39

I want to get RGB values of a Bitmap on Android but I can't do this so far. My aim is to obtain RGB values for each pixel of a Bitmap. Is there any specific function for Android or anything else?

Also I wonder that do I need colorMatrix() function?

It is very important for my project.

6 Answers 6

36

This may be slightly late, but to clear up the confusion with the use of &0xff:

In Java ints are 32 bits, so the (A)RGB values for each pixel are packed in 4 bytes. In other words, a pixel with the values R(123), G(93), B(49) = FF7B 5D31 in the ARGB_8888 model. Where Alpha = FF, R = 7B, G = 5D, B = 31. But this is stored as an int as -8692431.

So, to extract the Green value from -8692431, we need to shift the 5D by 8 bits to the right, as you know. This gives 00FF 7B5D. So, if we were just to take that value we would be left with 16743261 as our Green value. Therefore, we bitwise-and that value with the mask of 0xFF (which is equivalent to 0000 00FF) and will result in 00FF 7B5D being 'masked' to 0000 005D. So we have extracted our Green value of 5D (or 93 decimal).

We can use the same mask of 0xFF for each extraction because the values have all been shifted to expose the desired two bytes as the least significant. Hence the previously suggested code of:

int p = pixel[index];

int R = (p >> 16) & 0xff;
int G = (p >> 8) & 0xff;
int B = p & 0xff;

If it makes it clearer, you can perform the equivalent operation of:

int R = (p & 0xff0000) >> 16;
int G = (p & 0x00ff00) >> 8;
int B = (p & 0x0000ff) >> 0;

For brevity, the extra 0s can be dropped, and it can be written as

int R = (p & 0xff0000) >> 16;
int G = (p & 0xff00) >> 8;
int B = p & 0xff;

Note however, that alternative colour models may be used, such as RGB_555 which stores each pixel as just 2 bytes, with varying precision for the RGB channels. So you should check the model that your bitmap is using before you perform the extraction, because the colours may be stored differently.

4
  • Is there any reason R, G, and B cannot be bytes rather than ints?
    – topher217
    Commented Mar 29, 2021 at 9:38
  • @topher217 , I see an answer below by Cameron Lowell Palmer, used byte[] rgbValues = new byte[totalBytes]; and then int red = Color.red(argbPixel); and then it can get byte of int red by (byte) red.
    – Raii
    Commented Jul 7, 2022 at 1:05
  • I am newbie to ARGB , will it be faster to use int R = (p & 0xff0000) >> 16; than int R = int red = Color.red(colour);
    – Raii
    Commented Jul 7, 2022 at 1:10
  • @topher217 , oh I get it wrong. so you are asking why dont default use byte (smaller size) but using int (larger size) to hold the data as the result? I dont know too. I hope someone can help.
    – Raii
    Commented Jul 7, 2022 at 1:20
35

Bitmap#getPixel(x, y) returns an int with the colour values and alpha value embedded into it.

int colour = bitmap.getPixel(x, y);

int red = Color.red(colour);
int green = Color.green(colour);
int blue = Color.blue(colour);
int alpha = Color.alpha(colour);
1
  • 5
    A very easy way to calculate the pixel color values. Thanks a lot man ! Commented Aug 23, 2015 at 9:37
18

This is how I am trying to get that value. Use bitmap.getPixel() to get the corresponding bitmap in integer array. By using bitwise rotation operation, we will get RGB values.

             int[] pix = new int[picw * pich];
             bitmap.getPixels(pix, 0, picw, 0, 0, picw, pich);

             int R, G, B,Y;

             for (int y = 0; y < pich; y++){
             for (int x = 0; x < picw; x++)
                 {
                 int index = y * picw + x;
                 int R = (pix[index] >> 16) & 0xff;     //bitwise shifting
                 int G = (pix[index] >> 8) & 0xff;
                 int B = pix[index] & 0xff;

