RegionIO/internal/worldgen/biome.go

236 lines
7.3 KiB
Go

package worldgen
import (
"math"
"sort"
)
// This file reproduces net.minecraft.world.level.biome.Climate, the multi-noise
// biome selector. A point in climate space is six quantized coordinates
// (temperature, humidity, continentalness, erosion, depth, weirdness); the
// finder returns the biome whose parameter range is closest to the point by the
// vanilla fitDistance metric.
//
// Coordinates are quantized to long via Math.round(v * 10000.0) exactly as the
// vanilla Climate.quantizeCoord does. ParameterPoint fitness is the sum of the
// squared distance to each inclusive axis range and the squared offset.
// quantize converts a climate coordinate to its long representation. Java's
// Math.round is floor(x+0.5), unlike Go's math.Round for negative half values.
func quantize(v float64) int64 {
return int64(math.Floor(v*10000.0 + 0.5))
}
// Quantize is the exported form of quantize, for the biome table builder in the
// world package.
func Quantize(v float64) int64 { return quantize(v) }
// AxisCount is the number of climate coordinates (temperature, humidity,
// continentalness, erosion, depth, weirdness).
const AxisCount = 6
// TargetPoint is a fully-specified climate point: the value the biome finder
// tries to match against parameter ranges. Fields are pre-quantized longs.
type TargetPoint struct {
Temperature, Humidity, Continentalness, Erosion, Depth, Weirdness int64
}
// NewTargetPoint quantizes six float climate coordinates into a TargetPoint.
func NewTargetPoint(temp, humid, cont, ero, weird, depth float64) TargetPoint {
return TargetPoint{
Temperature: quantize(temp),
Humidity: quantize(humid),
Continentalness: quantize(cont),
Erosion: quantize(ero),
Depth: quantize(depth),
Weirdness: quantize(weird),
}
}
// fitDistance is the vanilla distance from a point to a parameter range. A
// coordinate inside a range contributes zero; offset is applied separately.
func fitDistance(point TargetPoint, ranges [AxisCount]ClimateRange, offset int64) int64 {
values := [AxisCount]int64{point.Temperature, point.Humidity, point.Continentalness, point.Erosion, point.Depth, point.Weirdness}
var total int64
for i, value := range values {
r := ranges[i]
var distance int64
if value < r.Min {
distance = r.Min - value
} else if value > r.Max {
distance = value - r.Max
}
total += distance * distance
}
return total + offset*offset
}
// ClimateRange is one axis's inclusive [min, max] band on a biome parameter.
type ClimateRange struct {
Min, Max int64
}
// contains reports whether the quantized coordinate v falls in [min, max].
func (r ClimateRange) contains(v int64) bool { return v >= r.Min && v <= r.Max }
// BiomeParameter is one biome entry's full climate signature plus its name.
type BiomeParameter struct {
Name string
// ranges[0..5] = temperature, humidity, continentalness, erosion, depth, weirdness.
Ranges [AxisCount]ClimateRange
Offset int64
}
// ParameterTable is the set of biome parameters the finder searches.
type ParameterTable struct {
entries []tableEntry
root *biomeSearchNode
}
type tableEntry struct {
param BiomeParameter
}
// biomeSearchNode indexes parameter ranges by a bounding volume. Its lower
// bound is safe for vanilla's fitDistance metric, allowing exact nearest
// searches without scanning every climate entry for each biome cell.
type biomeSearchNode struct {
min, max [AxisCount]int64
minOffsetAbs int64
left, right *biomeSearchNode
indices []int
}
const biomeSearchLeafSize = 16
// NewParameterTable builds a searchable table from raw biome parameters.
func NewParameterTable(params []BiomeParameter) *ParameterTable {
t := &ParameterTable{entries: make([]tableEntry, len(params))}
for i, p := range params {
t.entries[i] = tableEntry{param: p}
}
indices := make([]int, len(params))
for i := range indices {
indices[i] = i
}
t.root = buildBiomeSearchTree(t.entries, indices)
return t
}
// FindBiome returns the parameter with the lowest vanilla fitness. Table order
// is the deterministic tie breaker because equal fitness never replaces best.
