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You can understand why I'm trying to find the dominant color in an image if you use Windows 7. When your mouse over a program in the taskbar, the background of that particular program changes based on the most dominant color in the icon. I have noticed this technique used in other programs as well, but can't remember them off the top of my head.

I can see this being helpful in a number of UI techniques that I'm using to develop an application, and I was wondering how finding the most common color would be achieved from an Android drawable resource.

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4 Answers 4

up vote 2 down vote accepted

Loop through all the pixel's color data and average the color values, ignore anything that is a shade of grey or transparent. I believe that is what Microsoft does in Windows 7 based on a recent blog post.

edit
The blog post: http://blogs.msdn.com/b/oldnewthing/archive/2011/12/06/10244432.aspx

This link showing how Chrome picks the dominant color may also be helpful. http://www.quora.com/Google-Chrome/How-does-Chrome-pick-the-color-for-the-stripes-on-the-Most-visited-page-thumbnails

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I was hoping there would be an API function buried deep somewhere. This is good info –  styler1972 Jan 9 '12 at 16:44

This class iterates through a Bitmap and returns the most dominate colour.

public class ImageColour {

String colour;


public ImageColour(Bitmap image) throws Exception {

     int height = image.getHeight();
     int width = image.getWidth();

     Map m = new HashMap();

        for(int i=0; i < width ; i++){

            for(int j=0; j < height ; j++){

                int rgb = image.getPixel(i, j);
                int[] rgbArr = getRGBArr(rgb);                

                if (!isGray(rgbArr)) {   

                        Integer counter = (Integer) m.get(rgb);   
                        if (counter == null)
                            counter = 0;
                        counter++;                                
                        m.put(rgb, counter);       

                }                
            }
        }        

        String colourHex = getMostCommonColour(m);
    }



    public static String getMostCommonColour(Map map) {

        List list = new LinkedList(map.entrySet());
        Collections.sort(list, new Comparator() {
              public int compare(Object o1, Object o2) {

                return ((Comparable) ((Map.Entry) (o1)).getValue())
                  .compareTo(((Map.Entry) (o2)).getValue());

              }

        });    

        Map.Entry me = (Map.Entry )list.get(list.size()-1);
        int[] rgb= getRGBArr((Integer)me.getKey());

        return Integer.toHexString(rgb[0])+" "+Integer.toHexString(rgb[1])+" "+Integer.toHexString(rgb[2]);        
    }    


    public static int[] getRGBArr(int pixel) {

        int red = (pixel >> 16) & 0xff;
        int green = (pixel >> 8) & 0xff;
        int blue = (pixel) & 0xff;

        return new int[]{red,green,blue};

  }

    public static boolean isGray(int[] rgbArr) {

        int rgDiff = rgbArr[0] - rgbArr[1];
        int rbDiff = rgbArr[0] - rgbArr[2];

        int tolerance = 10;

        if (rgDiff > tolerance || rgDiff < -tolerance) 
            if (rbDiff > tolerance || rbDiff < -tolerance) { 

                return false;

            }                

        return true;
    }


public String returnColour() {

    if (colour.length() == 6) {
        return colour.replaceAll("\\s", "");
    } else {
        return "error";
    }
}

to get the hex simply call returnColour();

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I suggest to whoever uses this approach to play with the tolerance variable. Depending on the value you set it the algorithm runs faster or slower. –  Thiago M Rocha Aug 19 at 14:36

I've been trying to achieve a similar thing. Wasn't able to find any ready-made APIs for Android though.

In the end I wrote my own function to calculate the average color of a Drawable, based on a small sample of pixels. This saves having to iterate through every pixel in the image, which could take a long time for large images. It's not quite the same as finding the dominant color, but it worked for my purposes (setting the background color for launcher icons)

The full source is available at http://makingmoneywithandroid.com/forum/showthread.php?tid=433

Hope this can be of some help to you!

Note: This code makes use of a BitmapDrawable, not just a regular Drawable. See How to convert a Drawable to a Bitmap? for more info on this distinction.

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I wrote my own methods to get dominant color:

Method 1 (My technique)

  1. Reduce to ARGB_4444 color space
  2. Compute the maximum occurrence of individual RGB elements and obtaining 3 distinctive maximum values
  3. Combining maximum values to dominant RGB color

    public int getDominantColor1(Bitmap bitmap) {
    
    if (bitmap == null)
        throw new NullPointerException();
    
    int width = bitmap.getWidth();
    int height = bitmap.getHeight();
    int size = width * height;
    int pixels[] = new int[size];
    
    Bitmap bitmap2 = bitmap.copy(Bitmap.Config.ARGB_4444, false);
    
    bitmap2.getPixels(pixels, 0, width, 0, 0, width, height);
    
    final List<HashMap<Integer, Integer>> colorMap = new ArrayList<HashMap<Integer, Integer>>();
    colorMap.add(new HashMap<Integer, Integer>());
    colorMap.add(new HashMap<Integer, Integer>());
    colorMap.add(new HashMap<Integer, Integer>());
    
    int color = 0;
    int r = 0;
    int g = 0;
    int b = 0;
    Integer rC, gC, bC;
    for (int i = 0; i < pixels.length; i++) {
        color = pixels[i];
    
        r = Color.red(color);
        g = Color.green(color);
        b = Color.blue(color);
    
        rC = colorMap.get(0).get(r);
        if (rC == null)
            rC = 0;
        colorMap.get(0).put(r, ++rC);
    
        gC = colorMap.get(1).get(g);
        if (gC == null)
            gC = 0;
        colorMap.get(1).put(g, ++gC);
    
        bC = colorMap.get(2).get(b);
        if (bC == null)
            bC = 0;
        colorMap.get(2).put(b, ++bC);
    }
    
    int[] rgb = new int[3];
    for (int i = 0; i < 3; i++) {
        int max = 0;
        int val = 0;
        for (Map.Entry<Integer, Integer> entry : colorMap.get(i).entrySet()) {
            if (entry.getValue() > max) {
                max = entry.getValue();
                val = entry.getKey();
            }
        }
        rgb[i] = val;
    }
    
    int dominantColor = Color.rgb(rgb[0], rgb[1], rgb[2]);
    
    return dominantColor;
     }
    

Method 2 (Old technique)

  1. Reduce to ARGB_4444 color space
  2. Compute the occurrence of each color and finding the maximum one as dominant color

    public int getDominantColor2(Bitmap bitmap) {
    if (bitmap == null)
        throw new NullPointerException();
    
    int width = bitmap.getWidth();
    int height = bitmap.getHeight();
    int size = width * height;
    int pixels[] = new int[size];
    
    Bitmap bitmap2 = bitmap.copy(Bitmap.Config.ARGB_4444, false);
    
    bitmap2.getPixels(pixels, 0, width, 0, 0, width, height);
    
    HashMap<Integer, Integer> colorMap = new HashMap<Integer, Integer>();
    
    int color = 0;
    Integer count = 0;
    for (int i = 0; i < pixels.length; i++) {
        color = pixels[i];
        count = colorMap.get(color);
        if (count == null)
            count = 0;
        colorMap.put(color, ++count);
    }
    
    int dominantColor = 0;
    int max = 0;
    for (Map.Entry<Integer, Integer> entry : colorMap.entrySet()) {
        if (entry.getValue() > max) {
            max = entry.getValue();
            dominantColor = entry.getKey();
        }
    }
    return dominantColor;
    }
    
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