Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

How do I convert RGB to HSL in C/C++?

(Note: This is a (short) self-answer -- I posted it here so people can find it quickly with a search.)

share|improve this question

1 Answer 1

Translating the code from here, you get:

// Assuming sizeof(unsigned int) == 4 * sizeof(unsigned char)
unsigned int RgbToHsl(unsigned int rgb)  // Alpha value is simply passed through
{
#ifdef __cplusplus
    using std::max;
    using std::min;
#endif
    double
        r = (rgb >> (0 * CHAR_BIT)) & UCHAR_MAX,
        g = (rgb >> (1 * CHAR_BIT)) & UCHAR_MAX,
        b = (rgb >> (2 * CHAR_BIT)) & UCHAR_MAX;
    r /= UCHAR_MAX;
    g /= UCHAR_MAX;
    b /= UCHAR_MAX;
    double
        maxv = max(max(r, g), b),
        minv = min(min(r, g), b),
        h = 0, s = 0, d = maxv - minv,
        l = (maxv + minv) / 2;
    if (maxv != minv)
    {
        s = l > 0.5 ? d / (2 - maxv - minv) : d / (maxv + minv);
        if (maxv == r) { h = (g - b) / d + (g < b ? 6 : 0); }
        else if (maxv == g) { h = (b - r) / d + 2; }
        else if (maxv == b) { h = (r - g) / d + 4; }
        h /= 6;
    }
    return ((unsigned int)(h * UCHAR_MAX) << (0 * CHAR_BIT)) |
           ((unsigned int)(s * UCHAR_MAX) << (1 * CHAR_BIT)) |
           ((unsigned int)(l * UCHAR_MAX) << (2 * CHAR_BIT)) |
           (((rgb >> (3 * CHAR_BIT)) & UCHAR_MAX) << (3 * CHAR_BIT));
}

Assuming the order is RGBA where R is the least significant byte.

share|improve this answer
1  
That's actually ABGR. –  oldrinb Sep 12 '12 at 3:13
    
@oldrinb: I'm just going with what Microsoft says, which is that RGB is 0x00BBGGRR... I say po-tay-to, you say po-tah-to I guess. –  Mehrdad Sep 12 '12 at 3:32
    
they use the same color space, they're just packed into integers differently. It's based on the order of the components from most- to least-significant. –  oldrinb Sep 12 '12 at 3:34
    
@oldrinb: Looks like you answered yourself. –  Mehrdad Sep 12 '12 at 3:34
1  
Answered myself? I explained to you why your code is actually using ABGR, not ARGB. You're confusing the fact they share a common color space with the incorrect statement that they share a common representation. ABGR != ARGB merely because they both share a color space. –  oldrinb Sep 12 '12 at 3:38

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.