14

Given an RGB color in 32-bit unsigned integer form (eg. 0xFF00FF), how would you invert it (get a negative color), without extracting its individual components using bitshift operations?

I wonder whether it's possible using just bitwise operations (AND, OR, XOR).

More precisely, what's the algorithm that uses the least number of instructions?

2
  • 0xFF00FF is only 3 bytes or 24bits, NOT 32bits. Aug 9, 2013 at 7:32
  • 4
    I'm interested only in colors so the remaining byte is irrelevant and hence omitted. Thanks for downvoting.
    – skrat
    Aug 9, 2013 at 7:34

5 Answers 5

23

I think it is so simple. You can just calculate 0xFFFFFF-YourColor. It will be the inverted color.

int neg = 0xFFFFFF - originalRGB

// optional: set alpha to 255:
int neg = (0xFFFFFF - originalRGB) | 0xFF000000;
7
  • 2
    Although this would invert Alpha as well... Might not what the OP wants... Try 0x00FFFFFF - YourColor instead
    – initramfs
    Aug 9, 2013 at 7:36
  • 3
    @CPUTerminator: That will not leave alpha unchanged either. Something like (0x00FFFFFFU - (input | 0xFF000000U)) | (input & 0xFF000000U) should suffice.
    – caf
    Aug 9, 2013 at 8:20
  • @caf My mistake... Rushed through my comment... Could just do (0xFFFFFFFF - Color) + (0xFF000000 & Color) though.
    – initramfs
    Aug 9, 2013 at 11:45
  • @CPUTerminator: No, that would leave the alpha as 0xFF.
    – caf
    Aug 9, 2013 at 12:01
  • 1
    To make this a better answer, can you explain exactly what this code is doing to arrive at the result? Sep 13, 2018 at 0:28
14

Use this method to invert each color and maintain original alpha.

int invert(int color) {
  return color ^ 0x00ffffff;
}

xor (^) with 0 returns the original value unmodified. xor with 0xff flips the bits. so in the above case we have 0xaarrggbb we are flipping/inverting r, g and b.

This should be the most efficient way to invert a color. arithmetic is (marginally) slower than this utterly simple bit-wise manipulation.

if you want to ignore original alpha, and just make it opaque, you can overwrite the alpha:

int invert(int color) {
  0xff000000 | ~color;
}

in this case we just flip every bit of color to inverse every channel including alpha, and then overwrite the alpha channel to opaque by forcing the first 8 bits high with 0xff000000.

4

You could simply perform the negation of the color. Snippet:

~ color
1
  • 4
    Seems like the simplest solution, I guess it would have the alpha inverting issue though
    – paulm
    Sep 12, 2014 at 17:14
0
Color color_original = Color.lightGray;

int rgb = color_original.getRGB();

int inverted = (0x00FFFFFF - (rgb | 0xFF000000)) | (rgb & 0xFF000000);

Color color_inverted = new Color(inverted);
0

Your question is unclear; no colors in RGB are "negative colors".

You could invert an image, as though it was a film negative. Is that what you meant?

If you wanted to invert an image that has just one pixel of color 0xFF00FF, the calculation is to subtract from white, 0xFFFFFF.

> negative_result_color = 0xFFFFFF - 0xFF00FF
> negative_result_color == 0x00FF00
true

In a computer, a subtraction is done by adding the compliment: http://en.wikipedia.org/wiki/Method_of_complements#Binary_example

But seriously, why wouldn't you just let the machine do the subtraction for you with your ordinary code? Its what they're good at.

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