I'm looking for some kind of formula or algorithm to determine the brightness of a color given the RGB values. I know it can't be as simple as adding the RGB values together and having higher sums be brighter, but I'm kind of at a loss as to where to start.

  • 7
    Perceived brightness is what I think I'm looking for, thank you. – robmerica Feb 27 '09 at 19:34
  • 2
    There is a good article (Manipulating colors in .NET - Part 1) about color spaces and conversations between them including both theory and the code (C#). For the answer look at Conversion between models topic in the article. – underscore Jun 3 '13 at 15:43
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    I have been a member for lots of years, and I have never done this before. May I suggest that you review the answers and re-think which one to accept? – Jive Dadson Jun 15 '17 at 6:00

18 Answers 18

up vote 408 down vote accepted

Do you mean brightness? Perceived brightness? Luminance?

  • Luminance (standard for certain colour spaces): (0.2126*R + 0.7152*G + 0.0722*B) [1]
  • Luminance (perceived option 1): (0.299*R + 0.587*G + 0.114*B) [2]
  • Luminance (perceived option 2, slower to calculate): sqrt( 0.241*R^2 + 0.691*G^2 + 0.068*B^2 )sqrt( 0.299*R^2 + 0.587*G^2 + 0.114*B^2 ) (thanks to @MatthewHerbst) [3]
  • 19
    Note that both of these emphasize the physiological aspects: the human eyeball is most sensitive to green light, less to red and least to blue. – Bob Cross Feb 27 '09 at 19:28
  • 14
    Note also that all of these are probably for linear 0-1 RGB, and you probably have gamma-corrected 0-255 RGB. They are not converted like you think they are. – alex strange Feb 27 '09 at 19:46
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    Where'd ya get those formulas? – bobobobo Oct 5 '09 at 18:31
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    +1 for implying that there are multiple solutions. -2 for not providing any references or rationales behind the ones you list. – endolith May 19 '12 at 0:14
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    In the last formula, is it (0.299*R)^2 or is it 0.299*(R^2) ? – Kaizer Sozay Jul 17 '15 at 4:25

I think what you are looking for is the RGB -> Luma conversion formula.

Photometric/digital ITU BT.709:

Y = 0.2126 R + 0.7152 G + 0.0722 B

Digital ITU BT.601 (gives more weight to the R and B components):

Y = 0.299 R + 0.587 G + 0.114 B

If you are willing to trade accuracy for perfomance, there are two approximation formulas for this one:

Y = 0.33 R + 0.5 G + 0.16 B

Y = 0.375 R + 0.5 G + 0.125 B

These can be calculated quickly as

Y = (R+R+B+G+G+G)/6

Y = (R+R+R+B+G+G+G+G)>>3
  • 33
    I like that you put in precise values, but also included a quick "close enough" type shortcut. +1. – Beska Feb 27 '09 at 20:39
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    @Jonathan Dumaine - the two quick calculation formulas both include blue - 1st one is (2*Red + Blue + 3*Green)/6, 2nd one is (3*Red + Blue + 4*Green)>>3. granted, in both quick approximations, Blue has the lowest weight, but it's still there. – Franci Penov Dec 18 '10 at 1:24
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    @JonathanDumaine That's because the human eye is least perceptive to Blue ;-) – Christopher Oezbek May 24 '12 at 16:39
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    The quick version works well. Tested and applied to real-world app with thousands of users, everything looks fine. – milosmns Jan 5 '15 at 0:34
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    The quick version is even faster if you do it as: Y = (R<<1+R+G<<2+B)>>3 (thats only 3-4 CPU cycles on ARM) but I guess a good compiler will do that optimisation for you. – rjmunro Mar 11 '15 at 11:16

I have made comparison of the three algorithms in the accepted answer. I generated colors in cycle where only about every 400th color was used. Each color is represented by 2x2 pixels, colors are sorted from darkest to lightest (left to right, top to bottom).

1st picture - Luminance (relative)

0.2126 * R + 0.7152 * G + 0.0722 * B

2nd picture - http://www.w3.org/TR/AERT#color-contrast

0.299 * R + 0.587 * G + 0.114 * B

3rd picture - HSP Color Model

sqrt(0.299 * R^2 + 0.587 * G^2 + 0.114 * B^2)

4th picture - WCAG 2.0 SC 1.4.3 relative luminance and contrast ratio formula (see @Synchro's answer)

Pattern can be sometimes spotted on 1st and 2nd picture depending on the number of colors in one row. I never spotted any pattern on picture from 3rd or 4th algorithm.

