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I was writing a control class for a device until I got to the point I needed to convert an ARGB color into its format. at first, I wrote this function (which worked):

private static int convertFormat(System.Drawing.Color c)
{
    String all;

    int a = (int)((float)c.A / 31.875);

    if (a == 0)
        a = 1;

    all = a.ToString() + c.B.ToString("X").PadLeft(2, '0') + c.G.ToString("X").PadLeft(2, '0') + c.R.ToString("X").PadLeft(2, '0');

    int num = int.Parse(all, System.Globalization.NumberStyles.AllowHexSpecifier);

    return num;
}

but it was so ugly I wanted to write a more elegant solution. So I did some for to get the correct values, trying all combinations between 0 and 50. It worked, and I ended up with this:

private static int convertFormatShifting(System.Drawing.Color c)
{
    int alpha = (int)Math.Round((float)c.A / 31.875);

    int a = Math.Max(alpha,1);

    return (a << 24) | (c.B << 48) | (c.G << 40) | (c.R << 32);
}

which works!

but now, I would love someone to explain me why these are the correct shifting values.

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1  
int is 32-bit signed integer in C#. So your shifts are not correct. –  jnovacho Oct 11 '13 at 13:42

2 Answers 2

up vote 9 down vote accepted

The least confusing shift values should be as follows:

return (a << 24) | (c.B << 16) | (c.G << 8) | (c.R << 0);
// Of course there's no need to shift by zero  ^^^^^^^^

The reason your values work is that the shift operator mods the right-hand side with the bit length of the operand on the left. In other words, all of the following shifts are equivalent to each other:

c.G << 8
c.G << 40
c.G << 72
c.G << 104
...
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1  
so basically just the five low-order bits matter. thanks to you I understood this for good. :D –  michyprima Oct 11 '13 at 14:02
1  
One of the more confusing features of C#. Better than C, which makes this undefined behavior, but still, this has always struck me as weird. –  Eric Lippert Oct 11 '13 at 15:05

According to Wikipedia, the RGBA format follows the following convention:

semantics alpha | red | green | blue
bits      31-24 |23-16|15 -  8|7 - 0

This is something similar to what your shifts do. You are moving the bits to the left and concatenating them with a bit wise or. And then take a look at what is your function expected to return (what's the order of the color within the int).

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int is always 32 bits. –  sloth Oct 11 '13 at 13:53
    
You are right, since it's C#. I'll correct the answer. –  fvdalcin Oct 11 '13 at 14:04

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