mirror of
https://github.com/tinygo-org/drivers.git
synced 2026-08-04 15:07:46 +00:00
pixel: add support for Monochrome types such as the SSD1306 display
Signed-off-by: deadprogram <ron@hybridgroup.com>
This commit is contained in:
+49
-8
@@ -22,12 +22,13 @@ func NewImage[T Color](width, height int) Image[T] {
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}
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var zeroColor T
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var data unsafe.Pointer
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if zeroColor.BitsPerPixel()%8 == 0 {
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switch {
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case zeroColor.BitsPerPixel()%8 == 0:
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// Typical formats like RGB888 and RGB565.
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// Each color starts at a whole byte offset from the start.
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buf := make([]T, width*height)
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data = unsafe.Pointer(&buf[0])
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} else {
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default:
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// Formats like RGB444 that have 12 bits per pixel.
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// We access these as bytes, so allocate the buffer as a byte slice.
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bufBits := width * height * zeroColor.BitsPerPixel()
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@@ -80,10 +81,11 @@ func (img Image[T]) Len() int {
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func (img Image[T]) RawBuffer() []uint8 {
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var zeroColor T
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var numBytes int
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if zeroColor.BitsPerPixel()%8 == 0 {
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switch {
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case zeroColor.BitsPerPixel()%8 == 0:
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// Each color starts at a whole byte offset.
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numBytes = int(unsafe.Sizeof(zeroColor)) * int(img.width) * int(img.height)
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} else {
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default:
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// Formats like RGB444 that aren't a whole number of bytes.
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numBits := zeroColor.BitsPerPixel() * int(img.width) * int(img.height)
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numBytes = (numBits + 7) / 8 // round up (see NewImage)
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@@ -99,7 +101,20 @@ func (img Image[T]) Size() (int, int) {
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func (img Image[T]) setPixel(index int, c T) {
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var zeroColor T
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if zeroColor.BitsPerPixel()%8 == 0 {
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switch {
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case zeroColor.BitsPerPixel() == 1:
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// Monochrome.
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x := int16(index) % img.width
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y := int16(index) / img.width
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offset := x + (y/8)*img.width
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ptr := (*byte)(unsafe.Add(img.data, offset))
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if c != zeroColor {
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*((*byte)(ptr)) |= 1 << uint8(y%8)
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} else {
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*((*byte)(ptr)) &^= 1 << uint8(y%8)
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}
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return
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case zeroColor.BitsPerPixel()%8 == 0:
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// Each color starts at a whole byte offset.
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// This is the easy case.
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offset := index * int(unsafe.Sizeof(zeroColor))
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@@ -147,7 +162,15 @@ func (img Image[T]) Get(x, y int) T {
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var zeroColor T
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index := y*int(img.width) + x // index into img.data
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if zeroColor.BitsPerPixel()%8 == 0 {
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switch {
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case zeroColor.BitsPerPixel() == 1:
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// Monochrome.
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var c Monochrome
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offset := x + (y/8)*int(img.width)
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ptr := (*byte)(unsafe.Add(img.data, offset))
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c = (*ptr >> uint8(y%8) & 0x1) == 1
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return any(c).(T)
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case zeroColor.BitsPerPixel()%8 == 0:
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// Colors like RGB565, RGB888, etc.
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offset := index * int(unsafe.Sizeof(zeroColor))
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ptr := unsafe.Add(img.data, offset)
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@@ -181,8 +204,26 @@ func (img Image[T]) Get(x, y int) T {
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func (img Image[T]) FillSolidColor(color T) {
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var zeroColor T
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// Fast pass for colors of 8, 16, 24, etc bytes in size.
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if zeroColor.BitsPerPixel()%8 == 0 {
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switch {
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case zeroColor.BitsPerPixel() == 1:
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// Monochrome.
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var colorByte uint8
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if color != zeroColor {
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colorByte = 0xff
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}
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numBytes := int(img.width) * int(img.height) / 8
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for i := 0; i < numBytes; i++ {
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// TODO: this can be optimized a lot.
