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5 changed files with 381 additions and 115 deletions
+101 -1
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@@ -1,4 +1,5 @@
import java.lang.Long.numberOfTrailingZeros
import java.math.BigInteger
import java.util.*
import kotlin.math.abs
import kotlin.math.min
@@ -187,7 +188,106 @@ fun gcdPositive(aIn: Long, bIn: Long): Long {
return a shl shift
}
fun calcPrimeFactorsAndPhi(n: Long, primes: MutableList<Long>, allPrimes: MutableSet<Long>): Pair<List<Pair<Long, Int>>, Long> {
// ax + by = gcdExtendedPositive(a, b)
fun extendedGcd(a: Long, b: Long): Pair<Long, Pair<Long, Long>> {
var old_r = a
var r = b
var old_s = 1L
var s = 0L
var old_t = 0L
var t = 1L
while (r != 0L) {
val q = old_r / r
val rtmp = old_r
old_r = r
r = rtmp - q * r
val stmp = old_s
old_s = s
s = stmp - q * s
val ttmp = old_t
old_t = t
t = ttmp - q * t
}
return old_r to (old_s to old_t)
}
fun extendedGcd(a: BigInteger, b: BigInteger): Pair<BigInteger, Pair<BigInteger, BigInteger>> {
var old_r = a
var r = b
var old_s = BigInteger.ONE
var s = BigInteger.ZERO
var old_t = BigInteger.ZERO
var t = BigInteger.ONE
while (r != BigInteger.ZERO) {
val q = old_r / r
val rtmp = old_r
old_r = r
r = rtmp - q * r
val stmp = old_s
old_s = s
s = stmp - q * s
val ttmp = old_t
old_t = t
t = ttmp - q * t
}
return old_r to (old_s to old_t)
}
fun extendedGcd(v: List<Long>): Pair<Long, List<Long>> {
if (v.size < 2) throw IllegalArgumentException("Expected at least 2 elements")
val gcds = ArrayList<Long>(v.size)
val coeffs = ArrayList<Long>(v.size)
var (gcd, p1) = extendedGcd(v[0], v[1])
coeffs.add(p1.first)
coeffs.add(p1.second)
gcds.add(gcd)
gcds.add(gcd)
for (i in 2 until v.size) {
val (gcdnew, pi) = extendedGcd(gcd, v[i])
gcd = gcdnew
coeffs.add(pi.second)
gcds.add(gcd)
}
for (i in gcds.indices) {
if (gcds[i] != gcd) {
coeffs[i] *= gcds[i] / gcd
}
}
return gcd to coeffs
}
fun extendedGcdBigInteger(v: List<BigInteger>): Pair<BigInteger, List<BigInteger>> {
if (v.size < 2) throw IllegalArgumentException("Expected at least 2 elements")
val gcds = ArrayList<BigInteger>(v.size)
val coeffs = ArrayList<BigInteger>(v.size)
var (gcd, p1) = extendedGcd(v[0], v[1])
coeffs.add(p1.first)
coeffs.add(p1.second)
gcds.add(gcd)
gcds.add(gcd)
for (i in 2 until v.size) {
val (gcdnew, pi) = extendedGcd(gcd, v[i])
gcd = gcdnew
coeffs.add(pi.second)
gcds.add(gcd)
}
for (i in gcds.indices) {
if (gcds[i] != gcd) {
coeffs[i] *= gcds[i] / gcd
}
}
return gcd to coeffs
}
fun calcPrimeFactorsAndPhi(
n: Long,
primes: MutableList<Long>,
allPrimes: MutableSet<Long>
): Pair<List<Pair<Long, Int>>, Long> {
val factors = ArrayList<Pair<Long, Int>>()
var phi = 1L
var rem = n
+1 -1
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@@ -82,7 +82,7 @@ Prize: X=18641, Y=10279
// Linear Diophantine equations
/* The simplest linear Diophantine equation takes the form
a*x + b*x = c
a*x + b*y = c
where a, b and c are given integers.
