282 lines
8.4 KiB
C#
282 lines
8.4 KiB
C#
using UnityEngine;
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using System.Collections;
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using System.Collections.Generic;
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namespace Pathfinding.Examples {
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/// <summary>Example script for generating an infinite procedural world</summary>
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[HelpURL("http://arongranberg.com/astar/docs/class_pathfinding_1_1_examples_1_1_procedural_world.php")]
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public class ProceduralWorld : MonoBehaviour {
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public Transform target;
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public ProceduralPrefab[] prefabs;
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/// <summary>How far away to generate tiles</summary>
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public int range = 1;
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public int disableAsyncLoadWithinRange = 1;
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/// <summary>World size of tiles</summary>
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public float tileSize = 100;
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public int subTiles = 20;
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/// <summary>
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/// Enable static batching on generated tiles.
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/// Will improve overall FPS, but might cause FPS drops on
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/// some frames when static batching is done
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/// </summary>
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public bool staticBatching = false;
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Queue<IEnumerator> tileGenerationQueue = new Queue<IEnumerator>();
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public enum RotationRandomness {
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AllAxes,
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Y
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}
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[System.Serializable]
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public class ProceduralPrefab {
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/// <summary>Prefab to use</summary>
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public GameObject prefab;
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/// <summary>Number of objects per square world unit</summary>
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public float density = 0;
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/// <summary>
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/// Multiply by [perlin noise].
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/// Value from 0 to 1 indicating weight.
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/// </summary>
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public float perlin = 0;
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/// <summary>
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/// Perlin will be raised to this power.
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/// A higher value gives more distinct edges
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/// </summary>
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public float perlinPower = 1;
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/// <summary>Some offset to avoid identical density maps</summary>
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public Vector2 perlinOffset = Vector2.zero;
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/// <summary>
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/// Perlin noise scale.
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/// A higher value spreads out the maximums and minimums of the density.
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/// </summary>
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public float perlinScale = 1;
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/// <summary>
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/// Multiply by [random].
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/// Value from 0 to 1 indicating weight.
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/// </summary>
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public float random = 1;
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public RotationRandomness randomRotation = RotationRandomness.AllAxes;
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/// <summary>If checked, a single object will be created in the center of each tile</summary>
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public bool singleFixed = false;
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}
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/// <summary>All tiles</summary>
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Dictionary<Int2, ProceduralTile> tiles = new Dictionary<Int2, ProceduralTile>();
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// Use this for initialization
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void Start () {
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// Calculate the closest tiles
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// and then recalculate the graph
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Update();
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AstarPath.active.Scan();
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StartCoroutine(GenerateTiles());
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}
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// Update is called once per frame
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void Update () {
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// Calculate the tile the target is standing on
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Int2 p = new Int2(Mathf.RoundToInt((target.position.x - tileSize*0.5f) / tileSize), Mathf.RoundToInt((target.position.z - tileSize*0.5f) / tileSize));
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// Clamp range
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range = range < 1 ? 1 : range;
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// Remove tiles which are out of range
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bool changed = true;
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while (changed) {
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changed = false;
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foreach (KeyValuePair<Int2, ProceduralTile> pair in tiles) {
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if (Mathf.Abs(pair.Key.x-p.x) > range || Mathf.Abs(pair.Key.y-p.y) > range) {
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pair.Value.Destroy();
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tiles.Remove(pair.Key);
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changed = true;
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break;
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}
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}
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}
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// Add tiles which have come in range
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// and start calculating them
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for (int x = p.x-range; x <= p.x+range; x++) {
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for (int z = p.y-range; z <= p.y+range; z++) {
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if (!tiles.ContainsKey(new Int2(x, z))) {
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ProceduralTile tile = new ProceduralTile(this, x, z);
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var generator = tile.Generate();
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// Tick it one step forward
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generator.MoveNext();
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// Calculate the rest later
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tileGenerationQueue.Enqueue(generator);
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tiles.Add(new Int2(x, z), tile);
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}
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}
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}
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// The ones directly adjacent to the current one
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// should always be completely calculated
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// make sure they are
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for (int x = p.x-disableAsyncLoadWithinRange; x <= p.x+disableAsyncLoadWithinRange; x++) {
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for (int z = p.y-disableAsyncLoadWithinRange; z <= p.y+disableAsyncLoadWithinRange; z++) {
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tiles[new Int2(x, z)].ForceFinish();
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}
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}
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}
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IEnumerator GenerateTiles () {
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while (true) {
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if (tileGenerationQueue.Count > 0) {
