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RPG_City_Maker_Reborn/terrain.go
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package main
import (
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"container/heap"
"image"
"image/color"
"image/draw"
"math"
"math/rand"
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"sort"
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"github.com/disintegration/imaging"
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"github.com/ojrac/opensimplex-go"
)
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// lakePixel represents a potential pixel to be added to a lake during growth
type lakePixel struct {
point image.Point
score float64
index int // required for heap.Interface
}
type priorityQueue []*lakePixel
func (pq priorityQueue) Len() int { return len(pq) }
func (pq priorityQueue) Less(i, j int) bool { return pq[i].score > pq[j].score } // Max-heap
func (pq priorityQueue) Swap(i, j int) {
pq[i], pq[j] = pq[j], pq[i]
pq[i].index = i
pq[j].index = j
}
func (pq *priorityQueue) Push(x interface{}) {
n := len(*pq)
item := x.(*lakePixel)
item.index = n
*pq = append(*pq, item)
}
func (pq *priorityQueue) Pop() interface{} {
old := *pq
n := len(old)
item := old[n-1]
old[n-1] = nil
item.index = -1
*pq = old[0 : n-1]
return item
}
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// GenerateLakes creates a specific number of lakes by dividing the image into chunks and placing one lake per chunk.
func GenerateLakes(width, height, numLakes int, lakeSizeLower, lakeSizeUpper float64, heightmap image.Image, seed int64) (image.Image, []image.Point) {
canvas := image.NewRGBA(image.Rect(0, 0, width, height))
draw.Draw(canvas, canvas.Bounds(), image.NewUniform(color.White), image.Point{}, draw.Src)
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if numLakes <= 0 || lakeSizeLower <= 0 {
return canvas, nil
}
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var allLakePixels []image.Point
randSrc := rand.New(rand.NewSource(seed))
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// 1. Divide the image into a grid
gridDim := int(math.Ceil(math.Sqrt(float64(numLakes))))
if gridDim == 0 {
return canvas, nil
}
chunkWidth := width / gridDim
chunkHeight := height / gridDim
if chunkWidth == 0 || chunkHeight == 0 {
return canvas, nil
}
// 2. Create a list of chunk indices and shuffle them to randomize lake placement
chunkIndices := make([]int, gridDim*gridDim)
for i := range chunkIndices {
chunkIndices[i] = i
}
randSrc.Shuffle(len(chunkIndices), func(i, j int) {
chunkIndices[i], chunkIndices[j] = chunkIndices[j], chunkIndices[i]
})
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totalArea := float64(width * height)
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noiseGen := opensimplex.New(seed)
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// 3. Generate a lake in a subset of the chunks
for i := 0; i < numLakes; i++ {
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if i >= len(chunkIndices) {
break
}
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// Each lake gets a random size within the defined range
lakeSize := lakeSizeLower
if lakeSizeUpper > lakeSizeLower {
lakeSize = lakeSizeLower + randSrc.Float64()*(lakeSizeUpper-lakeSizeLower)
}
targetPixelsPerLake := int(math.Round(totalArea*(lakeSize/100.0))) / 2
if targetPixelsPerLake <= 0 {
targetPixelsPerLake = 1
}
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chunkIndex := chunkIndices[i]
chunkGridX := chunkIndex % gridDim
chunkGridY := chunkIndex / gridDim
chunkRect := image.Rect(
chunkGridX*chunkWidth,
chunkGridY*chunkHeight,
(chunkGridX+1)*chunkWidth,
(chunkGridY+1)*chunkHeight,
)
// Use the growth algorithm within the chunk
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pq := &priorityQueue{}
heap.Init(pq)
visited := make(map[image.Point]bool)
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// Start near the center of the chunk
startPt := image.Point{
X: chunkRect.Min.X + chunkWidth/2,
Y: chunkRect.Min.Y + chunkHeight/2,
}
// just in case the center is out of bounds
if !startPt.In(chunkRect) {
continue
}
seedX := randSrc.Float64() * 10000.0
seedY := randSrc.Float64() * 10000.0
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radius := math.Sqrt(float64(targetPixelsPerLake) / math.Pi)
noiseFreq := 0.01 + (0.2 / (radius + 1.0))
getScore := func(pt image.Point) float64 {
dx, dy := pt.X-startPt.X, pt.Y-startPt.Y
dist := math.Sqrt(float64(dx*dx + dy*dy))
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noise := noiseGen.Eval2(seedX+float64(dx)*noiseFreq, seedY+float64(dy)*noiseFreq)
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distPenalty := math.Pow(dist/radius, 3.0)
luma, _, _, _ := heightmap.At(pt.X, pt.Y).RGBA()
heightmapVal := float64(luma) / 65535.0
heightmapEffect := (0.5 - heightmapVal) * 1.5
return noise - distPenalty + heightmapEffect
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}
heap.Push(pq, &lakePixel{point: startPt, score: getScore(startPt)})
visited[startPt] = true
lakeCount := 0
for pq.Len() > 0 && lakeCount < targetPixelsPerLake {
current := heap.Pop(pq).(*lakePixel)
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// The pixel is valid, claim it.