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// - The store can be done as a 32-bit integer, after checking for
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// alignment.
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// - Perhaps the loop can be unrolled to improve copy performance.
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ptr := (*byte)(unsafe.Add(img.data, i))
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*((*byte)(ptr)) = colorByte
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}
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return
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case zeroColor.BitsPerPixel()%8 == 0:
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// Fast pass for colors of 8, 16, 24, etc bytes in size.
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ptr := img.data
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for i := 0; i < img.Len(); i++ {
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// TODO: this can be optimized a lot.
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@@ -62,3 +62,35 @@ func TestImageRGB444BE(t *testing.T) {
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}
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}
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}
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func TestImageMonochrome(t *testing.T) {
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image := pixel.NewImage[pixel.Monochrome](5, 3)
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if width, height := image.Size(); width != 5 && height != 3 {
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t.Errorf("image.Size(): expected 5, 3 but got %d, %d", width, height)
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}
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for _, expected := range []color.RGBA{
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{R: 0xff, G: 0xff, B: 0xff},
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{G: 0xff},
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{R: 0xff, G: 0xff},
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{G: 0xff, B: 0xff},
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{R: 0x00},
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{G: 0x00, A: 0xff},
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{B: 0x00, A: 0xff},
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} {
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encoded := pixel.NewColor[pixel.Monochrome](expected.R, expected.G, expected.B)
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image.Set(4, 2, encoded)
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actual := image.Get(4, 2).RGBA()
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switch {
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case expected.R == 0 && expected.G == 0 && expected.B == 0:
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// should be false eg black
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if actual.R != 0 || actual.G != 0 || actual.B != 0 {
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t.Errorf("failed to roundtrip color: expected %v but got %v", expected, actual)
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}
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case int(expected.R)+int(expected.G)+int(expected.B) > 128*3:
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// should be true eg white
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if actual.R == 0 || actual.G == 0 || actual.B == 0 {
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t.Errorf("failed to roundtrip color: expected %v but got %v", expected, actual)
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}
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}
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}
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}
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+33
-2
@@ -14,9 +14,9 @@ import (
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// Pixel with a particular color, matching the underlying hardware of a
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// particular display. Each pixel is at least 1 byte in size.
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// The color format is sRGB (or close to it) in all cases.
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// The color format is sRGB (or close to it) in all cases except for 1-bit.
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type Color interface {
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RGB888 | RGB565BE | RGB555 | RGB444BE
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RGB888 | RGB565BE | RGB555 | RGB444BE | Monochrome
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BaseColor
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}
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@@ -50,6 +50,8 @@ func NewColor[T Color](r, g, b uint8) T {
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return any(NewRGB555(r, g, b)).(T)
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case RGB444BE:
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return any(NewRGB444BE(r, g, b)).(T)
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case Monochrome:
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return any(NewMonochrome(r, g, b)).(T)
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default:
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panic("unknown color format")
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}
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@@ -202,6 +204,35 @@ func (c RGB444BE) RGBA() color.RGBA {
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return color
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}
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type Monochrome bool
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func NewMonochrome(r, g, b uint8) Monochrome {
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// Very simple black/white split.
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// This isn't very accurate (especially for sRGB colors) but is close enough.
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if int(r)+int(g)+int(b) > 128*3 { // light, convert to white
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return Monochrome(true)
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}
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// dark, convert to black
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return Monochrome(false)
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}
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func (c Monochrome) BitsPerPixel() int {
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return 1
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}
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func (c Monochrome) RGBA() color.RGBA {
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value := uint8(0)
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if c {
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value = 255
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}
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return color.RGBA{
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R: value,
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G: value,
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B: value,
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A: 255,
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}
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}
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// Gamma brightness lookup table:
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// https://victornpb.github.io/gamma-table-generator
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// gamma = 0.45 steps = 256 range = 0-255
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