using System;
///
/// Droplet-based hydraulic erosion (terrain-water task 17, Phase C0) — the organic
/// carve-AND-deposit pass, Lague/Beyer lineage. Pure numeric over the height array
/// (D-035; a named future C++ candidate, kept standalone — no Godot types at all,
/// System.MathF only, own deterministic PCG32 RNG).
///
/// Each droplet spawns on land (spawn probability weighted toward high ground),
/// then walks downhill with inertia, carrying water and sediment. Where the ground
/// is steep and it moves fast it ERODES (up to capacity, spread over a small brush
/// so no single-cell spikes — the anti-artifact that killed the D8 predecessor);
/// where it flattens out it DEPOSITS, building valley floors and fans, over the
/// SAME brush (task 18 — bilinear 4-cell deposition built isolated cones at gully
/// mouths; carving and dumping are now symmetric). Water
/// evaporates each step; the droplet dies at its lifetime, at the map edge, or on
/// reaching the sea (its remaining sediment is lost to the ocean).
///
/// OUTPUT-ONLY: this pass is applied to the RENDER height map only; the classify
/// map never sees it (the caller owns that split — see MapGenerator).
///
/// The three hard governors (the pass provably cannot run away):
/// 1. DropletCount — total droplets (the main detail/cost dial).
/// 2. Lifetime — max steps per droplet; no infinite wandering.
/// 3. CarveCapM — max erosion depth per cell, in metres, measured from the
/// height the pass found and enforced against a per-cell NET
/// displacement ledger. The runaway-trench guard, and the
/// dial that decides how deep trunk channels may cut.
/// 4. DepositCapM — max build-up per cell, the same ledger read the other way
/// (task 18). Brush-spreading alone does not bound a spike:
/// droplets on long paths carry far more sediment, and a
/// loaded droplet meeting a rise dumps min(rise, load) at
/// once. This makes "no deposit cones" a governor rather
/// than a hope. <= 0 disables it (the reference model).
///
/// The sea clamp (the "don't over-flood" guard): erosion never lowers any cell
/// below its local sea level + SeaMarginM, and cells already below sea are
/// read-only — never eroded, never deposited on. Land stays land, sea stays sea;
/// the rendered coastline cannot move. Deposition only raises land cells.
///
/// The crater treatment (task 19): no cell within the protected strike CORE is
/// modified (droplets may traverse), and outside it either FULL strength applies
/// immediately or FEATHER ramps in across a band. The carve remains the final
/// authority on the deep bowl; the bay's sea connection is guaranteed by the sea
/// clamp rather than by the exclusion, since below-sea cells are read-only in
/// both directions.
///
/// Heights in the array are raw blueprint units (1 unit = 251 m). All sediment
/// accounting below is done in METRES and converted only when a delta is applied,
/// so untouched cells keep their exact bit pattern — the invariants above are
/// exact, not statistical.
///
public static class HydraulicErosion
{
// The EROS body version is owned by the format (Core) and read from there, not
// restated here: the version byte IS the payload layout's identity, so a local
// copy that drifts writes a v2 body stamped v1 and every reader shifts a field.
// (Caught doing exactly that in task 18 — mirrors TerrainDetailPass.VERSION.)
public const ushort VERSION = IslaApocalypse.Core.BlueprintFormat.EROS_VERSION;
// Deterministic RNG stream: seeded from resolvedSeed + this offset, so a seed
// reproduces exactly and the stream is decorrelated from every noise field
// (7409/8117/… are taken; see MakeModulationNoise call sites).
public const int SEED_OFFSET = 9271;
public const float M_PER_UNIT = 251f;
// --- Crater treatment (task 19) ---
//
// Task 17 used a hard 1.2 × CraterRadius cutoff. Measured on seed 1280587109
// (task-19 radius dump): the carve writes only inside 0.80 × (640 px) and its
// displacement is EXACTLY 0 beyond that, so the 640–960 px annulus was 620,811
// land cells of ordinary terrain held smooth for no geometric reason — a
// visible un-eroded disc against dissected ground, with a hard edge.
//
// The protected core is now the deep strike zone only. The bay itself needs no
// exclusion: below-sea cells are read-only in both directions (the sea clamp),
// so erosion can neither carve the bay's sea connection open nor silt it shut.
