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  1. Day 7: No Space Left On Device
  2. Part 1
  3. Part 2

Advent of Code 2022 Day 7

Day 7: No Space Left On Device

https://adventofcode.com/2022/day/7

Yesterday, we got a communication device from an elf.

It needs a software update and there is not enough free space to apply it.

We browse around the file system using the command line and record what it displays. That’s our puzzle input for today.

An example input looks like this:

input.txt
$ cd /
$ ls
dir a
14848514 b.txt
8504156 c.dat
dir d
$ cd a
$ ls
dir e
29116 f
2557 g
62596 h.lst
$ cd e
$ ls
584 i
$ cd ..
$ cd ..
$ cd d
$ ls
4060174 j
8033020 d.log
5626152 d.ext
7214296 k

A line that starts with a $ indicates a command we typed.

  • cd means change directory, it changes the current directory that future commands affect.
    • cd .. goes up a directory (to the parent directory).
    • cd X moves down a directory, to the child directory named X.
    • cd / is a special case of cd X where the current directory moves all the way up, to the root of the file tree.
  • ls means list, it prints all files and directories the current directory contains.

The files and directories shown by ls are represented as seperate lines in the input.

  • Files start with the size of a file, followed by a space, and then the name of the file.
    • So line 123 abc is a file that has a size of 123, and is named abc.
  • Directories start with dir, followed by a space, and then the name of the directory.
    • So line dir xyz is a directory named xyz.

With the input, we can completely map out the filesystem starting at the root directory, /.

The total size of a directory is the sum of the sizes of all the files it contains, including the ones that are inside subfolders.

Part 1

The question asks to find the sum of all directories with a size of at most 100000.

My goal was to build up a map of all directories where the key is a path, and the value is the size of the directory at that path. Then I could filter out every entry that is too big, and sum up the remaining ones.

sizes
.values()
.filter(|size| *size <= 100_000)
.sum()

I kept track of 2 variables.

  • One that holds the map of path to size. (the HashMap called sizes)
  • One with a list of all paths that are affected if we encounter a new file. (the Vec called affected)

If we encounter a file, then its size should be added to all paths above it.

  • Every time I cd down, the name gets added to the end of affected.
  • Every time I cd up, the last item in affected gets removed.

Every file I encounter, I add its size to all paths that are affected.

I loop through affected to construct the affected paths, and add the size to that path’s entry in sizes.

The affected path can be built by constructing a path from increasing amounts of items in affected.

For example, if affected was ["/", "a", "b", "a"], the affected paths would be:

  • "/"
  • "/a"
  • "/a/b"
  • "/a/b/a"

I did this by using a PathBuf, but any method will do (if this were JavaScript, I’d reach for path.join).

day_07.rs
pub fn part_1() -> u32 {
let input = std::fs::read_to_string("src/day07.txt").unwrap();
let mut sizes = HashMap::new();
let mut affected = Vec::new();
for line in input.lines() {
if line.starts_with("$ ls") || line.starts_with("dir") {
continue;
}
let parts: Vec<_> = line.split_whitespace().collect();
match parts[..] {
["$", "cd", ".."] => {
affected.pop();
}
["$", "cd", name] => {
affected.push(name);
}
[size, _name] => {
let size: u32 = size.parse().unwrap();
for idx in 0..affected.len() {
let path = PathBuf::from_iter(&affected[..=idx]);
*sizes.entry(path).or_insert(0) += size;
}
}
_ => {}
};
}
sizes
.into_values()
.filter(|size| *size <= 100_000)
.sum()
}

Part 2

  • The size of the filesystem is 70000000.
  • The amount of unused space you need for the update is 30000000.

The question asks to find the size of the smallest directory you can delete to free enough space.

The part where the map of sizes is created is identical to part1.

We keep every directory that would result in enough free space if it’s deleted.

The minimum of those options is the answer to part2!

let disk = 70_000_000;
let needed = 30_000_000;
let root = sizes.get(&PathBuf::from("/")).unwrap();
let available = disk - root;
sizes
.into_values()
.filter(|size| available + size >= needed)
.min()
.unwrap()
day_07.rs
pub fn part_2() -> u32 {
let input = std::fs::read_to_string("src/day07.txt").unwrap();
let mut sizes = HashMap::new();
let mut affected = Vec::new();
for line in input.lines() {
if line.starts_with("$ ls") || line.starts_with("dir") {
continue;
}
let parts: Vec<_> = line.split_whitespace().collect();
match parts[..] {
["$", "cd", ".."] => {
affected.pop();
}
["$", "cd", name] => {
affected.push(name);
}
[size, _name] => {
let size: u32 = size.parse().unwrap();
for idx in 0..affected.len() {
let path = PathBuf::from_iter(&affected[..=idx]);
*sizes.entry(path).or_insert(0) += size;
}
}
_ => {}
};
}
let disk = 70_000_000;
let needed = 30_000_000;
let root = sizes.get(&PathBuf::from("/")).unwrap();
let available = disk - root;
sizes
.into_values()
.filter(|size| available + size >= needed)
.min()
.unwrap()
}

Series navigation for: Advent of Code 2022

1. Advent of Code 2022 Day 1

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