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canvas.Set(current.point.X, current.point.Y, color.RGBA{R: 0, G: 0, B: 255, A: 255})
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allLakePixels = append(allLakePixels, current.point)
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lakeCount++
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// Add neighbors, constrained to the chunk rectangle
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for dy := -1; dy <= 1; dy++ {
for dx := -1; dx <= 1; dx++ {
if dx == 0 && dy == 0 {
continue
}
neighbor := image.Point{X: current.point.X + dx, Y: current.point.Y + dy}
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if !neighbor.In(chunkRect) || visited[neighbor] {
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continue
}
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visited[neighbor] = true
heap.Push(pq, &lakePixel{
point: neighbor,
score: getScore(neighbor),
})
}
}
}
}
return canvas, allLakePixels
}
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type River struct {
Width float64
Start, End image.Point
Points []image.Point
}
func GenerateRivers(width, height, numRivers int, minWidth, maxWidth, curvyness float64, inputImage image.Image, lakePixels []image.Point, seed int64) (image.Image, []image.Point) {
if numRivers == 0 {
return inputImage, nil
}
canvas, ok := inputImage.(*image.RGBA)
if !ok {
canvas = image.NewRGBA(inputImage.Bounds())
draw.Draw(canvas, canvas.Bounds(), inputImage, image.Point{}, draw.Src)
}
var allRiverPixels []image.Point
randSrc := rand.New(rand.NewSource(seed))
avgDim := float64(width+height) / 2.0
isWater := make(map[image.Point]bool)
for _, p := range lakePixels {
isWater[p] = true
}
rivers := make([]River, numRivers)
for i := 0; i < numRivers; i++ {
widthPercent := float64(i) / float64(numRivers-1)
if numRivers == 1 {
widthPercent = 0.5
}
rivers[i].Width = maxWidth - widthPercent*(maxWidth-minWidth)
}
sort.Slice(rivers, func(i, j int) bool {
return rivers[i].Width > rivers[j].Width
})
numControlPoints := int(avgDim * 0.03)
if numControlPoints < 60 {
numControlPoints = 60
}
for i := range rivers {
r := &rivers[i]
startEdge := randSrc.Intn(4)
endEdge := (startEdge + randSrc.Intn(3) + 1) % 4
r.Start = getPointOnEdge(width, height, startEdge, randSrc)
r.End = getPointOnEdge(width, height, endEdge, randSrc)
path := calculatePath(r.Start, r.End, curvyness/100.0, avgDim, randSrc, numControlPoints)
for _, p := range path {
if isWater[p] {
r.End = p
path = calculatePath(r.Start, r.End, curvyness/100.0, avgDim, randSrc, numControlPoints)
break
}
}
riverWidthPx := (r.Width / 100.0) * avgDim
radius := riverWidthPx / 2.0
for _, p := range path {
drawCircle(canvas, p, radius, color.RGBA{R: 0, G: 0, B: 255, A: 255}, &allRiverPixels, isWater)
}
r.Points = path
}
return canvas, allRiverPixels
}
func getPointOnEdge(width, height, edge int, randSrc *rand.Rand) image.Point {
switch edge {
case 0: // Top
return image.Point{X: randSrc.Intn(width), Y: 0}
case 1: // Right
return image.Point{X: width - 1, Y: randSrc.Intn(height)}
case 2: // Bottom
return image.Point{X: randSrc.Intn(width), Y: height - 1}
default: // Left
return image.Point{X: 0, Y: randSrc.Intn(height)}
}
}
func calculatePath(start, end image.Point, curvyness, avgDim float64, randSrc *rand.Rand, numControlPoints int) []image.Point {
dx := end.X - start.X
dy := end.Y - start.Y
dist := math.Sqrt(float64(dx*dx + dy*dy))
if dist == 0 {
return []image.Point{start}
}
if curvyness == 0 {
return bresenham([]image.Point{start, end})
}
type wave struct {
amplitude float64
numWaves float64
phase float64
}
waves := make([]wave, 3)
amp := (avgDim / 10.0) * curvyness
mainWavelength := avgDim / 4.0
if mainWavelength < 1 {
mainWavelength = 1
}
baseNumWaves := (dist / mainWavelength) * curvyness
for i := 0; i < 3; i++ {
freqMultiplier := 1.0 + float64(i)