// The core exists to stop the BOWL being dissected on seeds where it holds land
// (on 1280587109 there is no land at all inside 0.50 ×, so the core is
// functionally redundant there — the guard is for the general seed).
public const float CRATER_CORE_FACTOR_DEFAULT = 0.50f; // ×CraterRadius
public const float CRATER_FEATHER_FACTOR_DEFAULT = 1.05f; // ×CraterRadius, FEATHER only
public const byte CRATER_MODE_FULL = 0;
public const byte CRATER_MODE_FEATHER = 1;
// Spawn: droplets source in the mountains, never the ocean. A land point is
// accepted with probability SPAWN_FLOOR + (1-SPAWN_FLOOR) · relative elevation,
// after at most SPAWN_TRIES rejection-sampling attempts (then the droplet is
// skipped and counted — on any real island this is vanishingly rare).
private const int SPAWN_TRIES = 16;
private const float SPAWN_FLOOR = 0.15f;
private const float MIN_WATER = 0.005f; // droplet dies when effectively dry
private const float MIN_DIR = 1e-10f; // below this, direction is re-drawn at random
public struct Params
{
public int DropletCount; // governor 1
public int Lifetime; // governor 2
public float CarveCapM; // governor 3 (metres)
public float DepositCapM; // governor 4 (metres); <= 0 = unbounded
public float SeaMarginM; // sea clamp margin (metres)
public int BrushRadius; // erosion brush radius, px
public float Inertia; // 0 = pure gradient descent, 1 = never turns
public float CapacityFactor; // sediment capacity multiplier
public float MinSlopeM; // capacity slope floor, metres per px
public float ErodeRate; // fraction of remaining capacity eroded per step
public float DepositRate; // fraction of surplus sediment dropped per step
public float Evaporation; // water lost per step (fraction)
public float Gravity; // speed gain per metre of drop
public byte CraterMode; // CRATER_MODE_FULL | CRATER_MODE_FEATHER (task 19)
public int Seed; // resolvedSeed + SEED_OFFSET
}
public class Stats
{
public int Spawned;
public int SkippedNoLand;
public long Steps;
public int DiedLifetime, DiedEdge, DiedSea, DiedDry;
public double ErodedVolumeM3; // 1 px = 1 m², so metres of depth sum to m³
public double DepositedVolumeM3;
public float MaxCellErosionM; // must end ≤ CarveCapM
public float MaxCellDepositM; // the deposit-spike metric (task 18)
public long ModifiedCells; // cells the pass touched at all
}
// PCG32 (O'Neill) — tiny, deterministic, trivially portable to C++.
private struct Pcg32
{
private ulong _state;
public Pcg32(int seed) { _state = 0; NextU(); _state += (ulong)(uint)seed; NextU(); }
public uint NextU()
{
ulong old = _state;
_state = old * 6364136223846793005UL + 1442695040888963407UL;
uint xorshifted = (uint)(((old >> 18) ^ old) >> 27);
int rot = (int)(old >> 59);
return (xorshifted >> rot) | (xorshifted << (-rot & 31));
}
public float NextF() => (NextU() >> 8) * (1f / 16777216f); // [0,1)
}
///
/// Runs the pass in place on . Sea level per cell is
/// [x,y] when non-null, else the flat scalar
/// . Throws (refusing the generation) if a governor
/// bound is violated on exit — the caller treats that as a build failure.
///
public static Stats Apply(float[,] height, int mapSize, float[,] seaMap, float seaFlat,
float craterCx, float craterCy, float craterCoreRadius, float craterFeatherRadius, Params p)
{
var stats = new Stats();
var rng = new Pcg32(p.Seed);
float capUnits = p.CarveCapM / M_PER_UNIT;
if (p.DropletCount <= 0 || capUnits <= 0f) return stats;
// Per-cell NET displacement ledger, metres, positive = carved below where the
// pass found this cell, negative = built up above it. Governor 3's enforcement
// record: the cap bounds `net`, so it bounds erosion depth measured from the
// ORIGINAL height — deposit-then-carve at one cell cannot smuggle in extra
// depth, and carve-then-deposit correctly frees the headroom back up.
float[,] net = new float[mapSize, mapSize];
// Spawn weighting needs the seed's top height.
float hTop = float.MinValue;
for (int x = 0; x < mapSize; x++)
for (int y = 0; y < mapSize; y++)
if (height[x, y] > hTop) hTop = height[x, y];
// Erosion brush: all offsets within BrushRadius, cone-weighted (1 - d/r),
// normalized. Radius 0 degrades to the single cell.