If i had to choose i would go with algorithm number 3 since its much easier to implement and its about 33% faster than the 4th.

Perceived brightness algorithm comparison

  • 2
    To me this is the best answer because oyu use a picture pattern that let you perceive if different hues are rendered with th same luminance. For me and my current monitor the 3rd picture is the "best looking" since it is also faster then 4th that's a plus – GameDeveloper Jan 8 '15 at 21:21
  • 4
    Your comparison image is incorrect because you did not provide the correct input to all of the functions. The first function requires linear RGB input; I can only reproduce the banding effect by providing nonlinear (i.e. gamma-corrected) RGB. Correcting this issue, you get no banding artifacts and the 1st function is the clear winner. – Max Nov 10 '17 at 17:32

Below is the only CORRECT algorithm for converting sRGB images, as used in browsers etc., to grayscale.

It is necessary to apply an inverse of the gamma function for the color space before calculating the inner product. Then you apply the gamma function to the reduced value. Failure to incorporate the gamma function can result in errors of up to 20%.

For typical computer stuff, the color space is sRGB. The right numbers for sRGB are approx. 0.21, 0.72, 0.07. Gamma for sRGB is a composite function that approximates exponentiation by 1/(2.2). Here is the whole thing in C++.

// sRGB luminance(Y) values
const double rY = 0.212655;
const double gY = 0.715158;
const double bY = 0.072187;

// Inverse of sRGB "gamma" function. (approx 2.2)
double inv_gam_sRGB(int ic) {
    double c = ic/255.0;
    if ( c <= 0.04045 )
        return c/12.92;
    else 
        return pow(((c+0.055)/(1.055)),2.4);
}

// sRGB "gamma" function (approx 2.2)
int gam_sRGB(double v) {
    if(v<=0.0031308)
        v *= 12.92;
    else 
        v = 1.055*pow(v,1.0/2.4)-0.055;
    return int(v*255+0.5); // This is correct in C++. Other languages may not
                           // require +0.5
}

// GRAY VALUE ("brightness")
int gray(int r, int g, int b) {
    return gam_sRGB(
            rY*inv_gam_sRGB(r) +
            gY*inv_gam_sRGB(g) +
            bY*inv_gam_sRGB(b)
    );
}
  • 5
    That is just the way sRGB is defined. I think the reason is that it avoids some numerical problems near zero. It would not make much difference if you just raised the numbers to the powers of 2.2 and 1/2.2. – Jive Dadson Mar 22 '13 at 19:27
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    JMD - as part of work in a visual perception lab, I have done direct luminance measurements on CRT monitors and can confirm that there is a linear region of luminance at the bottom of the range of values. – Jerry Federspiel Oct 2 '14 at 13:22
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    I know this is very old, but its still out there to be searched. I don't think it can be correct. Shouldn't gray(255,255,255) = gray(255,0,0)+gray(0,255,0)+gray(0,0,255)? It doesn't. – DCBillen May 6 '15 at 15:08
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    @DCBillen: no, since the values are in non-linear gamma-corrected sRGB space, you can't just add them up. If you wanted to add them up, you should do so before calling gam_sRGB. – rdb Jan 5 '16 at 14:26
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    @DCBillen Rdb is correct. The way to add them up is shown in the function int gray(int r, int g, int b), which "uncalls" gam_sRGB. It pains me that after four years, the correct answer is rated so low. :-) Not really.. I will get over it. – Jive Dadson Nov 22 '16 at 9:02

Interestingly, this formulation for RGB=>HSV just uses v=MAX3(r,g,b). In other words, you can use the maximum of (r,g,b) as the V in HSV.

I checked and on page 575 of Hearn & Baker this is how they compute "Value" as well.

From Hearn&Baker pg 319

Rather than getting lost amongst the random selection of formulae mentioned here, I suggest you go for the formula recommended by W3C standards.

Here's a straightforward but exact PHP implementation of the WCAG 2.0 SC 1.4.3 relative luminance and contrast ratio formulae. It produces values that are appropriate for evaluating the ratios required for WCAG compliance, as on this page, and as such is suitable and appropriate for any web app. This is trivial to port to other languages.

