2018-08-19 18:05:53 +02:00
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package main
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2018-08-23 04:55:41 +02:00
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// We could also easily use x/image/font/basicfont to load some glyphs into X,
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// relying on the fact that it is a vertical array of A8 masks. Though it only
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// supports ASCII and has but one size. Best just make a custom BDF loader,
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// those fonts have larger coverages and we would be in control. Though again,
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// they don't seem to be capable of antialiasing.
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2018-08-19 18:05:53 +02:00
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import (
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2018-08-23 01:59:38 +02:00
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"fmt"
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2018-08-19 18:05:53 +02:00
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"github.com/BurntSushi/xgb"
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"github.com/BurntSushi/xgb/render"
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"github.com/BurntSushi/xgb/xproto"
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2018-08-23 04:55:41 +02:00
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// golang.org/x/image/font/opentype cannot render yet but the API is
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// more or less the same.
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2018-08-23 01:59:38 +02:00
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"github.com/golang/freetype"
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"github.com/golang/freetype/truetype"
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"golang.org/x/image/font"
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"golang.org/x/image/font/gofont/goregular"
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"golang.org/x/image/math/fixed"
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"image"
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2018-08-23 02:46:56 +02:00
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"image/draw"
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2018-08-19 18:05:53 +02:00
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"log"
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"math/rand"
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)
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func F64ToFixed(f float64) render.Fixed { return render.Fixed(f * 65536) }
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func FixedToF64(f render.Fixed) float64 { return float64(f) / 65536 }
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2018-08-23 01:59:38 +02:00
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func glyphListBytes(buf []byte, runes []rune, size int) int {
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b := 0
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for _, r := range runes {
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switch size {
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default:
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buf[b] = byte(r)
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b += 1
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case 2:
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xgb.Put16(buf[b:], uint16(r))
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b += 2
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case 4:
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xgb.Put32(buf[b:], uint32(r))
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b += 4
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}
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}
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return xgb.Pad(b)
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}
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// When the len is 255, a GLYPHABLE follows, otherwise a list of CARD8/16/32.
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func glyphEltHeaderBytes(buf []byte, len byte, deltaX, deltaY int16) int {
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b := 0
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buf[b] = len
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b += 4
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xgb.Put16(buf[b:], uint16(deltaX))
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b += 2
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xgb.Put16(buf[b:], uint16(deltaY))
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b += 2
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return xgb.Pad(b)
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}
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type xgbCookie interface{ Check() error }
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// TODO: We actually need a higher-level function that also keeps track of
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// and loads glyphs into the X server.
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2018-08-23 03:37:43 +02:00
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// TODO: We also need a way to use kerning tables with this, inserting/removing
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// advance pixels between neighboring characters.
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2018-08-23 01:59:38 +02:00
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// compositeString makes an appropriate render.CompositeGlyphs request,
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// assuming that glyphs equal Unicode codepoints.
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func compositeString(c *xgb.Conn, op byte, src, dst render.Picture,
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maskFormat render.Pictformat, glyphset render.Glyphset, srcX, srcY int16,
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destX, destY int16, text string) xgbCookie {
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runes := []rune(text)
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var highest rune
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for _, r := range runes {
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if r > highest {
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highest = r
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}
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}
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size := 1
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switch {
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case highest > 1<<16:
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size = 4
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case highest > 1<<8:
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size = 2
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}
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// They gave up on the XCB protocol API and we need to serialize explicitly.
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// To spare us from caring about the padding, use the largest number lesser
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// than 255 that is divisible by 4 (for size 2 and 4 the requirements are
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// less strict but this works in the general case).