func (t *ParameterTable) FindBiome(point TargetPoint) string {
bestDist, bestIndex := int64(math.MaxInt64), len(t.entries)
var visit func(*biomeSearchNode)
visit = func(node *biomeSearchNode) {
if node == nil || biomeNodeLowerBound(point, node) > bestDist {
return
}
if node.indices != nil {
for _, index := range node.indices {
d := fitDistance(point, t.entries[index].param.Ranges, t.entries[index].param.Offset)
if d < bestDist || d == bestDist && index < bestIndex {
bestDist, bestIndex = d, index
}
}
return
}
leftDistance := biomeNodeLowerBound(point, node.left)
rightDistance := biomeNodeLowerBound(point, node.right)
if leftDistance <= rightDistance {
visit(node.left)
visit(node.right)
} else {
visit(node.right)
visit(node.left)
}
}
visit(t.root)
if bestIndex == len(t.entries) {
return ""
}
return t.entries[bestIndex].param.Name
}
func buildBiomeSearchTree(entries []tableEntry, indices []int) *biomeSearchNode {
if len(indices) == 0 {
return nil
}
node := &biomeSearchNode{minOffsetAbs: math.MaxInt64}
for axis := 0; axis < AxisCount; axis++ {
node.min[axis], node.max[axis] = math.MaxInt64, math.MinInt64
}
for _, index := range indices {
param := entries[index].param
if offset := absInt64(param.Offset); offset < node.minOffsetAbs {
node.minOffsetAbs = offset
}
for axis, r := range param.Ranges {
if r.Min < node.min[axis] {
node.min[axis] = r.Min
}
if r.Max > node.max[axis] {
node.max[axis] = r.Max
}
}
}
if len(indices) <= biomeSearchLeafSize {
node.indices = append([]int(nil), indices...)
return node
}
axis := 0
for candidate := 1; candidate < AxisCount; candidate++ {
if node.max[candidate]-node.min[candidate] > node.max[axis]-node.min[axis] {
axis = candidate
}
}
sort.SliceStable(indices, func(i, j int) bool {
left := entries[indices[i]].param.Ranges[axis]
right := entries[indices[j]].param.Ranges[axis]
leftMid := left.Min + (left.Max-left.Min)/2
rightMid := right.Min + (right.Max-right.Min)/2
if leftMid != rightMid {
return leftMid < rightMid
}
return indices[i] < indices[j]
})
middle := len(indices) / 2
node.left = buildBiomeSearchTree(entries, indices[:middle])
node.right = buildBiomeSearchTree(entries, indices[middle:])
return node
}
func biomeNodeLowerBound(point TargetPoint, node *biomeSearchNode) int64 {
if node == nil {
return math.MaxInt64
}
values := [AxisCount]int64{point.Temperature, point.Humidity, point.Continentalness, point.Erosion, point.Depth, point.Weirdness}
var total int64
for axis, value := range values {
var distance int64
if value < node.min[axis] {
distance = node.min[axis] - value
} else if value > node.max[axis] {
distance = value - node.max[axis]
}
total += distance * distance
}
return total + node.minOffsetAbs*node.minOffsetAbs
}
func absInt64(value int64) int64 {
if value < 0 {
return -value
}
return value
}
// containsAll reports whether every range contains its corresponding coordinate.
func containsAll(ranges [AxisCount]ClimateRange, p TargetPoint) bool {
return ranges[0].contains(p.Temperature) &&
ranges[1].contains(p.Humidity) &&
ranges[2].contains(p.Continentalness) &&
ranges[3].contains(p.Erosion) &&
ranges[4].contains(p.Depth) &&
ranges[5].contains(p.Weirdness)
}