/**
 * Calculate relative luminance in sRGB colour space for use in WCAG 2.0 compliance
 * @link http://www.w3.org/TR/WCAG20/#relativeluminancedef
 * @param string $col A 3 or 6-digit hex colour string
 * @return float
 * @author Marcus Bointon <marcus@synchromedia.co.uk>
 */
function relativeluminance($col) {
    //Remove any leading #
    $col = trim($col, '#');
    //Convert 3-digit to 6-digit
    if (strlen($col) == 3) {
        $col = $col[0] . $col[0] . $col[1] . $col[1] . $col[2] . $col[2];
    }
    //Convert hex to 0-1 scale
    $components = array(
        'r' => hexdec(substr($col, 0, 2)) / 255,
        'g' => hexdec(substr($col, 2, 2)) / 255,
        'b' => hexdec(substr($col, 4, 2)) / 255
    );
    //Correct for sRGB
    foreach($components as $c => $v) {
        if ($v <= 0.03928) {
            $components[$c] = $v / 12.92;
        } else {
            $components[$c] = pow((($v + 0.055) / 1.055), 2.4);
        }
    }
    //Calculate relative luminance using ITU-R BT. 709 coefficients
    return ($components['r'] * 0.2126) + ($components['g'] * 0.7152) + ($components['b'] * 0.0722);
}

/**
 * Calculate contrast ratio acording to WCAG 2.0 formula
 * Will return a value between 1 (no contrast) and 21 (max contrast)
 * @link http://www.w3.org/TR/WCAG20/#contrast-ratiodef
 * @param string $c1 A 3 or 6-digit hex colour string
 * @param string $c2 A 3 or 6-digit hex colour string
 * @return float
 * @author Marcus Bointon <marcus@synchromedia.co.uk>
 */
function contrastratio($c1, $c2) {
    $y1 = relativeluminance($c1);
    $y2 = relativeluminance($c2);
    //Arrange so $y1 is lightest
    if ($y1 < $y2) {
        $y3 = $y1;
        $y1 = $y2;
        $y2 = $y3;
    }
    return ($y1 + 0.05) / ($y2 + 0.05);
}
  • why would you prefer w3c definition? personally i have implemented both CCIR 601 and the w3c recommended one and i was much more satisfied with the CCIR 601 results – user151496 Mar 15 '14 at 17:15
  • Because, as I said, it's recommended by both the W3C and WCAG? – Synchro Mar 16 '14 at 11:42
  • Not right/ Must apply inverse gamma. etc/ – Jive Dadson Aug 17 at 2:20
  • @JiveDadson As I see it, it is applied right there where it says //Correct for sRGB. At least it is almost the same operation you have defined as inv_gam_sRGB. So I think this is correct. – zenw0lf Sep 12 at 23:32

I found this code (written in C#) that does an excellent job of calculating the "brightness" of a color. In this scenario, the code is trying to determine whether to put white or black text over the color.

  • 1
    That is exactly what I needed. I was doing a classic "color bars" demo, and wanted to label them on top of the color with the best black-or-white choice! – RufusVS Jun 21 '16 at 22:21

To add what all the others said:

All these equations work kinda well in practice, but if you need to be very precise you have to first convert the color to linear color space (apply inverse image-gamma), do the weight average of the primary colors and - if you want to display the color - take the luminance back into the monitor gamma.

The luminance difference between ingnoring gamma and doing proper gamma is up to 20% in the dark grays.

The HSV colorspace should do the trick, see the wikipedia article depending on the language you're working in you may get a library conversion .

H is hue which is a numerical value for the color (i.e. red, green...)

S is the saturation of the color, i.e. how 'intense' it is

V is the 'brightness' of the color.

  • 7
    Problem with the HSV color space is that you can have the same saturation and value, but different hue's, for blue and yellow. Yellow is much brighter than blue. Same goes for HSL. – Ian Boyd May 6 '10 at 14:22
  • hsv gives you the "brightness" of a color in a technical sense. in a perceptual brightness hsv really fails – user151496 Mar 15 '14 at 17:24

RGB Luminance value = 0.3 R + 0.59 G + 0.11 B

http://www.scantips.com/lumin.html

If you're looking for how close to white the color is you can use Euclidean Distance from (255, 255, 255)

I think RGB color space is perceptively non-uniform with respect to the L2 euclidian distance. Uniform spaces include CIE LAB and LUV.

