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https://github.com/peter-tanner/advent-of-code-2022.git
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day 18 done, day 16 and 17 unfinished
day 18 is simple as the search space is small so for part 2 we can just do the opposite of part 1 and scan through all empty spaces surrounding the droplet Merge branch 'master' of github.com:peter-tanner/advent-of-code-2022
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commit
9351f26156
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@ -1,3 +1,162 @@
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use std::{
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collections::{hash_map::Entry, HashMap, HashSet},
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fs::read_to_string,
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};
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const PATH: &str = "src/input";
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// const SCAN_DEPTH: i32 = 10;
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const SCAN_DEPTH: i32 = 2000000;
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const P2_SCAN_MAX: i32 = 4000000;
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fn main() {
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println!("Hello, world!");
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let binding = read_to_string(PATH).expect("Error reading file");
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let data = binding.trim();
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parse_lines(data);
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}
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fn parse_lines(data: &str) {
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let mut sensors = HashSet::<(i32, i32)>::new();
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let mut bacons = HashSet::<(i32, i32)>::new();
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let mut bacons_count = HashMap::<i32, HashSet<i32>>::new();
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let mut horizontal_slices = HashMap::<i32, Vec<(i32, i32)>>::new();
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let binding = data.replace(|c: char| c.is_alphabetic() || c == ' ' || c == '=', "");
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let mut lines = binding.split('\n').into_iter();
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while let Some(line) = lines.next() {
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let mut parts = line.split([',', ':']).into_iter();
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let mut parse_token = || parts.next().unwrap().parse::<i32>().unwrap();
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let sensor = (parse_token(), parse_token());
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let beacon = (parse_token(), parse_token());
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let taxicab_radius: i32 = (sensor.0.abs_diff(beacon.0) + sensor.1.abs_diff(beacon.1))
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.try_into()
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.unwrap();
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sensors.insert(sensor);
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bacons.insert(beacon);
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let bacon_count = match bacons_count.entry(beacon.1) {
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Entry::Vacant(entry) => entry.insert(HashSet::new()),
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Entry::Occupied(entry) => entry.into_mut(),
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};
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bacon_count.insert(beacon.0);
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// println!(
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// "{} {} {} {} -> {}",
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// sensor.0, sensor.1, beacon.0, beacon.1, taxicab_radius
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// );
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// can we do this in reverse from the beacon to sensors? does that improve anything?
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for j in 0..=taxicab_radius {
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let l = sensor.0 - (taxicab_radius - j) as i32;
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let u = sensor.0 + (taxicab_radius - j) as i32;
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let entry = match horizontal_slices.entry(sensor.1 + j) {
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Entry::Vacant(entry) => entry.insert(Vec::new()),
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Entry::Occupied(entry) => entry.into_mut(),
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};
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entry.push((l, u));
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let entry = match horizontal_slices.entry(sensor.1 - j) {
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Entry::Vacant(entry) => entry.insert(Vec::new()),
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Entry::Occupied(entry) => entry.into_mut(),
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};
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entry.push((l, u));
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// println!(
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// "{} {} {}",
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// sensor.0 - (taxicab_radius - j.abs()) as i32,
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// sensor.0 + taxicab_radius - j.abs() as i32,
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// sensor.1 + j
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// );
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}
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}
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part_1(
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horizontal_slices
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.get_mut(&SCAN_DEPTH)
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.unwrap_or(&mut vec![]),
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bacons_count.get(&SCAN_DEPTH).unwrap().len() as i32,
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);
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for j in 0..=P2_SCAN_MAX {
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let big_intervals =
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simplify_intervals(horizontal_slices.get_mut(&j).unwrap_or(&mut vec![]));
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if big_intervals.len() > 1 {
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let bacon_obtained = big_intervals.get(0).unwrap();
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let freq: i64 = (bacon_obtained.1 as i64 + 1) * 4000000 + j as i64;
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println!("PART 2 {}", freq);
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return;
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}
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}
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// print_grid(sensors, bacons, horizontal_slices);
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}
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fn part_1(intervals: &mut Vec<(i32, i32)>, bacons_row_count: i32) {
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let big_intervals = simplify_intervals(intervals);
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let mut sum = 0;
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for biginterval in big_intervals {
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sum += biginterval.1 - biginterval.0 + 1;
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}
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sum -= bacons_row_count;
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println!("PART 1 {}", sum);
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}
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fn simplify_intervals(intervals: &mut Vec<(i32, i32)>) -> Vec<(i32, i32)> {
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if intervals.len() == 0 {
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return intervals.to_vec();
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}
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intervals.sort_by(|a, b| a.0.cmp(&b.0));
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let mut big_intervals = Vec::<(i32, i32)>::new();
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let mut intervals_iter = intervals.iter_mut();
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let biginterval = intervals_iter.next().unwrap();
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while let Some(interval) = intervals_iter.next() {
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// print!("[{} {}", biginterval.0, biginterval.1);
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// println!("|{} {}]", interval.0, interval.1);
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// println!(
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// "{} {}",
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// biginterval.1 >= interval.0,
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// interval.1 >= biginterval.1
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// );
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// if interval_joined(&biginterval, interval) {
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if biginterval.1 >= interval.0 && interval.1 >= biginterval.1 {
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*biginterval = (biginterval.0, interval.1);
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} else if interval.1 >= biginterval.1 {
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// intervals.push(biginterval);
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big_intervals.push(biginterval.clone());
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*biginterval = interval.clone();
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// println!("-> {} {}", biginterval.0, biginterval.1);
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}
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}
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big_intervals.push(biginterval.clone());
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return big_intervals;
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}
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fn print_grid(
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sensors: HashSet<(i32, i32)>,
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bacons: HashSet<(i32, i32)>,
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horizontal_slices: HashMap<i32, Vec<(i32, i32)>>,
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) {
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for j in -2..22 {
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for i in -2..=25 {
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let mut break_outer = false;
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if sensors.contains(&(i, j)) {
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print!("S");
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continue;
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} else if bacons.contains(&(i, j)) {
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print!("B");
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continue;
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} else {
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for v in horizontal_slices.get(&j).unwrap_or(&vec![]) {
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if (v.0..=v.1).contains(&i) {
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print!("#");
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break_outer = true;
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break;
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}
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}
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}
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if !break_outer {
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print!(".");
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}
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}
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println!();
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}
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}
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