randomizedNumWaves := baseNumWaves * freqMultiplier * (0.75 + randSrc.Float64()*0.5)
waves[i] = wave{
amplitude: amp,
numWaves: randomizedNumWaves,
phase: randSrc.Float64() * 2 * math.Pi,
}
amp /= 3
}
controlPoints := make([]image.Point, numControlPoints+1)
for i := 0; i <= numControlPoints; i++ {
t := float64(i) / float64(numControlPoints)
x := float64(start.X) + t*float64(dx)
y := float64(start.Y) + t*float64(dy)
perpX, perpY := -float64(dy)/dist, float64(dx)/dist
totalOffset := 0.0
for _, w := range waves {
totalOffset += math.Sin(t*w.numWaves*2*math.Pi+w.phase) * w.amplitude
}
// Apply an envelope to ensure start/end points are anchored
totalOffset *= math.Sin(t * math.Pi)
x += totalOffset * perpX
y += totalOffset * perpY
controlPoints[i] = image.Point{X: int(math.Round(x)), Y: int(math.Round(y))}
}
return bresenham(controlPoints)
}
func bresenham(path []image.Point) []image.Point {
if len(path) < 2 {
return path
}
var fullPath []image.Point
for i := 0; i < len(path)-1; i++ {
p1, p2 := path[i], path[i+1]
dx, dy := p2.X-p1.X, p2.Y-p1.Y
absDx, absDy := int(math.Abs(float64(dx))), int(math.Abs(float64(dy)))
sx, sy := 1, 1
if dx < 0 {
sx = -1
}
if dy < 0 {
sy = -1
}
err := absDx - absDy
x, y := p1.X, p1.Y
for {
fullPath = append(fullPath, image.Point{X: x, Y: y})
if x == p2.X && y == p2.Y {
break
}
e2 := 2 * err
if e2 > -absDy {
err -= absDy
x += sx
}
if e2 < absDx {
err += absDx
y += sy
}
}
}
return fullPath
}
func drawCircle(img *image.RGBA, center image.Point, radius float64, c color.Color, pixels *[]image.Point, isWater map[image.Point]bool) {
bounds := img.Bounds()
r2 := radius * radius
for y := int(math.Floor(float64(center.Y) - radius)); y <= int(math.Ceil(float64(center.Y)+radius)); y++ {
for x := int(math.Floor(float64(center.X) - radius)); x <= int(math.Ceil(float64(center.X)+radius)); x++ {
p := image.Point{X: x, Y: y}
if !p.In(bounds) {
continue
}
dx, dy := float64(x-center.X), float64(y-center.Y)
if dx*dx+dy*dy <= r2 {
if !isWater[p] {
img.Set(x, y, c)
*pixels = append(*pixels, p)
isWater[p] = true
}
}
}
}
}
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// DarkenLakeAreas applies a visual darkening effect to the heightmap where lakes exist.
func DarkenLakeAreas(heightmap image.Image, lakePixels []image.Point) image.Image {
bounds := heightmap.Bounds()
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width := bounds.Dx()
// Create a new black image to draw the lakes on
lakeMask := image.NewRGBA(bounds)
black := color.RGBA{0, 0, 0, 255}
for _, p := range lakePixels {
lakeMask.Set(p.X, p.Y, black)
}
// Apply a Gaussian blur to the lake mask
blurRadius := float64(width) * 0.05
blurredLakeMask := imaging.Blur(lakeMask, blurRadius)
// Composite the blurred lake mask onto the heightmap with 50% opacity
composite := image.NewRGBA(bounds)
draw.Draw(composite, bounds, heightmap, image.Point{}, draw.Src)
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draw.DrawMask(composite, bounds, blurredLakeMask, image.Point{}, image.NewUniform(color.Alpha{192}), image.Point{}, draw.Over)
return composite
}
func GenerateTrees(img *image.RGBA, lakePixels []image.Point, minTreeSize, maxTreeSize, treeCoverage, treeClumpiness float64, seed int64) {
width := img.Bounds().Dx()
height := img.Bounds().Dy()
// 1. Calculate number of trees to place from coverage %.
avgTreeSize := (minTreeSize + maxTreeSize) / 2
if avgTreeSize <= 0 {
return
}
avgRadius := avgTreeSize / 2
avgTreeArea := math.Pi * avgRadius * avgRadius
if avgTreeArea == 0 {
return
}
totalArea := float64(width * height)
targetTreePixels := totalArea * (treeCoverage / 100.0)
numTreesToPlace := int(targetTreePixels / avgTreeArea)
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if numTreesToPlace == 0 {
return
}
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// 2. Generate a simplex noise map for tree placement.