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var generator = tileGenerationQueue.Dequeue();
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yield return StartCoroutine(generator);
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}
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yield return null;
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}
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}
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class ProceduralTile {
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int x, z;
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System.Random rnd;
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ProceduralWorld world;
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public bool destroyed { get; private set; }
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public ProceduralTile (ProceduralWorld world, int x, int z) {
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this.x = x;
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this.z = z;
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this.world = world;
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rnd = new System.Random((x * 10007) ^ (z*36007));
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}
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Transform root;
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IEnumerator ie;
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public IEnumerator Generate () {
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ie = InternalGenerate();
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GameObject rt = new GameObject("Tile " + x + " " + z);
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root = rt.transform;
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while (ie != null && root != null && ie.MoveNext()) yield return ie.Current;
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ie = null;
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}
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public void ForceFinish () {
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while (ie != null && root != null && ie.MoveNext()) {}
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ie = null;
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}
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Vector3 RandomInside () {
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Vector3 v = new Vector3();
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v.x = (x + (float)rnd.NextDouble())*world.tileSize;
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v.z = (z + (float)rnd.NextDouble())*world.tileSize;
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return v;
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}
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Vector3 RandomInside (float px, float pz) {
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Vector3 v = new Vector3();
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v.x = (px + (float)rnd.NextDouble()/world.subTiles)*world.tileSize;
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v.z = (pz + (float)rnd.NextDouble()/world.subTiles)*world.tileSize;
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return v;
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}
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Quaternion RandomYRot (ProceduralPrefab prefab) {
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return prefab.randomRotation == RotationRandomness.AllAxes ? Quaternion.Euler(360*(float)rnd.NextDouble(), 360*(float)rnd.NextDouble(), 360*(float)rnd.NextDouble()) : Quaternion.Euler(0, 360 * (float)rnd.NextDouble(), 0);
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}
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IEnumerator InternalGenerate () {
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Debug.Log("Generating tile " + x + ", " + z);
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int counter = 0;
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float[, ] ditherMap = new float[world.subTiles+2, world.subTiles+2];
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//List<GameObject> objs = new List<GameObject>();
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for (int i = 0; i < world.prefabs.Length; i++) {
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ProceduralPrefab pref = world.prefabs[i];
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if (pref.singleFixed) {
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Vector3 p = new Vector3((x+0.5f) * world.tileSize, 0, (z+0.5f) * world.tileSize);
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GameObject ob = GameObject.Instantiate(pref.prefab, p, Quaternion.identity) as GameObject;
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ob.transform.parent = root;
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} else {
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float subSize = world.tileSize/world.subTiles;
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for (int sx = 0; sx < world.subTiles; sx++) {
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for (int sz = 0; sz < world.subTiles; sz++) {
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ditherMap[sx+1, sz+1] = 0;
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}
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}
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for (int sx = 0; sx < world.subTiles; sx++) {
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for (int sz = 0; sz < world.subTiles; sz++) {
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float px = x + sx/(float)world.subTiles;//sx / world.tileSize;
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float pz = z + sz/(float)world.subTiles;//sz / world.tileSize;
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float perl = Mathf.Pow(Mathf.PerlinNoise((px + pref.perlinOffset.x)*pref.perlinScale, (pz + pref.perlinOffset.y)*pref.perlinScale), pref.perlinPower);
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float density = pref.density * Mathf.Lerp(1, perl, pref.perlin) * Mathf.Lerp(1, (float)rnd.NextDouble(), pref.random);
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float fcount = subSize*subSize*density + ditherMap[sx+1, sz+1];
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int count = Mathf.RoundToInt(fcount);
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// Apply dithering
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// See http://en.wikipedia.org/wiki/Floyd%E2%80%93Steinberg_dithering
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ditherMap[sx+1+1, sz+1+0] += (7f/16f) * (fcount - count);
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ditherMap[sx+1-1, sz+1+1] += (3f/16f) * (fcount - count);
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ditherMap[sx+1+0, sz+1+1] += (5f/16f) * (fcount - count);
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ditherMap[sx+1+1, sz+1+1] += (1f/16f) * (fcount - count);
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// Create a number of objects
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for (int j = 0; j < count; j++) {
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// Find a random position inside the current sub-tile
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Vector3 p = RandomInside(px, pz);
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GameObject ob = GameObject.Instantiate(pref.prefab, p, RandomYRot(pref)) as GameObject;
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ob.transform.parent = root;
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//ob.SetActive ( false );
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//objs.Add ( ob );
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counter++;
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if (counter % 2 == 0)
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yield return null;
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}
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}
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}
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}
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}
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ditherMap = null;
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yield return null;
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yield return null;
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//Batch everything for improved performance
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if (Application.HasProLicense() && world.staticBatching) {
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StaticBatchingUtility.Combine(root.gameObject);
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}
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}
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public void Destroy () {
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if (root != null) {
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Debug.Log("Destroying tile " + x + ", " + z);
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GameObject.Destroy(root.gameObject);
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root = null;
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}
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// Make sure the tile generator coroutine is destroyed
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ie = null;
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}
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}
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}
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}
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