int r = Math.Max(p.BrushRadius, 0);
int brushN = 0;
for (int dx = -r; dx <= r; dx++)
for (int dy = -r; dy <= r; dy++)
if (MathF.Sqrt(dx * dx + dy * dy) <= r + 1e-4f) brushN++;
int[] brushDx = new int[brushN], brushDy = new int[brushN];
float[] brushW = new float[brushN];
{
int i = 0; float wSum = 0f;
for (int dx = -r; dx <= r; dx++)
for (int dy = -r; dy <= r; dy++)
{
float d = MathF.Sqrt(dx * dx + dy * dy);
if (d > r + 1e-4f) continue;
brushDx[i] = dx; brushDy[i] = dy;
brushW[i] = r > 0 ? 1f - d / (r + 1f) : 1f;
wSum += brushW[i]; i++;
}
for (int j = 0; j < brushN; j++) brushW[j] /= wSum;
}
float SeaAt(int cx, int cy) => seaMap != null ? seaMap[cx, cy] : seaFlat;
// Crater weight (task 19): 0 inside the protected strike core, 1 where erosion
// runs at full strength. FULL steps straight to 1 at the core boundary; FEATHER
// ramps linearly out to craterFeatherRadius, mirroring the detail pass's shape,
// so the crater reads as younger/less-weathered with no seam. Amounts are SCALED
// by this rather than skipped, which is what makes FEATHER a one-liner.
float coreSq = craterCoreRadius * craterCoreRadius;
bool feather = p.CraterMode == CRATER_MODE_FEATHER
&& craterFeatherRadius > craterCoreRadius;
float CraterWeight(int cx, int cy)
{
float ddx = cx - craterCx, ddy = cy - craterCy;
float d2 = ddx * ddx + ddy * ddy;
if (d2 < coreSq) return 0f;
if (!feather) return 1f;
float d = MathF.Sqrt(d2);
if (d >= craterFeatherRadius) return 1f;
return (d - craterCoreRadius) / (craterFeatherRadius - craterCoreRadius);
}
for (int drop = 0; drop < p.DropletCount; drop++)
{
// --- spawn (land only, elevation-weighted) ---
float px = -1f, py = -1f;
for (int attempt = 0; attempt < SPAWN_TRIES; attempt++)
{
float sx = 1f + rng.NextF() * (mapSize - 3);
float sy = 1f + rng.NextF() * (mapSize - 3);
int cx = (int)sx, cy = (int)sy;
float h = height[cx, cy];
float sea = SeaAt(cx, cy);
if (h < sea) { continue; }
float rel = hTop > sea ? Math.Clamp((h - sea) / (hTop - sea), 0f, 1f) : 0f;
if (rng.NextF() < SPAWN_FLOOR + (1f - SPAWN_FLOOR) * rel) { px = sx; py = sy; break; }
}
if (px < 0f) { stats.SkippedNoLand++; continue; }
stats.Spawned++;
float dirX = 0f, dirY = 0f, speed = 1f, water = 1f, sedimentM = 0f;
for (int step = 0; step < p.Lifetime; step++)
{
stats.Steps++;
int xi = (int)px, yi = (int)py;
float fx = px - xi, fy = py - yi;
// Bilinear height + gradient at the current position.
float h00 = height[xi, yi], h10 = height[xi + 1, yi];
float h01 = height[xi, yi + 1], h11 = height[xi + 1, yi + 1];
float gradX = (h10 - h00) * (1f - fy) + (h11 - h01) * fy;
float gradY = (h01 - h00) * (1f - fx) + (h11 - h10) * fx;
float hOld = h00 * (1f - fx) * (1f - fy) + h10 * fx * (1f - fy)
+ h01 * (1f - fx) * fy + h11 * fx * fy;
// Inertia blend, then one unit step.
dirX = dirX * p.Inertia - gradX * (1f - p.Inertia);
dirY = dirY * p.Inertia - gradY * (1f - p.Inertia);
float len = MathF.Sqrt(dirX * dirX + dirY * dirY);
if (len < MIN_DIR)
{
float ang = rng.NextF() * 2f * MathF.PI;
dirX = MathF.Cos(ang); dirY = MathF.Sin(ang); len = 1f;
}
dirX /= len; dirY /= len;
px += dirX; py += dirY;
if (px < 1f || px >= mapSize - 2 || py < 1f || py >= mapSize - 2)
{ stats.DiedEdge++; break; }
int nxi = (int)px, nyi = (int)py;
float nfx = px - nxi, nfy = py - nyi;
float n00 = height[nxi, nyi], n10 = height[nxi + 1, nyi];
float n01 = height[nxi, nyi + 1], n11 = height[nxi + 1, nyi + 1];
float hNew = n00 * (1f - nfx) * (1f - nfy) + n10 * nfx * (1f - nfy)
+ n01 * (1f - nfx) * nfy + n11 * nfx * nfy;
// Reached the sea: die; the sediment is the ocean's now.