                 //R,G.B - Red, Green, Blue
                  //to restore the values after RGB modification, use 
 //next statement
                 pix[index] = 0xff000000 | (R << 16) | (G << 8) | B;
                 }}
3
  • thanks but whats the meaning of &0xff because ff=11111111. &(and operation) get the same number with 11111 because 0&1=1 1&1=1 all the time. int R = (pix[index] >> 16) Is enough to obtain R ?
    – barzos
    Commented Apr 14, 2011 at 21:18
  • thanks but whats the meaning of &0xff because ff=11111111. &(and operation) get the same number with 11111 because 0&1=1 1&1=1 all the time. int R = (pix[index] >> 16) Is enough to obtain R ?
    – barzos
    Commented Apr 16, 2011 at 17:27
  • I dont know too but I guess may be >>16 & 0xff means 0000AARR * 00000011 then last 2 *1*1 keep RR as result.
    – Raii
    Commented Jul 7, 2022 at 0:49
8

Arbitrary Bitmap Color Handling

You can read about the various Color methods here that will extract the components of color from a pixel int.

You might want to apply a filter to the bitmap, and return a byte array. Otherwise, you can cut this example down to the for-loop and roll through the pixels generating your array of bytes.

private byte[] rgbValuesFromBitmap(Bitmap bitmap)
{
    ColorMatrix colorMatrix = new ColorMatrix();
    ColorFilter colorFilter = new ColorMatrixColorFilter(
            colorMatrix);
    Bitmap argbBitmap = Bitmap.createBitmap(bitmap.getWidth(), bitmap.getHeight(),
            Bitmap.Config.ARGB_8888);
    Canvas canvas = new Canvas(argbBitmap);

    Paint paint = new Paint();

    paint.setColorFilter(colorFilter);
    canvas.drawBitmap(bitmap, 0, 0, paint);

    int width = bitmap.getWidth();
    int height = bitmap.getHeight();
    int componentsPerPixel = 3;
    int totalPixels = width * height;
    int totalBytes = totalPixels * componentsPerPixel;

    byte[] rgbValues = new byte[totalBytes];
    @ColorInt int[] argbPixels = new int[totalPixels];
    argbBitmap.getPixels(argbPixels, 0, width, 0, 0, width, height);
    for (int i = 0; i < totalPixels; i++) {
        @ColorInt int argbPixel = argbPixels[i];
        int red = Color.red(argbPixel);
        int green = Color.green(argbPixel);
        int blue = Color.blue(argbPixel);
        rgbValues[i * componentsPerPixel + 0] = (byte) red;
        rgbValues[i * componentsPerPixel + 1] = (byte) green;
        rgbValues[i * componentsPerPixel + 2] = (byte) blue;
    }

    return rgbValues;
}
2
  • Hello @Cameron Lowell Palmer can you please answer this question. I think I am not defining boundries to click event. As when I click on top left corner it works, but when I click on other corners the app crashes. Please help.
    – fWd82
    Commented Jun 22, 2018 at 18:48
  • Thanks this works like a charm and explains both on how to extract the rgb vals and then process them accordingly.
    – typedecker
    Commented May 15, 2021 at 8:22
7

One for statement less :D

imagen.getPixels(pix, 0, picw, 0, 0, picw, pich);

    for (i = 0; i < pix.length; i++) {
        r = (pix[i]) >> 16 & 0xff;
        g = (pix[i]) >> 8 & 0xff;
        b = (pix[i]) & 0xff;
    }
0
0

In addition to @Cobbles' answer, you can also use Bitmap#getColor(x, y) and a Color object.

for (int y = 0; y < bitmap.getHeight(); y++) {
    for (int x = 0; x < bitmap.getWidth(); x++) {
        Color color = bitmap.getColor(x, y);

        float red = color.red();
        float green = color.green();
        float blue = color.blue();
        float alpha = color.alpha();

        Log.d(TAG, String.format(
                "(R, G, B, A) = (%f, %f, %f, %f)", red, green, blue, alpha
        ));
    }
}

With above code, you can get float (0..1) RGBA values. When you just want to get integer (0..255) values, @Cobble's way is rather straight forward (recommended). Though there is still a way to get integer values with this Color object by using Color#toArgb.

for (int y = 0; y < bitmap.getHeight(); y++) {
    for (int x = 0; x < bitmap.getWidth(); x++) {
        int color = bitmap.getColor(x, y).toArgb();

        int red = Color.red(color);
        int green = Color.green(color);
        int blue = Color.blue(color);
        int alpha = Color.alpha(color);

        Log.d(TAG, String.format(
                "(R, G, B, A) = (%3d, %3d, %3d, %3d)", red, green, blue, alpha
        ));
    }
}

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