HeightCurve (pure static, D-035): calibrated monotonic piecewise map — identity at/below sea 0.15; ease-out toe to the orange ceiling 0.206 (75% coverage, knot t1=P75=0.628736 from batch-04's pooled flat-sea land CDF, 340.6M samples); linear rise to red 0.27 (t2=P90); smooth shoulder to the 50m plateau shelf 0.3492 (t3=P93); near-flat plateau step (t4=P96); accelerating spike to the 220m peak cap 1.0265; linear tail past the calibrated max. Strict monotonicity asserted numerically at startup, loud throw on violation. Applied in GenerateTopography AFTER noise+falloff+Trench, BEFORE the crater carve (carve cuts curved terrain; rim/bowl untouched by the curve). Biome oracle mechanism: a retained uncurved classify heightmap (alias of _heightMap when off, zero cost) feeds biome rules, both flood fills, and the shared water predicates — classification is curve-invariant by construction. Towns/roads/diagnostics/exported heights use curved terrain; town positions may legitimately move. Config gate TerrainCurve: "off"|"v1" (default v1), unknown values rejected loudly. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
159 lines
4.5 KiB
C#
159 lines
4.5 KiB
C#
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using Godot;
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using Godot.Collections; // Required for Godot's built-in JSON parser
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namespace IslaApocalypse.Core // Change this if your namespace is different
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{
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public static class ConfigManager
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{
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// Default Fallbacks
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// public static int WorldSeed = 1063685222;
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public static int WorldSeed = (int)GD.Randi(); // if 0 also randomizes
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public static int MapSize = 8192;
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public static float CraterRadius = 400f;
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public static float DensityMultiplier = 1.0f; // <-- Replaces TownCount
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public static int ChunkRadius = 24; // Default chunk size, can be overridden by config
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// Iteration toggle: skip the ~25-min A* road pass entirely. The blueprint is
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// still exported (road sections present but empty) — an iteration artifact,
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// not a shippable world. Default false.
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public static bool SkipRoads = false;
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// Sea-level model (D-033, terrain-water task 04): "flat" = one scalar sea
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// level everywhere (SeaLevelValue); "field" = the legacy latitude Lerp
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// (0.26 north .. 0.15 south). Generator-only — the runtime never computes
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// sea level. Default: flat 0.15.
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public static string SeaLevelModel = "flat";
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public static float SeaLevelValue = 0.15f;
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// Height-redistribution curve (task 05, graduation M-7): "v1" applies the
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// calibrated storm-ladder curve to above-sea terrain (see HeightCurve.cs);
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// "off" is the raw legacy profile. Biome classification is curve-invariant
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// by construction either way. Default: v1.
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public static string TerrainCurve = "v1";
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public static void LoadConfig()
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{
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string path = "res://ServerConfig.json";
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if (!FileAccess.FileExists(path))
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{
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GD.PrintErr("[ConfigManager] ServerConfig.json not found! Defaulting to 8K.");
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return;
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}
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// Read the file
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using var file = FileAccess.Open(path, FileAccess.ModeFlags.Read);
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string content = file.GetAsText();
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// Parse the JSON
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var json = new Json();
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var error = json.Parse(content);
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if (error != Error.Ok)
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{
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GD.PrintErr($"[ConfigManager] JSON Parse Error: {json.GetErrorMessage()}");
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return;
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}
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var data = (Dictionary)json.Data;
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// Extract the Seed
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if (data.ContainsKey("WorldSeed"))
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{
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WorldSeed = (int)data["WorldSeed"];
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}
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// Extract the MapProfile and run your Switch/Case logic!
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string profile = "8K";
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if (data.ContainsKey("MapProfile"))
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{
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profile = (string)data["MapProfile"];
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}
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// Extract the TownDensity and run your Switch/Case logic!
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string townDensity = "Normal";
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if (data.ContainsKey("TownDensity"))
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{
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townDensity = (string)data["TownDensity"];
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}
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// Extract the ChunkRadius
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if (data.ContainsKey("ChunkRadius")) {
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ChunkRadius = (int)data["ChunkRadius"];
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}
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// Extract the SkipRoads iteration toggle
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if (data.ContainsKey("SkipRoads"))
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{
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SkipRoads = (bool)data["SkipRoads"];
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}
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// Extract the sea-level model
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if (data.ContainsKey("SeaLevelModel"))
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{
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string model = (string)data["SeaLevelModel"];
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if (model == "flat" || model == "field")
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SeaLevelModel = model;
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else
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GD.PrintErr($"[ConfigManager] Unknown SeaLevelModel '{model}'. Keeping '{SeaLevelModel}'.");
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}
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if (data.ContainsKey("SeaLevelValue"))
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{
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SeaLevelValue = (float)data["SeaLevelValue"];
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}
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// Extract the terrain-curve gate
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if (data.ContainsKey("TerrainCurve"))
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{
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string curve = (string)data["TerrainCurve"];
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if (curve == "off" || curve == "v1")
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TerrainCurve = curve;
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else
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GD.PrintErr($"[ConfigManager] Unknown TerrainCurve '{curve}'. Keeping '{TerrainCurve}'.");
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}
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switch (profile)
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{
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case "4K":
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MapSize = 4096;
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CraterRadius = 400f; // Scaled down crater
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break;
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case "6K":
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MapSize = 6144;
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CraterRadius = 600f;
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break;
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case "8K":
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MapSize = 8192;
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CraterRadius = 800f; // Your original crater size spread over an 8K map
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break;
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case "10K":
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MapSize = 10240;
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CraterRadius = 1000f;
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break;
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default:
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GD.PrintErr($"[ConfigManager] Unknown MapProfile '{profile}'. Defaulting to 8K.");
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MapSize = 8192;
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CraterRadius = 800f;
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break;
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}
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switch (townDensity)
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{
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case "Sparse":
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DensityMultiplier = 0.5f;
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break;
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case "Normal":
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DensityMultiplier = 1.0f;
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break;
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case "Dense":
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DensityMultiplier = 2.0f;
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break;
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default:
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GD.PrintErr($"[ConfigManager] Unknown TownDensity '{townDensity}'. Defaulting to Normal.");
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DensityMultiplier = 1.0f;
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break;
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}
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GD.Print($"[ConfigManager] Successfully loaded {profile} Profile. MapSize set to {MapSize}.");
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}
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}
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}
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