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I'm using the following piece of code to iterate over all pixels in an image and draw a red 1x1 square over the pixels that are within a certain RGB-tolerance. I guess there is a more efficient way to do this? Any ideas appreciated. (bi is a BufferedImage and g2 is a Graphics2D with its color set to Color.RED).

    Color targetColor = new Color(selectedRGB);

    for (int x = 0; x < bi.getWidth(); x++) {
        for (int y = 0; y < bi.getHeight(); y++) {
            Color pixelColor = new Color(bi.getRGB(x, y));
            if (withinTolerance(pixelColor, targetColor)) {
                g2.drawRect(x, y, 1, 1);

private boolean withinTolerance(Color pixelColor, Color targetColor) {
    int pixelRed = pixelColor.getRed();
    int pixelGreen = pixelColor.getGreen();
    int pixelBlue = pixelColor.getBlue();

    int targetRed = targetColor.getRed();
    int targetGreen = targetColor.getGreen();
    int targetBlue = targetColor.getBlue();

    return (((pixelRed >= targetRed - tolRed) && (pixelRed <= targetRed + tolRed)) &&
            ((pixelGreen >= targetGreen - tolGreen) && (pixelGreen <= targetGreen + tolGreen)) &&
            ((pixelBlue >= targetBlue - tolBlue) && (pixelBlue <= targetBlue + tolBlue)));
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@Ed Taylor: by all mean, do now create a new Color for every single pixel of your image: this is precisely how people kill perfs of Java programs. For a 1920x1200 picture you'd be creating more than 2 million Color objects. Quite a waste (I know, I know, short lived object, but still: if you can trivially dodge creating 2 millions objects in a split-second, by all mean dodge it ;) – NoozNooz42 Jun 1 '10 at 0:52

1 Answer 1

if (withinTolerance(pixelColor, targetColor)) {
    bi.setRGB( x, y, 0xFFFF0000 )

BufferedImage's setRGB method's third parameter, as explained in the Javadoc, takes a pixel of the TYPE_INT_ARGB form.

  • 8 bits for the alpha (FF here, fully opaque)
  • 8 bits for the red component (FF here, fully flashy red)
  • 8 bits for the green component (0, no green)
  • 8 bits for the blue component.
share|improve this answer
Hmm, I can't see any red pixels after running the algorithm with setRGB instead, not even after calling repaint(). Maybe this is trivial... I'll investigate this further tomorrow. – Ed Taylor Jun 1 '10 at 1:17
Problem solved, I forgot to update a reference to the new image before repainting. The setRGB method works, but I can't see any considerable performance improvement. – Ed Taylor Jun 1 '10 at 1:44
I wonder why the function isn't called setARGB. – Tomáš Zato Feb 1 at 20:08

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