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const maxPerChunk = 252
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buf := make([]byte, (len(runes)+maxPerChunk-1)/maxPerChunk*8+len(runes)*size)
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b := 0
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for len(runes) > maxPerChunk {
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b += glyphEltHeaderBytes(buf[b:], maxPerChunk, 0, 0)
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b += glyphListBytes(buf[b:], runes[:maxPerChunk], size)
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runes = runes[maxPerChunk:]
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}
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if len(runes) > 0 {
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b += glyphEltHeaderBytes(buf[b:], byte(len(runes)), destX, destY)
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b += glyphListBytes(buf[b:], runes, size)
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}
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switch size {
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default:
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return render.CompositeGlyphs8(c, op, src, dst, maskFormat, glyphset,
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srcX, srcY, buf)
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case 2:
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return render.CompositeGlyphs16(c, op, src, dst, maskFormat, glyphset,
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srcX, srcY, buf)
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case 4:
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return render.CompositeGlyphs32(c, op, src, dst, maskFormat, glyphset,
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srcX, srcY, buf)
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}
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}
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2018-08-19 18:05:53 +02:00
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func main() {
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X, err := xgb.NewConn()
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if err != nil {
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log.Fatalln(err)
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}
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if err := render.Init(X); err != nil {
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log.Fatalln(err)
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}
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setup := xproto.Setup(X)
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screen := setup.DefaultScreen(X)
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var visual xproto.Visualid
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var depth byte
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for _, i := range screen.AllowedDepths {
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if i.Depth == 32 {
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// TODO: Could/should check other parameters.
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for _, v := range i.Visuals {
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if v.Class == xproto.VisualClassTrueColor {
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visual = v.VisualId
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depth = i.Depth
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break
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}
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}
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}
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}
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if visual == 0 {
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log.Fatalln("cannot find an RGBA TrueColor visual")
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}
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mid, err := xproto.NewColormapId(X)
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if err != nil {
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log.Fatalln(err)
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}
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_ = xproto.CreateColormap(
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X, xproto.ColormapAllocNone, mid, screen.Root, visual)
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wid, err := xproto.NewWindowId(X)
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if err != nil {
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log.Fatalln(err)
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}
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// Border pixel and colormap are required when depth differs from parent.
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_ = xproto.CreateWindow(X, depth, wid, screen.Root,
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0, 0, 500, 500, 0, xproto.WindowClassInputOutput,
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visual, xproto.CwBorderPixel|xproto.CwColormap,
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[]uint32{0, uint32(mid)})
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// This could be included in CreateWindow parameters.
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_ = xproto.ChangeWindowAttributes(X, wid,
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xproto.CwBackPixel|xproto.CwEventMask, []uint32{0x80808080,
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xproto.EventMaskStructureNotify | xproto.EventMaskKeyPress |
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xproto.EventMaskExposure})
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title := []byte("Gradient")
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_ = xproto.ChangeProperty(X, xproto.PropModeReplace, wid, xproto.AtomWmName,
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xproto.AtomString, 8, uint32(len(title)), title)
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_ = xproto.MapWindow(X, wid)
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2018-08-21 20:47:06 +02:00
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/*
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rfilters, err := render.QueryFilters(X, xproto.Drawable(wid)).Reply()
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if err != nil {
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log.Fatalln(err)
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}
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filters := []string{}
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for _, f := range rfilters.Filters {
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filters = append(filters, f.Name)
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}
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log.Printf("filters: %v\n", filters)
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*/
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2018-08-19 18:05:53 +02:00
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pformats, err := render.QueryPictFormats(X).Reply()
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if err != nil {
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log.Fatalln(err)
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}
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2018-08-21 20:47:06 +02:00
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/*
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for _, pf := range pformats.Formats {
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log.Printf("format %2d: depth %2d, RGBA %3x %3x %3x %3x\n",
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pf.Id, pf.Depth,
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pf.Direct.RedMask, pf.Direct.GreenMask, pf.Direct.BlueMask,
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pf.Direct.AlphaMask)
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}
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*/
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2018-08-19 18:05:53 +02:00
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// Similar to XRenderFindVisualFormat.
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// The DefaultScreen is almost certain to be zero.
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var pformat render.Pictformat
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for _, pd := range pformats.Screens[X.DefaultScreen].Depths {
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// This check seems to be slightly extraneous.
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if pd.Depth != depth {
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continue
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}
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for _, pv := range pd.Visuals {
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if pv.Visual == visual {
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pformat = pv.Format
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}
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}
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}
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// ...or just scan through pformats.Formats and look for matches, which is
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// what XRenderFindStandardFormat in Xlib does as well as exp/shiny.
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2018-08-23 01:59:38 +02:00
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f, err := freetype.ParseFont(goregular.TTF)
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if err != nil {
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log.Fatalln(err)
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}
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2018-08-23 03:37:43 +02:00
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// LCD subpixel rendering isn't supported. :(
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2018-08-23 02:46:56 +02:00
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opts := &truetype.Options{
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2018-08-23 04:46:21 +02:00
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Size: 10,
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2018-08-23 02:46:56 +02:00
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DPI: 96, // TODO: Take this from the screen or monitor.
