mirror of
https://github.com/bertptrs/adventofcode.git
synced 2025-12-25 21:00:31 +01:00
167 lines
4.4 KiB
Rust
167 lines
4.4 KiB
Rust
use std::ops::Deref;
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use ahash::AHashMap;
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use anyhow::Result;
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use ndarray::Array2;
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use nom::branch::alt;
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use nom::bytes::complete::tag;
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use nom::character::complete::alpha1;
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use nom::character::complete::newline;
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use nom::combinator::into;
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use nom::multi::many1;
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use nom::multi::separated_list1;
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use nom::sequence::preceded;
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use nom::sequence::terminated;
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use nom::sequence::tuple;
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use nom::IResult;
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use crate::common::parse_input;
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type ParsedValve<'a> = (&'a [u8], u16, Vec<&'a [u8]>);
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type ParsedNetwork<'a> = Vec<ParsedValve<'a>>;
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#[derive(Debug)]
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struct SimpleNetwork {
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valves: Vec<SimpleValve>,
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start: usize,
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useful: usize,
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}
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impl Deref for SimpleNetwork {
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type Target = [SimpleValve];
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fn deref(&self) -> &Self::Target {
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&self.valves
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}
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}
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#[derive(Debug)]
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struct SimpleValve {
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connected: Vec<usize>,
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flow: u16,
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}
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impl From<ParsedNetwork<'_>> for SimpleNetwork {
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fn from(mut parsed: ParsedNetwork) -> Self {
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// Make sure the positive numbers are in the front
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parsed.sort_by(|a, b| b.1.cmp(&a.1));
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let mapping: AHashMap<_, _> = parsed
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.iter()
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.enumerate()
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.map(|(index, (name, _, _))| (*name, index))
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.collect();
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let useful = parsed.iter().filter(|(_, flow, _)| *flow > 0).count();
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Self {
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valves: parsed
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.into_iter()
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.map(|(_, flow, connected)| {
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let connected = connected.into_iter().map(|name| mapping[&name]).collect();
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SimpleValve { connected, flow }
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})
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.collect(),
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start: mapping[&b"AA"[..]],
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useful,
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}
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}
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}
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fn parse_network(input: &[u8]) -> IResult<&[u8], ParsedNetwork> {
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let parse_network = terminated(
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tuple((
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// Parse the name of the valve
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preceded(tag("Valve "), alpha1),
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// Parse the flow of the valve
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preceded(tag(" has flow rate="), nom::character::complete::u16),
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// Parse the connections
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preceded(
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// Did you really have to distinguish plural
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alt((
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tag("; tunnels lead to valves "),
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tag("; tunnel leads to valve "),
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)),
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separated_list1(tag(", "), alpha1),
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),
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)),
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newline,
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);
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many1(parse_network)(input)
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}
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pub fn part1(input: &[u8]) -> Result<String> {
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let network: SimpleNetwork = parse_input(input, into(parse_network))?;
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let (valves_available, dp) = run_optimization(&network, 30);
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Ok(dp[(network.start, valves_available)].to_string())
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}
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fn run_optimization(network: &SimpleNetwork, time: usize) -> (usize, Array2<u16>) {
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let valves_available = (1 << network.useful) - 1;
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let mut cur = Array2::zeros((network.len(), valves_available + 1));
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let mut prev = cur.clone();
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for time_remaining in 1..time {
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for pos in 0..network.len() {
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let bit = 1 << pos;
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for open_valves in 0..=valves_available {
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let optimal = if (bit & open_valves) != 0 && time_remaining > 2 {
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prev[(pos, open_valves - bit)] + time_remaining as u16 * network[pos].flow
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} else {
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0
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};
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cur[(pos, open_valves)] = network[pos]
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.connected
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.iter()
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.map(|&other| prev[(other, open_valves)])
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.fold(optimal, Ord::max);
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}
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}
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std::mem::swap(&mut prev, &mut cur);
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}
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(valves_available, prev)
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}
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pub fn part2(input: &[u8]) -> Result<String> {
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let network: SimpleNetwork = parse_input(input, into(parse_network))?;
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let (valves_available, dp) = run_optimization(&network, 26);
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// Find the minimum of all combinations of your work/elephant's work
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let best = (0..=valves_available)
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.map(|my_valves| {
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let elephant_valves = valves_available - my_valves;
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dp[(network.start, my_valves)] + dp[(network.start, elephant_valves)]
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})
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.max()
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.unwrap_or(0);
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// Guesses: 1802 (too low)
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Ok(best.to_string())
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}
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#[cfg(test)]
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mod tests {
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use super::*;
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const SAMPLE: &[u8] = include_bytes!("samples/16.txt");
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#[test]
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fn sample_part1() {
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assert_eq!(part1(SAMPLE).unwrap(), "1651");
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}
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#[test]
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fn sample_part2() {
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assert_eq!(part2(SAMPLE).unwrap(), "1707");
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}
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}
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