mirror of
https://github.com/Threnklyn/advent-of-code-go.git
synced 2026-05-18 19:13:27 +02:00
172 lines
3.4 KiB
Go
172 lines
3.4 KiB
Go
package main
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import (
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_ "embed"
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"flag"
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"fmt"
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"strings"
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"github.com/alexchao26/advent-of-code-go/cast"
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"github.com/alexchao26/advent-of-code-go/mathy"
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"github.com/alexchao26/advent-of-code-go/util"
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)
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//go:embed input.txt
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var input string
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func init() {
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// do this in init (not main) so test file has same input
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input = strings.TrimRight(input, "\n")
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if len(input) == 0 {
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panic("empty input.txt file")
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}
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}
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func main() {
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var part int
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flag.IntVar(&part, "part", 1, "part 1 or 2")
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flag.Parse()
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fmt.Println("Running part", part)
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if part == 1 {
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ans := part1(input)
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util.CopyToClipboard(fmt.Sprintf("%v", ans))
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fmt.Println("Output:", ans)
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} else {
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ans := part2(input)
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util.CopyToClipboard(fmt.Sprintf("%v", ans))
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fmt.Println("Output:", ans)
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}
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}
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// to six adjacent face...
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var diffs = [][3]int{
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{0, 0, 1},
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{0, 1, 0},
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{1, 0, 0},
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{0, 0, -1},
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{0, -1, 0},
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{-1, 0, 0},
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}
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func part1(input string) int {
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rawCoords := parseInput(input)
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mapCoords := convertRawCoordsToMap(rawCoords)
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totalSurfaceArea := 0
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for _, coord := range rawCoords {
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neighbors := 6
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for _, d := range diffs {
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if mapCoords[[3]int{
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coord[0] - d[0],
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coord[1] - d[1],
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coord[2] - d[2],
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}] {
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neighbors--
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}
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}
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totalSurfaceArea += neighbors
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}
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return totalSurfaceArea
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}
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func part2(input string) int {
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rawCoords := parseInput(input)
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mapCoords := convertRawCoordsToMap(rawCoords)
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// get bounds
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var limitX, limitY, limitZ int
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for c := range mapCoords {
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limitX = mathy.MaxInt(limitX, c[0])
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limitY = mathy.MaxInt(limitY, c[1])
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limitZ = mathy.MaxInt(limitZ, c[2])
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}
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// bfs to see if an edge can be reached
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// delete if not useful
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totalExternalSurfaceArea := 0
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for coord := range mapCoords {
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totalExternalSurfaceArea += facesThatCanReachEdge(coord, mapCoords,
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limitX, limitY, limitZ)
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}
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// too low: 1036
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return totalExternalSurfaceArea
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}
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func parseInput(input string) (ans [][3]int) {
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for _, line := range strings.Split(input, "\n") {
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parts := strings.Split(line, ",")
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ans = append(ans, [3]int{
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cast.ToInt(parts[0]),
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cast.ToInt(parts[1]),
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cast.ToInt(parts[2]),
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})
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}
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return ans
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}
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func convertRawCoordsToMap(rawCoords [][3]int) map[[3]int]bool {
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set := map[[3]int]bool{}
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for _, coord := range rawCoords {
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set[coord] = true
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}
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return set
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}
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// there would be a big optimization here to keep track of all coords that have
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// a known path to an edge, that would eliminate a lot of duplicate work... but
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// i think this is a small enough problem space to ignore that...
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func facesThatCanReachEdge(coord [3]int, set map[[3]int]bool, limitX, limitY, limitZ int) int {
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ans := 0
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for _, d := range diffs {
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next := [3]int{
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coord[0] + d[0],
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coord[1] + d[1],
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coord[2] + d[2],
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}
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reachResult := canReachEdge(next, set, limitX, limitY, limitZ)
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if reachResult {
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ans++
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}
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}
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return ans
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}
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func canReachEdge(coord [3]int, set map[[3]int]bool, limitX, limitY, limitZ int,
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) bool {
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queue := [][3]int{coord}
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seen := map[[3]int]bool{}
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for len(queue) > 0 {
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front := queue[0]
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queue = queue[1:]
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// seen already or hit some other droplet, skip
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if seen[front] || set[front] {
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continue
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}
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seen[front] = true
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// edge reached
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if front[0] <= 0 || front[0] >= limitX ||
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front[1] <= 0 || front[1] >= limitY ||
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front[2] <= 0 || front[2] >= limitZ {
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return true
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}
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for _, d := range diffs {
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next := [3]int{
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front[0] + d[0],
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front[1] + d[1],
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front[2] + d[2],
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}
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queue = append(queue, next)
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}
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}
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return false
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}
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