The solutions are described by the following theorem:
This Diophantine equation has a solution (where x and y are integers),
+55 -113
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@@ -1,9 +1,14 @@
package aoc2025
import chineseRemainder
import extendedGcdBigInteger
import primeFactors
import primeSequence
import println
import readInput
import sieveOfErastosthenes
import splitInts
import java.util.*
import java.math.BigInteger
/*
--- Day 10: Factory ---
@@ -29,7 +34,6 @@ fun main() {
val toggles =
stuff.drop(1).dropLast(1)
.map { it.removeSurrounding("(", ")").splitInts(",").fold(0) { acc, v -> acc + (1 shl v) } }
.sortedByDescending { it.countOneBits() }
.toIntArray()
val joltages = stuff.last().removeSurrounding("{", "}").splitInts(",").toIntArray()
machines.add(Machine(machSize, target, toggles, joltages))
@@ -41,138 +45,76 @@ fun main() {
val machines = parse(input)
var sumButts = 0
for (m in machines) {
val pq = LinkedList<Pair<Int, Int>>()
val killArray = BooleanArray(1 shl m.size)
pq.add(0 to 0)
out@ while (pq.isNotEmpty()) {
val (v, bi) = pq.poll()
for (t in m.toggles) {
val nv = v xor t
if (nv == m.target) {
sumButts += bi + 1
break@out
}
if (!killArray[nv]) {
killArray[v] = true
pq.add(nv to bi + 1)
}
// look at which different possible sets of toggles need to be pressed to result in the target number
// pressing an even time will cancel out the effect, so only look what happens if you press once
var minPresses = Int.MAX_VALUE
for (tm in 1 until (1 shl m.toggles.size)) {
val odds = m.toggles.filterIndexed { i, v -> (1 shl i) and tm != 0 }
val result = odds.fold(0) { acc, iv -> acc xor iv }
if (result == m.target) {
minPresses = minPresses.coerceAtMost(odds.size)
}
}
sumButts += minPresses
}
return sumButts
}
data class Toggle(val idx: Int, val v: Int, var min: Int = 0, var max: Int = Int.MAX_VALUE)
fun applyJoltage(jolts: IntArray, toggle: Toggle, times: Int = 1): Boolean {
var tt = toggle.v
var jp = 0
var valid = true
while (tt != 0) {
if (tt and 1 != 0) {
jolts[jp] -= times
if (jolts[jp] < 0) {
valid = false
break
}
}
tt = tt shr 1
jp++
}
return valid
}
fun findMaxButtonPresses(jolts: IntArray, toggle: Toggle): Int {
var tt = toggle.v
var jp = 0
val maxPresses = Int.MAX_VALUE
while (tt != 0) {
if (tt and 1 != 0) {
maxPresses.coerceAtMost(jolts[jp] / 2)
}
tt = tt shr 1
jp++
}
return maxPresses
}
fun part2(input: List<String>): Int {
val machines = parse(input)
val sieve = sieveOfErastosthenes(10000)
val primes = primeSequence(sieve).take(500).toList()
var sumButts = 0
for (m in machines) {
// generate toggles and calculate the global maximum of toggle presses for this toggle
val toggles = m.toggles.mapIndexed { i, t ->
Toggle(i,
t,
max = IntRange(0, m.size).filter { b -> t and (1 shl b) != 0 }.minOf { m.joltage[it] })
println()
val maxJoltage = m.joltage.max()
val numBits = 32 - maxJoltage.countLeadingZeroBits()
val bigTarget = m.joltage.foldIndexed(BigInteger.ZERO) { index, acc, i ->
acc.plus(
BigInteger.valueOf(i.toLong()).shiftLeft(numBits * index)
)
}
// try to calculate a minimum number of toggle presses as the joltage needs to be reached exactly
val subsets = Array(m.size) { toggles.filter { v -> (1 shl it) and v.v != 0 }.toTypedArray() }
for (v in toggles) {
var minT = 0
for (b in 0 until m.size) {
var rj = m.joltage[b]
var found = false
for (s in subsets[b]) {
if (s === v) {
found = true
} else {
rj -= s.max
if (rj < 0) break
}
val bigToggles = ArrayList<BigInteger>()
for (t in m.toggles) {
var tt = t
var bigToggle = BigInteger.ZERO
var shift = 0
while (tt > 0) {
if (tt and 1 != 0) {
bigToggle += BigInteger.ONE.shiftLeft(shift)
}
if (found) minT = minT.coerceAtLeast(rj)
shift += numBits
tt = tt shr 1
}
if (minT > v.max) throw IllegalStateException()
v.min = minT
bigToggles.add(bigToggle)
}
// iterate over the possible odd sets
var minPushes = Int.MAX_VALUE
val jolts = m.joltage.copyOf()
val pressCount = IntArray(m.toggles.size)
// j0 * bigtoggle[0] + j1 * bigtoggle[1] + ... = bigTarget
