278 lines
6.1 KiB
C#
278 lines
6.1 KiB
C#
using Godot;
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using System;
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using System.Collections.Generic;
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using System.Linq;
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using static WFC;
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public partial class Layer : Node3D
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{
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Random rand = new Random();
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private Node3D decorationRoot;
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public Tile[,] tiles;
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int layerSize;
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Tile tile;
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int level;
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bool updateFailed = false;
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public bool hasContentGenerated = false;
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// Called when the node enters the scene tree for the first time.
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public override void _Ready()
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{
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decorationRoot = new Node3D
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{
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Name = "Decorations"
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};
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AddChild(decorationRoot);
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}
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// Called every frame. 'delta' is the elapsed time since the previous frame.
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public override void _Process(double delta)
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{
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}
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public void ClearDecorations()
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{
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foreach (var tile in tiles)
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{
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foreach (Node child in tile.ContentNode.GetChildren())
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{
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child.QueueFree();
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}
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}
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}
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public void SetupLayer(int layerSize, int level, Dictionary<string, MeshInstance3D> tileMeshes)
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{
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this.layerSize = layerSize;
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this.level = level;
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tiles = new Tile[layerSize, layerSize];
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GenerateBaseStructure(tileMeshes);
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int safetyCounter = 0;
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while (true)
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{
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if (GenerateLayer()) break;
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ResetLayer(tileMeshes);
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safetyCounter++;
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if (safetyCounter > 1000) break;
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}
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CreateTileNodes();
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}
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private void GenerateBaseStructure(Dictionary<string, MeshInstance3D> tileMeshes)
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{
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Vector3 position;
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float offsetX;
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float offsetY = level * 4 * -1;
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float offsetZ;
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for (int x = 0; x < layerSize; x++)
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{
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offsetX = x * 6;
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for (int y = 0; y < layerSize; y++)
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{
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offsetZ = y * 6;
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position = new Vector3(offsetX, offsetY, offsetZ);
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tile = new Tile();
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tile.SetMeshes(tileMeshes);
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tile.Position = position;
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tile.GridPosition = new Vector2I(x, y);
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tiles[x, y] = tile;
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}
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}
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}
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private void CreateTileNodes()
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{
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foreach (var tile in tiles)
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{
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var node = new Node3D
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{
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Position = tile.Position
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};
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decorationRoot.AddChild(node);
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tile.ContentNode = node;
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}
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}
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private void ResetLayer(Dictionary<string, MeshInstance3D> tileMeshes)
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{
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for (int x = 0; x < layerSize; x++)
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{
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for (int y = 0; y < layerSize; y++)
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{
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tiles[x, y].Reset(tileMeshes);
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}
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}
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}
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private bool GenerateBorder()
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{
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for (int x = 0; x < layerSize; x++)
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{
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for (int y = 0; y < layerSize; y++)
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{
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if (x == 0 || y == 0 || x == layerSize - 1 || y == layerSize - 1)
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{
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var tile = tiles[x, y];
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List<string> possibilities = new();
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if(x == 0 && y == 0)
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{
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possibilities.Add("corner_down_right");
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}
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else if(x == 0 && y == layerSize - 1)
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{
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possibilities.Add("corner_up_right");
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}
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else if(x == layerSize - 1 && y == 0)
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{
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possibilities.Add("corner_down_left");
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}
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else if(x == layerSize - 1 && y == layerSize - 1)
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{
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possibilities.Add("corner_up_left");
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}
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else if(y == 0)
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{
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possibilities.Add("straight_left_right");
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possibilities.Add("t_down");
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}
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else if(y == layerSize - 1)
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{
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possibilities.Add("straight_left_right");
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possibilities.Add("t_up");
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}
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else if(x == 0)
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{
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possibilities.Add("straight_up_down");
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possibilities.Add("t_right");
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}
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else if(x == layerSize - 1)
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{
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possibilities.Add("straight_up_down");
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possibilities.Add("t_left");
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}
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string result = tile.Collapse(possibilities[rand.Next(0, possibilities.Count)]);
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if (result == "ERR")
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return false;
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NewPropagate(new Vector2I(x, y));
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}
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}
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}
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return true;
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}
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public bool GenerateLayer()
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{
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bool result = true;
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int safetyCounter = 0;
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if (!GenerateBorder())
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{
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return false;
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}
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Vector2I position = GetSmallestPossibilities();
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while (true)
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{
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string keyword = tiles[position.X, position.Y].Collapse("");
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if (keyword == "ERR") return false;
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if (keyword != "")
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{
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NewPropagate(position);
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if (updateFailed) break;
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position = GetSmallestPossibilities();
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if (position == new Vector2(-100, -100))
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{
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break;
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}
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continue;
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}
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safetyCounter++;
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if (safetyCounter == layerSize * layerSize) return false;
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}
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if (updateFailed) return false;
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//Player has over 80% of tiles available without destroying walls => Results in about 95% success rate
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//Not necessarily needed but improves the overall generation percentage at a low resource cost
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if (!WFC.IsMapConnected(tiles, 0.8f)) return false;
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return result;
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}
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private void NewPropagate(Vector2I startPos)
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{
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Queue<Vector2I> queue = new Queue<Vector2I>();
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queue.Enqueue(startPos);
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while (queue.Count > 0)
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{
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Vector2I currentPos = queue.Dequeue();
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Tile currentTile = tiles[currentPos.X, currentPos.Y];
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// Use CURRENT state of tile
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var currentPossibilities = currentTile.collapsedMesh != null
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? new HashSet<string> { currentTile.collapsedMesh }
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: new HashSet<string>(currentTile.tileMeshes.Keys);
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for (int i = 0; i < dirs.Length; i++)
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{
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Vector2I newPos = currentPos + offsets[i];
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if (!InBounds(newPos, layerSize)) continue;
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Tile neighborTile = tiles[newPos.X, newPos.Y];
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HashSet<string> allowed = new HashSet<string>();
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foreach (string neighborOption in neighborTile.tileMeshes.Keys)
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{
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foreach (string item in currentPossibilities)
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{
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if (WFC.CanConnect(item, neighborOption, dirs[i], false))
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{
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allowed.Add(neighborOption);
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break;
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}
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}
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}
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int updateCount = neighborTile.Propagate(allowed);
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if (updateCount == int.MaxValue)
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{
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updateFailed = true;
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return;
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}
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// ONLY enqueue if something changed
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if (updateCount > 0)
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{
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queue.Enqueue(newPos);
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}
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}
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}
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}
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private Vector2I GetSmallestPossibilities()
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{
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Vector2I result = new Vector2I(-100, -100);
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int lowest = 100;
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int current;
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for (int x = 0; x < layerSize; x++)
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{
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for (int y = 0; y < layerSize; y++)
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{
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if (tiles[x, y].collapsedMesh != null) continue;
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current = tiles[x, y].tileMeshes.Count;
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if (current < lowest)
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{
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result = new Vector2I(x, y);
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lowest = current;
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}
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}
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}
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return result;
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}
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}
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