.winners.iter().map(|(e, _)| (e, stake_of(e) as f64)).for_each(|(e, s)| {
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let item = _Support { own: s, total: s, ..Default::default() };
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supports.insert(*e, item);
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});
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for (n, assignment) in result.assignments.iter_mut() {
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for (c, r) in assignment.iter_mut() {
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let nominator_stake = stake_of(n) as f64;
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let other_stake = nominator_stake * *r;
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if let Some(support) = supports.get_mut(c) {
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support.total = support.total + other_stake;
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support.others.push((*n, other_stake));
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}
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*r = other_stake;
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}
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}
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supports
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}
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