// is a Linear Diophantine equation that can be solved with the extended Euclidean algorithm
// press all buttons regarding their minimal count (if any)
for (t in toggles) {
if (pressCount[t.idx] + t.min > t.max || !applyJoltage(
jolts,
t,
times = t.min
)
) throw IllegalStateException()
pressCount[t.idx] += t.min
}
// this is the starting point for the exhaustive search
val pq = PriorityQueue(compareBy<Pair<IntArray, IntArray>> { it.second.sum() })
pq.add(jolts to pressCount)
while (pq.isNotEmpty()) {
val (j, tc) = pq.poll()
val pushes = tc.sum()
if (pushes >= minPushes) break
// if the joltage has counted down to zero, we're done
if (j.sum() == 0) {
minPushes = pushes
val (gcd, coeffients) = extendedGcdBigInteger(bigToggles)
if (bigTarget % gcd != BigInteger.ZERO) throw IllegalStateException()
val factorMap = HashMap<Long, Long>()
var good = true
val primeFactors = primeFactors(bigTarget.toLong(), sieve)
for (pf in primeFactors) {
val sf = factorMap[pf]
val pr = 1000 % pf
if (sf != null && sf != pr) {
good = false
break
}
for (t in toggles) {
if (tc[t.idx] + 2 <= t.max) {
val maxTimes = findMaxButtonPresses(j, t)
if (maxTimes > 0) {
val nj = j.copyOf()
if (applyJoltage(nj, t, maxTimes)) {
val ntc = tc.copyOf()
ntc[t.idx] += maxTimes
pq.add(nj to ntc)
}
}
}
}
factorMap[pf] = pr
}
println("$minPushes")
sumButts += minPushes
}
val reducedPairs = factorMap.map { it.value to it.key }.sortedBy { it.second }
val rx = reducedPairs.chineseRemainder()
val leastFingers = 0
println(leastFingers)
sumButts += leastFingers
}
return sumButts
}
+98
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@@ -0,0 +1,98 @@
package aoc2025
import println
import readInput
/*
--- Day 11: Reactor ---
https://adventofcode.com/2025/day/11
*/
fun main() {
val inlineTestInput = """
aaa: you hhh
you: bbb ccc
bbb: ddd eee
ccc: ddd eee fff
ddd: ggg
eee: out
fff: out
ggg: out
hhh: ccc fff iii
iii: out
"""
val inlineTestInput2 = """
svr: aaa bbb
aaa: fft
fft: ccc
bbb: tty
tty: ccc
ccc: ddd eee
ddd: hub
hub: fff
eee: dac
dac: fff
fff: ggg hhh
ggg: out
hhh: out
"""
fun parseInput(input: List<String>): HashMap<String, MutableSet<String>> {
val children = HashMap<String, MutableSet<String>>()
for (i in input) {
val (n, chs) = i.split(": ")
val ch = chs.split(" ")
children.getOrPut(n) { HashSet() }.addAll(ch)
}
return children
}
fun rec(
children: HashMap<String, MutableSet<String>>,
p: String,
stop: String,
visited: MutableSet<String> = HashSet(),
memo: HashMap<String, Long> = HashMap()
): Long {
if (p == stop) return 1L
return memo.getOrPut(p) {
visited.add(p)
val res = children[p]?.sumOf { rec(children, it, stop, visited, memo) } ?: 0L
visited.remove(p)
res
}
}
fun part1(input: List<String>): Long {
return rec(parseInput(input), "you", "out")
}
fun part2(input: List<String>): Long {
val children = parseInput(input)
val srvToDac = rec(children, "svr", "dac")
val dacToFft = rec(children, "dac", "fft")
val fftToOut = rec(children, "fft", "out")
val srvToFft = rec(children, "svr", "fft")
val fftToDac = rec(children, "fft", "dac")
val dacToOut = rec(children, "dac", "out")
return srvToDac * dacToFft * fftToOut + srvToFft * fftToDac * dacToOut
}
// test if implementation meets criteria from the description, like:
val testInput = inlineTestInput.trim().reader().readLines()
val testInput2 = inlineTestInput2.trim().reader().readLines()
//val testInput = readInput("aoc2025/Day11_test")
val testInputPart1Result = part1(testInput)
println("Part 1 Test: $testInputPart1Result")
val testInputPart2Result = part2(testInput2)
println("Part 2 Test: $testInputPart2Result")
check(testInputPart1Result == 5L)
check(testInputPart2Result == 2L)
val input = readInput("aoc2025/Day11")
part1(input).println()
part2(input).println()
}
+126
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@@ -0,0 +1,126 @@
package aoc2025
import CharGrid
import println
import readInput
import splitInts
/*
--- Day 12: Christmas Tree Farm ---
https://adventofcode.com/2025/day/12
*/
fun main() {
val inlineTestInput = """
0:
###
##.
