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Implementation day 20 part 1
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1728
2020/inputs/20.txt
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1728
2020/inputs/20.txt
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File diff suppressed because it is too large
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107
2020/samples/20.txt
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107
2020/samples/20.txt
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@@ -0,0 +1,107 @@
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Tile 2311:
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..##.#..#.
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##..#.....
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#...##..#.
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####.#...#
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##.##.###.
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##...#.###
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.#.#.#..##
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..#....#..
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###...#.#.
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..###..###
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Tile 1951:
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#.##...##.
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#.####...#
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.....#..##
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#...######
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.##.#....#
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.###.#####
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###.##.##.
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.###....#.
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..#.#..#.#
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#...##.#..
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Tile 1171:
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####...##.
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#..##.#..#
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##.#..#.#.
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.###.####.
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..###.####
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.##....##.
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.#...####.
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#.##.####.
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####..#...
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.....##...
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Tile 1427:
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###.##.#..
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.#..#.##..
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.#.##.#..#
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#.#.#.##.#
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....#...##
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...##..##.
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...#.#####
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.#.####.#.
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..#..###.#
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..##.#..#.
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Tile 1489:
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##.#.#....
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..##...#..
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.##..##...
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..#...#...
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#####...#.
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#..#.#.#.#
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...#.#.#..
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##.#...##.
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..##.##.##
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###.##.#..
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Tile 2473:
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#....####.
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#..#.##...
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#.##..#...
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######.#.#
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.#...#.#.#
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.#########
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.###.#..#.
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########.#
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##...##.#.
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..###.#.#.
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Tile 2971:
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..#.#....#
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#...###...
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#.#.###...
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##.##..#..
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.#####..##
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.#..####.#
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#..#.#..#.
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..####.###
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..#.#.###.
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...#.#.#.#
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Tile 2729:
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...#.#.#.#
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####.#....
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..#.#.....
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....#..#.#
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.##..##.#.
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.#.####...
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####.#.#..
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##.####...
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##..#.##..
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#.##...##.
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Tile 3079:
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#.#.#####.
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.#..######
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..#.......
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######....
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####.#..#.
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.#...#.##.
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#.#####.##
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..#.###...
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..#.......
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..#.###...
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@@ -1,12 +1,128 @@
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use std::collections::HashMap;
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use std::collections::HashSet;
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use std::io::Read;
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use crate::common::Lines;
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use crate::Solution;
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struct Tile {
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grid: Vec<Vec<bool>>,
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id: u64,
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sides: [Vec<bool>; 4],
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}
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fn read_input(input: &mut dyn Read) -> HashMap<u64, Tile> {
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let mut tiles = HashMap::new();
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let mut lines = Lines::new(input);
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while let Some(line) = lines.next() {
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let id = line[5..(line.len() - 1)].parse().unwrap();
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drop(line);
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let mut grid: Vec<Vec<_>> = Vec::new();
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while let Some(line) = lines.next() {
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if line.is_empty() {
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break;
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}
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grid.push(line.chars().map(|c| c == '#').collect());
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}
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let sides = [
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grid[0].clone(),
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grid.iter().map(|v| *v.last().unwrap()).collect(),
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grid.last().cloned().unwrap(),
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grid.iter().map(|v| v[0]).collect(),
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];
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let tile = Tile { grid, sides, id };
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tiles.insert(id, tile);
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}
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tiles
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}
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fn compute_matching<'a>(tiles: impl IntoIterator<Item = &'a Tile>) -> HashMap<Vec<bool>, Vec<u64>> {
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let mut matching: HashMap<Vec<_>, Vec<u64>> = HashMap::new();
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for tile in tiles {
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for side in &tile.sides {
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let neighbours = matching.entry(side.clone()).or_default();
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if !neighbours.contains(&tile.id) {
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neighbours.push(tile.id);
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}
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let mut rev = side.clone();
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rev.reverse();
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let neighbours = matching.entry(rev).or_default();
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if !neighbours.contains(&tile.id) {
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neighbours.push(tile.id);
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}
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}
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}
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// Check if my tile assumption is violated
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debug_assert!(matching.values().map(Vec::len).max().unwrap_or(0) <= 2);
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matching
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}
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fn compute_neighbours<'a>(
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cliques: impl IntoIterator<Item = &'a Vec<u64>>,
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) -> HashMap<u64, Vec<u64>> {
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let mut neighbours: HashMap<u64, Vec<u64>> = HashMap::new();
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for clique in cliques {
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for &a in clique {
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let related = neighbours.entry(a).or_default();
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for &b in clique {
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if a != b && !related.contains(&b) {
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related.push(b);
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}
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}
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}
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}
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neighbours
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}
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fn rev_eq(a: &[bool], b: &[bool]) -> bool {
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a.iter().zip(b.iter().rev()).all(|(&a, &b)| a == b)
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}
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#[derive(Default)]
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pub struct Day20;
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impl Solution for Day20 {
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fn part1(&mut self, _input: &mut dyn Read) -> String {
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todo!()
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fn part1(&mut self, input: &mut dyn Read) -> String {
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let tiles = read_input(input);
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let matching = compute_matching(tiles.values());
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let neighbours = compute_neighbours(matching.values());
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neighbours
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.into_iter()
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.filter_map(|(i, n)| if n.len() == 2 { Some(i) } else { None })
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.fold(1, |a, b| a * b)
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.to_string()
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}
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}
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#[cfg(test)]
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mod tests {
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use crate::test_implementation;
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use super::*;
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const SAMPLE: &[u8] = include_bytes!("../samples/20.txt");
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#[test]
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fn sample_part1() {
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test_implementation!(Day20, 1, SAMPLE, 20899048083289u64);
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}
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}
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