noise := opensimplex.New(seed)
treeNoiseMap := image.NewGray(image.Rect(0, 0, width, height))
treeNoiseZoom := 0.05
for y := 0; y < height; y++ {
for x := 0; x < width; x++ {
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val := noise.Eval2(float64(x)*treeNoiseZoom, float64(y)*treeNoiseZoom)
val = (val + 1) / 2 // Normalize to 0-1
treeNoiseMap.SetGray(x, y, color.Gray{Y: uint8(val * 255)})
}
}
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threshold := uint8(255 * (1 - (treeCoverage / 100.0)))
isLake := make(map[image.Point]bool)
for _, p := range lakePixels {
isLake[p] = true
}
randSrc := rand.New(rand.NewSource(seed))
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// 3. Determine initial clump trees
numClumpTrees := int(treeClumpiness)
if numClumpTrees > numTreesToPlace {
numClumpTrees = numTreesToPlace
}
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initialPoints := make([]image.Point, 0, numClumpTrees)
for i := 0; i < numClumpTrees; i++ {
for j := 0; j < 100; j++ { // try 100 times to find a valid spot
p := image.Point{X: randSrc.Intn(width), Y: randSrc.Intn(height)}
if treeNoiseMap.GrayAt(p.X, p.Y).Y >= threshold && !isLake[p] {
initialPoints = append(initialPoints, p)
break
}
}
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}
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// 4. Place remaining trees using Bridson's Algorithm
minRadius := minTreeSize
allPoints := poissonDiscSampling(width, height, minRadius, 30, initialPoints, func(p image.Point) bool {
return treeNoiseMap.GrayAt(p.X, p.Y).Y >= threshold && !isLake[p]
}, seed)
// 5. Draw the trees.
for _, p := range allPoints {
size := minTreeSize + randSrc.Float64()*(maxTreeSize-minTreeSize)
if size <= 0 {
continue
}
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r := size / 2
// Use a simple pixel-by-pixel circle drawing method
for y := p.Y - int(r); y <= p.Y+int(r); y++ {
for x := p.X - int(r); x <= p.X+int(r); x++ {
pt := image.Point{X: x, Y: y}
if !pt.In(img.Bounds()) || isLake[pt] {
continue
}
if (math.Pow(float64(x-p.X), 2) + math.Pow(float64(y-p.Y), 2)) <= r*r {
// Blend the tree color with the background
// For simplicity, we just set a solid color for now.
img.Set(x, y, color.RGBA{R: 0, G: 100, B: 0, A: 255})
}
}
}
}
}
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func poissonDiscSampling(width, height int, minRadius float64, k int, initialPoints []image.Point, isValid func(image.Point) bool, seed int64) []image.Point {
randSrc := rand.New(rand.NewSource(seed))
points := initialPoints
activeList := append([]image.Point(nil), initialPoints...)
cellSize := minRadius / math.Sqrt(2)
gridWidth := int(math.Ceil(float64(width)/cellSize)) + 1
gridHeight := int(math.Ceil(float64(height)/cellSize)) + 1
grid := make([][]image.Point, gridWidth)
for i := range grid {
grid[i] = make([]image.Point, gridHeight)
}
for _, p := range points {
gridX, gridY := int(float64(p.X)/cellSize), int(float64(p.Y)/cellSize)
grid[gridX][gridY] = p
}
for len(activeList) > 0 {
listIndex := randSrc.Intn(len(activeList))
p := activeList[listIndex]
found := false
for i := 0; i < k; i++ {
angle := randSrc.Float64() * 2 * math.Pi
radius := minRadius + randSrc.Float64()*minRadius
x, y := float64(p.X)+radius*math.Cos(angle), float64(p.Y)+radius*math.Sin(angle)
newPoint := image.Point{X: int(x), Y: int(y)}
if newPoint.X < 0 || newPoint.X >= width || newPoint.Y < 0 || newPoint.Y >= height {
continue
}
if !isValid(newPoint) {
continue
}
gridX, gridY := int(x/cellSize), int(y/cellSize)
valid := true
for m := -1; m <= 1; m++ {
for n := -1; n <= 1; n++ {
checkX, checkY := gridX+m, gridY+n
if checkX >= 0 && checkX < gridWidth && checkY >= 0 && checkY < gridHeight && grid[checkX][checkY] != (image.Point{}) {
dist := math.Sqrt(math.Pow(float64(grid[checkX][checkY].X-newPoint.X), 2) + math.Pow(float64(grid[checkX][checkY].Y-newPoint.Y), 2))
if dist < minRadius {
valid = false
break
}
}
}
if !valid {
break
}
}
if valid {
points = append(points, newPoint)
activeList = append(activeList, newPoint)
grid[gridX][gridY] = newPoint
found = true
}
}
if !found {
activeList = append(activeList[:listIndex], activeList[listIndex+1:]...)
}
}
return points
}