195 lines
4.5 KiB
C#
195 lines
4.5 KiB
C#
using System.Diagnostics;
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namespace HauntedWasteland;
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public class Program
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{
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public static async Task<int> Main(string[] args)
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{
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if (args.Length is 0)
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{
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Console.WriteLine("Please provide a path to the input file.");
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return -1;
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}
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if (File.Exists(args[0]) is false)
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{
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Console.WriteLine("The provided file does not exist.");
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return -2;
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}
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var isPart2 = args.Length > 1 && args[1] == "part2";
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var input = await File.ReadAllLinesAsync(args[0]);
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var stopwatch = new Stopwatch();
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stopwatch.Start();
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var map = Map.Parse(input);
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var result = isPart2
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? map.CountStepsToAllZNodes()
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: map.CountStepsToZ();
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stopwatch.Stop();
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Console.WriteLine($"The number of steps is {result}. ({stopwatch.ElapsedMilliseconds}ms)");
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return (int)result;
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}
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}
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public class Map(
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List<char> turns,
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List<Node> nodes
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)
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{
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public List<char> Turns { get; init; } = turns;
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public List<Node> Nodes { get; init; } = nodes;
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public static Map Parse(string[] mapInput)
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{
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var turns = mapInput[0].ToList();
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var nodes = mapInput[2..]
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.Select(Node.Parse)
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.ToList();
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return new Map(turns, nodes);
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}
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public int CountStepsToZ()
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{
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var current = Nodes.First(n => n.Current == "AAA");
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var steps = 0;
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while (current.Current != "ZZZ")
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{
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var next = Turns[steps % Turns.Count] switch
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{
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'R' => current.Right,
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'L' => current.Left,
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_ => throw new Exception("Invalid turn")
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};
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current = Nodes.First(n => n.Current == next);
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steps++;
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}
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return steps;
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}
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// This method finds the prime factors of a given number.
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// It takes an integer 'number' as input and returns a list of prime factors.
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public List<long> FindPrimeFactors(long number)
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{
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var factors = new List<long>();
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// Start with the smallest prime number, 2.
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var divisor = 2;
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// Continue until the number is reduced to 2 or less.
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while (number >= 2)
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{
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// If the number is divisible by the current divisor,
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if (number % divisor == 0)
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{
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// Add the divisor to the list of factors.
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factors.Add(divisor);
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// Divide the number by the divisor to reduce it.
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number /= divisor;
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}
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else
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{
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// If the number is not divisible by the current divisor, increment the divisor.
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divisor++;
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}
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}
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return factors;
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}
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public long FindLeastCommonMultiple(List<long> numbers)
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{
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var primeFactors = numbers.Select(FindPrimeFactors).ToList();
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var uniquePrimeFactors = primeFactors
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.SelectMany(pf => pf)
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.Distinct()
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.ToList();
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var maxPrimeFactors = uniquePrimeFactors
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.Select(upf => primeFactors.Max(pf => pf.Count(f => f == upf)))
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.ToList();
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var result = uniquePrimeFactors
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.Zip(maxPrimeFactors)
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.Aggregate(
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(long)1,
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(acc, b) =>
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// b.First is the prime factor
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// b.Second is the number of times it occurs
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acc * (long)Math.Pow(b.First, b.Second)
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);
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return result;
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}
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public long CountStepsToAllZNodes()
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{
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var startNodes = Nodes.Where(n => n.Current.EndsWith('A')).ToList();
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var nodeSteps = new List<long>();
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foreach (var startNode in startNodes)
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{
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var current = startNode;
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var steps = 0;
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while (current.Current.EndsWith('Z') is false)
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{
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var next = Turns[steps % Turns.Count] switch
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{
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'R' => current.Right,
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'L' => current.Left,
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_ => throw new Exception("Invalid turn")
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};
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current = Nodes.First(n => n.Current == next);
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steps++;
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}
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nodeSteps.Add(steps);
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}
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return FindLeastCommonMultiple(nodeSteps);
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}
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}
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public class Node(
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string current,
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string left,
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string right
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)
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{
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public string Current { get; init; } = current;
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public string Left { get; init; } = left;
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public string Right { get; init; } = right;
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public override string ToString()
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{
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return $"{Current} = ({Left},{Right})";
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}
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public static Node Parse(string nodeString)
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{
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var parts = nodeString.Split(
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'=',
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StringSplitOptions.TrimEntries | StringSplitOptions.RemoveEmptyEntries
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);
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var current = parts[0];
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var nextNodes = parts[1].Split(
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',',
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StringSplitOptions.TrimEntries | StringSplitOptions.RemoveEmptyEntries
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);
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var left = nextNodes[0].Trim('(');
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var right = nextNodes[1].Trim(')');
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return new Node(current, left, right);
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}
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} |