if (hNew < SeaAt(nxi, nyi)) { stats.DiedSea++; break; }
float dhM = (hNew - hOld) * M_PER_UNIT;
float capacityM = MathF.Max(-dhM, p.MinSlopeM) * speed * water * p.CapacityFactor;
if (dhM > 0f || sedimentM > capacityM)
{
// Moving uphill (fill the pit behind us, at most the rise) or
// over capacity (drop a fraction of the surplus): DEPOSIT over
// the SAME cone brush erosion uses (task 18). Bilinear 4-cell
// deposition — the reference model's — concentrated a whole
// droplet's load into one cell at gully mouths and built
// isolated cones (measured 15.5 m on seed 1280587109, task 17
// §6.1). Spreading it makes deposition the symmetric mirror of
// carving; total mass is unchanged, only its footprint.
float amountM = dhM > 0f ? MathF.Min(dhM, sedimentM)
: (sedimentM - capacityM) * p.DepositRate;
if (amountM > 0f)
{
for (int b = 0; b < brushN; b++)
{
int cx = xi + brushDx[b], cy = yi + brushDy[b];
if (cx < 0 || cx >= mapSize || cy < 0 || cy >= mapSize) continue;
float wCrater = CraterWeight(cx, cy);
if (wCrater <= 0f) continue;
float hCell = height[cx, cy];
// Below-sea cells are read-only in BOTH directions: no
// submarine deltas, so the rendered coastline cannot move.
if (hCell < SeaAt(cx, cy)) continue;
float give = amountM * brushW[b] * wCrater;
// Governor 4: the ledger read the other way. net is negative
// where the cell has already been built up, so the headroom
// is cap + net.
if (p.DepositCapM > 0f)
give = MathF.Min(give, MathF.Max(0f, p.DepositCapM + net[cx, cy]));
if (give <= 0f) continue;
height[cx, cy] = hCell + give / M_PER_UNIT;
if (net[cx, cy] == 0f) stats.ModifiedCells++;
net[cx, cy] -= give;
if (-net[cx, cy] > stats.MaxCellDepositM) stats.MaxCellDepositM = -net[cx, cy];
sedimentM -= give;
stats.DepositedVolumeM3 += give;
}
}
}
else
{
// Under capacity on a downhill move: ERODE, spread over the
// brush, never more than the drop itself (no digging pits).
float amountM = MathF.Min((capacityM - sedimentM) * p.ErodeRate, -dhM);
if (amountM > 0f)
{
for (int b = 0; b < brushN; b++)
{
int cx = xi + brushDx[b], cy = yi + brushDy[b];
if (cx < 0 || cx >= mapSize || cy < 0 || cy >= mapSize) continue;
float wCrater = CraterWeight(cx, cy);
if (wCrater <= 0f) continue;
float sea = SeaAt(cx, cy);
float hCell = height[cx, cy];
if (hCell < sea) continue; // below-sea cells are read-only
float want = amountM * brushW[b] * wCrater;
float bySea = MathF.Max(0f, (hCell - (sea + p.SeaMarginM / M_PER_UNIT)) * M_PER_UNIT);
float byCap = MathF.Max(0f, p.CarveCapM - net[cx, cy]);
float take = MathF.Min(want, MathF.Min(bySea, byCap));
if (take <= 0f) continue;
height[cx, cy] = hCell - take / M_PER_UNIT;
if (net[cx, cy] == 0f) stats.ModifiedCells++;
net[cx, cy] += take;
if (net[cx, cy] > stats.MaxCellErosionM) stats.MaxCellErosionM = net[cx, cy];
sedimentM += take;
stats.ErodedVolumeM3 += take;
}
}
}
speed = MathF.Sqrt(MathF.Max(0f, speed * speed - dhM * p.Gravity));
water *= 1f - p.Evaporation;
if (water < MIN_WATER) { stats.DiedDry++; break; }
if (step == p.Lifetime - 1) stats.DiedLifetime++;
}
}
// Governor 3, proven on exit rather than assumed: the ledger's maximum must
// respect the cap (float addition of clamped takes cannot exceed it by more
// than rounding; allow one ulp-scale epsilon).
if (stats.MaxCellErosionM > p.CarveCapM * (1f + 1e-5f))
throw new InvalidOperationException(
$"[HydraulicErosion] CARVE-CAP VIOLATION: a cell accumulated {stats.MaxCellErosionM} m against cap {p.CarveCapM} m. Refusing to generate.");
if (p.DepositCapM > 0f && stats.MaxCellDepositM > p.DepositCapM * (1f + 1e-5f))
throw new InvalidOperationException(
$"[HydraulicErosion] DEPOSIT-CAP VIOLATION: a cell built up {stats.MaxCellDepositM} m against cap {p.DepositCapM} m. Refusing to generate.");
return stats;
}
}