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Hinting: font.HintingFull,
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2018-08-23 01:59:38 +02:00
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}
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2018-08-23 02:46:56 +02:00
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face := truetype.NewFace(f, opts)
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2018-08-23 03:37:43 +02:00
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bounds := f.Bounds(fixed.Int26_6(opts.Size * float64(opts.DPI) *
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(64.0 / 72.0)))
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2018-08-23 01:59:38 +02:00
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2018-08-23 04:46:21 +02:00
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var rgbFormat render.Pictformat
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2018-08-23 01:59:38 +02:00
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for _, pf := range pformats.Formats {
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2018-08-23 04:46:21 +02:00
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// Hopefully. Might want to check byte order.
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if pf.Depth == 32 && pf.Direct.AlphaMask != 0 {
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rgbFormat = pf.Id
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break
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2018-08-23 01:59:38 +02:00
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}
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}
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gsid, err := render.NewGlyphsetId(X)
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if err != nil {
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log.Fatalln(err)
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}
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// NOTE: A depth of 24 will not work, the server always rejects it.
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2018-08-23 04:19:28 +02:00
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// Composite alpha doesn't make sense since golang/freetype can't use it.
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2018-08-23 04:46:21 +02:00
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// We use RGBA here just so that lines are padded to 32 bits.
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_ = render.CreateGlyphSet(X, gsid, rgbFormat)
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2018-08-23 01:59:38 +02:00
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2018-08-23 04:19:28 +02:00
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// NOTE: We could do gamma post-correction in higher precision if we
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// implemented our own clone of the image.Image implementation.
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2018-08-23 04:46:21 +02:00
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nrgb := image.NewRGBA(image.Rect(
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2018-08-23 03:37:43 +02:00
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+bounds.Min.X.Floor(),
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-bounds.Min.Y.Floor(),
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+bounds.Max.X.Ceil(),
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-bounds.Max.Y.Ceil(),
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))
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2018-08-23 02:46:56 +02:00
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2018-08-23 01:59:38 +02:00
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for r := rune(32); r < 128; r++ {
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2018-08-23 02:46:56 +02:00
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dr, mask, maskp, advance, ok := face.Glyph(
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2018-08-23 03:37:43 +02:00
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fixed.P(0, 0) /* subpixel destination location */, r)
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2018-08-23 02:46:56 +02:00
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if !ok {
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log.Println("skip")
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continue
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}
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2018-08-23 01:59:38 +02:00
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for i := 0; i < len(nrgb.Pix); i++ {
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nrgb.Pix[i] = 0
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}
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2018-08-23 02:46:56 +02:00
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draw.Draw(nrgb, dr, mask, maskp, draw.Src)
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2018-08-23 01:59:38 +02:00
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_ = render.AddGlyphs(X, gsid, 1, []uint32{uint32(r)},
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[]render.Glyphinfo{{
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2018-08-23 03:37:43 +02:00
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Width: uint16(nrgb.Rect.Size().X),
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Height: uint16(nrgb.Rect.Size().Y),
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X: int16(-bounds.Min.X.Floor()),
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Y: int16(+bounds.Max.Y.Ceil()),
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XOff: int16(advance.Ceil()),
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YOff: int16(0),
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2018-08-23 01:59:38 +02:00
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}}, []byte(nrgb.Pix))
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}
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2018-08-19 18:05:53 +02:00
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pid, err := render.NewPictureId(X)
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if err != nil {
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log.Fatalln(err)
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}
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2018-08-21 20:47:06 +02:00
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// Dithering is not supported. :(
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2018-08-19 18:05:53 +02:00
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render.CreatePicture(X, pid, xproto.Drawable(wid), pformat, 0, []uint32{})
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// Reserve an ID for the gradient.
