300 lines
6.7 KiB
Go
300 lines
6.7 KiB
Go
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// Package splitsprite provides PNG sprite sheet splitting utilities.
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//
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// Pipeline: green screen removal → projection-based gap detection →
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// split into tiles → filter out low-fill tiles → trim transparent edges.
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package splitsprite
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import (
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"fmt"
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"image"
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"image/color"
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"image/draw"
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"math"
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"sort"
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)
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// Options configures the sprite sheet splitting pipeline.
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type Options struct {
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// GreenScreen enables green background removal.
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GreenScreen bool
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// GreenTolerance controls how aggressively green pixels are removed (0–1, default 0.2).
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GreenTolerance float64
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// GapThreshold is the max fraction of non-transparent pixels a row/column
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// can have to be considered a gap (0–1, default 0.03).
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GapThreshold float64
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// MinGapWidth is the minimum width in pixels a gap must have.
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MinGapWidth int
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// MinFillRatio is the minimum fraction of non-transparent pixels a tile
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// must have to be kept (0–1, default 0.3).
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MinFillRatio float64
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// Trim removes transparent borders from output tiles.
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Trim bool
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// OutW / OutH specify the output tile size (0 = keep original).
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OutW, OutH int
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}
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// DefaultOptions returns sensible default splitting options.
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func DefaultOptions() *Options {
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return &Options{
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GreenScreen: true,
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GreenTolerance: 0.2,
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GapThreshold: 0.03,
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MinGapWidth: 2,
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MinFillRatio: 0.3,
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Trim: true,
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}
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}
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// Process splits a sprite sheet image into individual cleaned tile images.
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// It runs the full pipeline: green screen removal → split → trim → resize.
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func Process(img image.Image, opts *Options) ([]image.Image, error) {
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if opts == nil {
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opts = DefaultOptions()
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}
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src := toRGBA(img)
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if opts.GreenScreen {
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src = removeGreenScreen(src, opts.GreenTolerance)
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}
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tiles := projectionSplit(src, opts.GapThreshold, opts.MinGapWidth, opts.MinFillRatio)
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if len(tiles) == 0 {
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return nil, fmt.Errorf("no tiles detected — try lowering GapThreshold or adjusting GreenTolerance")
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}
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results := make([]image.Image, len(tiles))
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for i, t := range tiles {
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sub := image.NewRGBA(image.Rect(0, 0, t.w, t.h))
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draw.Draw(sub, sub.Bounds(), src, image.Point{t.x, t.y}, draw.Src)
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if opts.Trim {
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sub = trimAlpha(sub)
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}
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if opts.OutW > 0 && opts.OutH > 0 {
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sub = resize(sub, opts.OutW, opts.OutH)
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}
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results[i] = sub
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}
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return results, nil
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}
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// RemoveGreenScreen removes green-dominant background pixels, making them transparent.
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func RemoveGreenScreen(img image.Image, tol float64) image.Image {
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return removeGreenScreen(toRGBA(img), tol)
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}
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// TrimAlpha removes fully transparent borders from an image.
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func TrimAlpha(img image.Image) image.Image {
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return trimAlpha(toRGBA(img))
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}
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// Resize resizes an image using nearest-neighbor interpolation.
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func Resize(img image.Image, w, h int) image.Image {
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return resize(toRGBA(img), w, h)
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}
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// ============================
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// internal
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// ============================
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type tile struct {
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x, y, w, h int
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}
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func removeGreenScreen(rgba *image.RGBA, tol float64) *image.RGBA {
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b := rgba.Bounds()
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dst := image.NewRGBA(b)
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absTol := tol * 255
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for y := b.Min.Y; y < b.Max.Y; y++ {
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for x := b.Min.X; x < b.Max.X; x++ {
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r16, g16, bl16, a16 := rgba.At(x, y).RGBA()
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if a16 == 0 {
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continue
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}
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r, g, bl := float64(r16>>8), float64(g16>>8), float64(bl16>>8)
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gDominance := g - (r+bl)/2
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if gDominance > absTol {
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alpha := 1.0 - math.Min(gDominance/(absTol*2), 1.0)
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dst.SetRGBA(x, y, color.RGBA{
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R: uint8(r), G: uint8(g), B: uint8(bl),
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A: uint8(alpha * 255),
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})
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} else {
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dst.Set(x, y, rgba.At(x, y))
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}
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}
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}
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return dst
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}
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func projectionSplit(rgba *image.RGBA, gapThreshold float64, minGap int, minFill float64) []tile {
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bounds := rgba.Bounds()
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W, H := bounds.Dx(), bounds.Dy()
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rowRatio := make([]float64, H)
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colRatio := make([]float64, W)
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for y := 0; y < H; y++ {
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n := 0
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for x := 0; x < W; x++ {
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if alphaAt(rgba, x, y) > 0 {