##.
1:
###
##.
.##
2:
.##
###
##.
3:
##.
###
##.
4:
###
#..
###
5:
###
.#.
###
4x4: 0 0 0 0 2 0
12x5: 1 0 1 0 2 2
12x5: 1 0 1 0 3 2
"""
fun fits(grid: LongArray, x: Int, y: Int, present: Long) =
(grid[y] or ((7L and present) shl x) == grid[y]) &&
(grid[y + 1] or ((7L and (present shr 3)) shl x) == grid[y + 1]) &&
(grid[y + 2] or ((7L and (present shr 6)) shl x) == grid[y + 2])
fun part1(input: List<String>): Int {
var lp = 0
val presents = ArrayList<IntArray>()
// nothing of this stuff is needed :-(
while (!input[lp].contains("x")) {
var charGrid = CharGrid(input.subList(lp + 1, lp + 4))
lp += 5
val setRot = HashSet<Int>()
for (r in 0..7) {
val present = charGrid.generateGridPos().foldIndexed(0) { index, acc, pos -> acc + (if (charGrid[pos] == '#') (1 shl index) else 0) }
setRot.add(present)
if (r != 3) {
// rotate
val newGrid = charGrid.copyOf()
newGrid.generateGridPos().forEach { (dc, dr) -> newGrid[2 - dr, dc] = charGrid[dc, dr] }
charGrid = newGrid
} else {
// flip
val newGrid = charGrid.copyOf()
newGrid.generateGridPos().forEach { (dc, dr) -> newGrid[2 - dc, dr] = charGrid[dc, dr] }
charGrid = newGrid
}
}
presents.add(setRot.toIntArray())
}
var fitted = 0
val presentSizes = presents.map { it[0].countOneBits() }.toIntArray()
for (p in lp until input.size) {
val (dim, pl) = input[p].split(": ")
val (width, height) = dim.splitInts("x")
val placements = pl.splitInts().toIntArray()
val totalSize = placements.mapIndexed { i, v -> v * presentSizes[i] }.sum()
if (totalSize > width * height) {
continue
}
val totalPresents = placements.sum()
// just assume it will fit if there is enough area
if (totalPresents * 9 <= width * height) {
fitted++
continue
}
println("Oh no!")
// here the hard part would have started, but except for the example input,
// it never gets here
//val grid = LongArray(height) { (1L shl width) - 1L }
}
return fitted
}
fun part2(input: List<String>): Int {
return 0
}
// test if implementation meets criteria from the description, like:
val testInput = inlineTestInput.trim().reader().readLines()
//val testInput = readInput("aoc2025/Day12_test")
val testInputPart1Result = part1(testInput)
println("Part 1 Test: $testInputPart1Result")
val testInputPart2Result = part2(testInput)
println("Part 2 Test: $testInputPart2Result")
//check(testInputPart1Result == 2)
check(testInputPart2Result == 0)
val input = readInput("aoc2025/Day12")
part1(input).println()
part2(input).println()
}