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gid, err := render.NewPictureId(X)
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if err != nil {
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log.Fatalln(err)
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}
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2018-08-23 01:59:38 +02:00
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whiteid, err := render.NewPictureId(X)
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if err != nil {
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log.Fatalln(err)
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}
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_ = render.CreateSolidFill(X, whiteid, render.Color{
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Red: 0xffff,
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Green: 0xffff,
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Blue: 0xffff,
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Alpha: 0xffff,
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})
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2018-08-19 18:05:53 +02:00
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var from, to render.Color
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2018-08-23 01:59:38 +02:00
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var start, end uint32
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2018-08-19 18:05:53 +02:00
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recolor := func() {
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2018-08-23 01:59:38 +02:00
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start = rand.Uint32() & 0xffffff
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2018-08-19 18:05:53 +02:00
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from = render.Color{
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Red: 0x101 * uint16((start>>16)&0xff),
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Green: 0x101 * uint16((start>>8)&0xff),
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Blue: 0x101 * uint16(start&0xff),
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Alpha: 0xffff,
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}
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2018-08-23 01:59:38 +02:00
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end = rand.Uint32() & 0xffffff
|
2018-08-19 18:05:53 +02:00
|
|
|
to = render.Color{
|
|
|
|
Red: 0x101 * uint16((end>>16)&0xff),
|
|
|
|
Green: 0x101 * uint16((end>>8)&0xff),
|
|
|
|
Blue: 0x101 * uint16(end&0xff),
|
|
|
|
Alpha: 0xffff,
|
|
|
|
}
|
|
|
|
}
|
|
|
|
|
|
|
|
var w, h uint16
|
|
|
|
gradient := func() {
|
|
|
|
if w < 100 || h < 100 {
|
|
|
|
return
|
|
|
|
}
|
|
|
|
|
2018-08-21 20:47:06 +02:00
|
|
|
// We could also use a transformation matrix for changes in size.
|
2018-08-19 18:05:53 +02:00
|
|
|
_ = render.CreateLinearGradient(X, gid,
|
|
|
|
render.Pointfix{F64ToFixed(0), F64ToFixed(0)},
|
|
|
|
render.Pointfix{F64ToFixed(0), F64ToFixed(float64(h) - 100)},
|
|
|
|
2, []render.Fixed{F64ToFixed(0), F64ToFixed(1)},
|
|
|
|
[]render.Color{from, to})
|
|
|
|
|
|
|
|
_ = render.Composite(X, render.PictOpSrc, gid, render.PictureNone, pid,
|
|
|
|
0, 0, 0, 0, 50, 50, w-100, h-100)
|
|
|
|
|
|
|
|
_ = render.FreePicture(X, gid)
|
2018-08-23 01:59:38 +02:00
|
|
|
|
|
|
|
_ = compositeString(X, render.PictOpOver, whiteid, pid,
|
|
|
|
0 /* TODO: mask Pictureformat? */, gsid, 0, 0, 100, 100,
|
|
|
|
fmt.Sprintf("%#06x - %#06x", start, end))
|
2018-08-23 03:37:43 +02:00
|
|
|
_ = compositeString(X, render.PictOpOver, whiteid, pid,
|
|
|
|
0 /* TODO: mask Pictureformat? */, gsid, 0, 0, 100, 150,
|
|
|
|
"The quick brown fox jumps over the lazy dog.")
|
2018-08-19 18:05:53 +02:00
|
|
|
}
|
|
|
|
|
|
|
|
for {
|
|
|
|
ev, xerr := X.WaitForEvent()
|
|
|
|
if xerr != nil {
|
|
|
|
log.Printf("Error: %s\n", xerr)
|
|
|
|
return
|
|
|
|
}
|
|
|
|
if ev == nil {
|
|
|
|
return
|
|
|
|
}
|
|
|
|
|
|
|
|
log.Printf("Event: %s\n", ev)
|
|
|
|
switch e := ev.(type) {
|
|
|
|
case xproto.UnmapNotifyEvent:
|
|
|
|
return
|
|
|
|
|
|
|
|
case xproto.ConfigureNotifyEvent:
|
|
|
|
w, h = e.Width, e.Height
|
|
|
|
recolor()
|
|
|
|
|
|
|
|
case xproto.KeyPressEvent:
|
|
|
|
recolor()
|
|
|
|
gradient()
|
|
|
|
|
|
|
|
case xproto.ExposeEvent:
|
|
|
|
gradient()
|
|
|
|
}
|
|
|
|
}
|
|
|
|
}
|