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n++
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}
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}
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rowRatio[y] = float64(n) / float64(W)
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}
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for x := 0; x < W; x++ {
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n := 0
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for y := 0; y < H; y++ {
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if alphaAt(rgba, x, y) > 0 {
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n++
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}
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}
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colRatio[x] = float64(n) / float64(H)
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}
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rowCuts := findCuts(rowRatio, gapThreshold, minGap)
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colCuts := findCuts(colRatio, gapThreshold, minGap)
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if len(rowCuts) < 2 || len(colCuts) < 2 {
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return nil
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}
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var tiles []tile
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for ri := 0; ri < len(rowCuts)-1; ri++ {
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for ci := 0; ci < len(colCuts)-1; ci++ {
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x := colCuts[ci]
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y := rowCuts[ri]
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w := colCuts[ci+1] - x
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h := rowCuts[ri+1] - y
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if tileFillRatio(rgba, x, y, w, h) >= minFill {
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tiles = append(tiles, tile{x: x, y: y, w: w, h: h})
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}
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}
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}
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return tiles
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}
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func tileFillRatio(rgba *image.RGBA, x0, y0, w, h int) float64 {
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total := w * h
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if total == 0 {
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return 0
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}
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n := 0
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for y := y0; y < y0+h; y++ {
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for x := x0; x < x0+w; x++ {
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if alphaAt(rgba, x, y) > 0 {
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n++
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}
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}
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}
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return float64(n) / float64(total)
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}
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func findCuts(ratios []float64, threshold float64, minGap int) []int {
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n := len(ratios)
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isGap := make([]bool, n)
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for i, r := range ratios {
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isGap[i] = r < threshold
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}
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type segment struct{ start, end int }
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var gaps []segment
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i := 0
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for i < n {
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if isGap[i] {
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start := i
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for i < n && isGap[i] {
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i++
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}
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if i-start >= minGap {
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gaps = append(gaps, segment{start, i})
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}
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} else {
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i++
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}
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}
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if len(gaps) == 0 {
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return []int{0, n}
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}
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cuts := []int{0}
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for _, seg := range gaps {
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cuts = append(cuts, seg.start+(seg.end-seg.start)/2)
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}
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cuts = append(cuts, n)
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sort.Ints(cuts)
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dedup := cuts[:1]
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for j := 1; j < len(cuts); j++ {
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if cuts[j] != dedup[len(dedup)-1] {
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dedup = append(dedup, cuts[j])
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}
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}
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return dedup
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}
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func alphaAt(rgba *image.RGBA, x, y int) uint8 {
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return rgba.Pix[rgba.PixOffset(x, y)+3]
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}
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func trimAlpha(rgba *image.RGBA) *image.RGBA {
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b := rgba.Bounds()
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minX, minY := b.Max.X, b.Max.Y
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maxX, maxY := b.Min.X, b.Min.Y
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for y := b.Min.Y; y < b.Max.Y; y++ {
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for x := b.Min.X; x < b.Max.X; x++ {
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if alphaAt(rgba, x-b.Min.X, y-b.Min.Y) > 0 {
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if x < minX {
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minX = x
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}
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if x > maxX {
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maxX = x
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}
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if y < minY {
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minY = y
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}
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if y > maxY {
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maxY = y
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}
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}
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}
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}
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w := maxX - minX + 1
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h := maxY - minY + 1
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if w <= 0 || h <= 0 {
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return rgba
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}
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dst := image.NewRGBA(image.Rect(0, 0, w, h))
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draw.Draw(dst, dst.Bounds(), rgba, image.Point{minX, minY}, draw.Src)
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return dst
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}
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func resize(rgba *image.RGBA, w, h int) *image.RGBA {
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dst := image.NewRGBA(image.Rect(0, 0, w, h))
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sw, sh := rgba.Bounds().Dx(), rgba.Bounds().Dy()
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for y := 0; y < h; y++ {
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for x := 0; x < w; x++ {
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sx := x * sw / w
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sy := y * sh / h
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dst.Set(x, y, rgba.At(sx, sy))
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}
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}
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return dst
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}
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func toRGBA(src image.Image) *image.RGBA {
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if rgba, ok := src.(*image.RGBA); ok {
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return rgba
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}
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b := src.Bounds()
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rgba := image.NewRGBA(b)
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draw.Draw(rgba, b, src, b.Min, draw.Src)
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return rgba
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}
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