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https://github.com/bertptrs/adventofcode.git
synced 2025-12-25 12:50:32 +01:00
Some work on brute forcing
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@@ -1,3 +1,5 @@
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use std::mem;
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use anyhow::Context;
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use anyhow::Result;
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use nom::branch::alt;
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@@ -13,6 +15,65 @@ use nom::IResult;
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use crate::common::parse_input;
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// This describes the transitions between the different squares.
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//
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// For every direction, write down which direction you end up going, in which square, and
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// whether you should flip the axis.
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//
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// The squares are laid out as follows:
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//
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// #01
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// #2#
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// 34#
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// 5##
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//
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// Entries are specified right, down, left, up.
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#[allow(dead_code)]
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const TRANSITIONS: [[(Direction, usize, bool); 4]; 6] = [
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// Square 0
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[
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(Direction::Right, 1, false),
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(Direction::Down, 2, false),
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(Direction::Left, 3, true),
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(Direction::Right, 5, false),
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],
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// Square 1
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[
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(Direction::Left, 4, true),
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(Direction::Down, 2, false),
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(Direction::Left, 0, false),
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(Direction::Up, 5, false),
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],
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// Square 2
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[
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(Direction::Up, 1, false),
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(Direction::Down, 4, false),
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(Direction::Down, 3, false),
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(Direction::Up, 0, false),
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],
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// Square 3
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[
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(Direction::Right, 4, false),
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(Direction::Down, 5, false),
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(Direction::Right, 0, true),
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(Direction::Right, 2, false),
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],
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// Square 4
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[
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(Direction::Left, 1, true),
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(Direction::Left, 5, false),
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(Direction::Left, 3, false),
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(Direction::Up, 2, false),
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],
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// Square 5
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[
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(Direction::Up, 4, false),
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(Direction::Down, 1, false),
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(Direction::Down, 0, false),
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(Direction::Up, 3, false),
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],
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];
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#[derive(Clone, Copy, Debug)]
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enum Step {
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Forward(u32),
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@@ -85,8 +146,7 @@ pub fn part1(input: &[u8]) -> Result<String> {
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let new_y = map
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.iter()
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.rposition(|line| {
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line.get(x)
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.map_or(false, |&b| b == b'.' || b == b'#')
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line.get(x).map_or(false, |&b| b == b'.' || b == b'#')
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})
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.unwrap();
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if map[new_y][x] == b'#' {
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@@ -103,14 +163,11 @@ pub fn part1(input: &[u8]) -> Result<String> {
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}
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Direction::Down => {
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for _ in 0..amount {
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if y + 1 >= map.len()
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|| map[y + 1].get(x).map_or(true, |&b| b == b' ')
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{
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if y + 1 >= map.len() || map[y + 1].get(x).map_or(true, |&b| b == b' ') {
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let new_y = map
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.iter()
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.position(|line| {
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line.get(x)
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.map_or(false, |&b| b == b'.' || b == b'#')
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line.get(x).map_or(false, |&b| b == b'.' || b == b'#')
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})
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.unwrap();
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@@ -171,7 +228,52 @@ pub fn part1(input: &[u8]) -> Result<String> {
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Ok((1000 * (y + 1) + 4 * (x + 1) + dir as usize).to_string())
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}
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pub fn part2(_input: &[u8]) -> Result<String> {
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fn side_length_of(map: &[&[u8]]) -> usize {
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let taken_tiles = map
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.iter()
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.flat_map(|r| r.iter())
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.filter(|c| !c.is_ascii_whitespace())
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.count();
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// Future Bert: this needs to be an integer square root.
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((taken_tiles / 6) as f64).sqrt() as usize
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}
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fn break_squares<'a>(map: &[&'a [u8]], side_length: usize) -> [(Map<'a>, usize, usize); 6] {
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let mut result: [(Map<'a>, usize, usize); 6] = Default::default();
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let mut row_holder = [(); 4].map(|_| Map::new());
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let mut index = 0;
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for (y, block_row) in map.chunks_exact(side_length).enumerate() {
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for row in block_row {
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for (i, segment) in row.chunks_exact(side_length).enumerate() {
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if segment[0] != b' ' {
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row_holder[i].push(segment);
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}
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}
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}
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for (x, potential_side) in row_holder.iter_mut().enumerate() {
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if !potential_side.is_empty() {
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mem::swap(potential_side, &mut result[index].0);
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result[index].1 = x;
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result[index].2 = y;
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index += 1;
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}
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}
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}
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result
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}
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pub fn part2(input: &[u8]) -> Result<String> {
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let (map, _steps) = parse_input(input, parse_map)?;
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let side_length = side_length_of(&map);
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let _squares = break_squares(&map, side_length);
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anyhow::bail!("not implemented")
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}
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@@ -185,4 +287,38 @@ mod tests {
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fn sample_part1() {
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assert_eq!(part1(SAMPLE).unwrap(), "6032");
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}
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#[test]
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fn test_side_length() {
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let (map, _) = parse_input(SAMPLE, parse_map).unwrap();
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assert_eq!(side_length_of(&map), 4);
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}
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#[test]
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fn test_break_squares() {
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let (map, _) = parse_input(SAMPLE, parse_map).unwrap();
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let side_length = side_length_of(&map);
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let squares = break_squares(&map, side_length);
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assert_eq!(squares[0].1, 2);
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assert_eq!(squares[0].2, 0);
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assert_eq!(squares[5].1, 3);
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assert_eq!(squares[5].2, 2);
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for square in squares {
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assert_eq!(square.0.len(), side_length);
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for row in square.0 {
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assert_eq!(row.len(), side_length);
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}
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}
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}
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#[test]
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fn test_sanity_transitions() {
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// TODO
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}
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}
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