The inverse-gamma formula by Jive Dadson needs to have the half-adjust removed when implemented in Javascript, i.e. the return from function gam_sRGB needs to be return int(v*255); not return int(v*255+.5); Half-adjust rounds up, and this can cause a value one too high on a R=G=B i.e. grey colour triad. Greyscale conversion on a R=G=B triad should produce a value equal to R; it's one proof that the formula is valid. See Nine Shades of Greyscale for the formula in action (without the half-adjust).

  • It sounds like you know your stuff, so I removed the +0.5 – Jive Dadson Jun 15 '17 at 3:29
  • I did the experiment. In C++ it needs the +0.5, so I put it back in. I added a comment about translating to other languages. – Jive Dadson Jun 15 '17 at 5:23

Here's a bit of C code that should properly calculate perceived luminance.

// reverses the rgb gamma
#define inverseGamma(t) (((t) <= 0.0404482362771076) ? ((t)/12.92) : pow(((t) + 0.055)/1.055, 2.4))

//CIE L*a*b* f function (used to convert XYZ to L*a*b*)  http://en.wikipedia.org/wiki/Lab_color_space
#define LABF(t) ((t >= 8.85645167903563082e-3) ? powf(t,0.333333333333333) : (841.0/108.0)*(t) + (4.0/29.0))


float
rgbToCIEL(PIXEL p)
{
   float y;
   float r=p.r/255.0;
   float g=p.g/255.0;
   float b=p.b/255.0;

   r=inverseGamma(r);
   g=inverseGamma(g);
   b=inverseGamma(b);

   //Observer = 2°, Illuminant = D65 
   y = 0.2125862307855955516*r + 0.7151703037034108499*g + 0.07220049864333622685*b;

   // At this point we've done RGBtoXYZ now do XYZ to Lab

   // y /= WHITEPOINT_Y; The white point for y in D65 is 1.0

    y = LABF(y);

   /* This is the "normal conversion which produces values scaled to 100
    Lab.L = 116.0*y - 16.0;
   */
   return(1.16*y - 0.16); // return values for 0.0 >=L <=1.0
}

I wonder how those rgb coefficients were determined. I did an experiment myself and I ended up with the following:

Y = 0.267 R + 0.642 G + 0.091 B

Close but but obviously different than the long established ITU coefficients. I wonder if those coefficients could be different for each and every observer, because we all may have a different amount of cones and rods on the retina in our eyes, and especially the ratio between the different types of cones may differ.

For reference:

ITU BT.709:

Y = 0.2126 R + 0.7152 G + 0.0722 B

ITU BT.601:

Y = 0.299 R + 0.587 G + 0.114 B

I did the test by quickly moving a small gray bar on a bright red, bright green and bright blue background, and adjusting the gray until it blended in just as much as possible. I also repeated that test with other shades. I repeated the test on different displays, even one with a fixed gamma factor of 3.0, but it all looks the same to me. More over, the ITU coefficients literally are wrong for my eyes.

And yes, I presumably have a normal color vision.

Please define brightness. If you're looking for how close to white the color is you can use Euclidean Distance from (255, 255, 255)

The 'V' of HSV is probably what you're looking for. MATLAB has an rgb2hsv function and the previously cited wikipedia article is full of pseudocode. If an RGB2HSV conversion is not feasible, a less accurate model would be the grayscale version of the image.

This link explains everything in depth, including why those multiplier constants exist before the R, G and B values.

Edit: It has an explanation to one of the answers here too (0.299*R + 0.587*G + 0.114*B)

To determine the brightness of a color with R, I convert the RGB system color in HSV system color.

In my script, I use the HEX system code before for other reason, but you can start also with RGB system code with rgb2hsv {grDevices}. The documentation is here.

Here is this part of my code:

 sample <- c("#010101", "#303030", "#A6A4A4", "#020202", "#010100")
 hsvc <-rgb2hsv(col2rgb(sample)) # convert HEX to HSV
 value <- as.data.frame(hsvc) # create data.frame
 value <- value[3,] # extract the information of brightness
 order(value) # ordrer the color by brightness

For clarity, the formulas that use a square root need to be

sqrt(coefficient * (colour_value^2))

not

sqrt((coefficient * colour_value))^2

The proof of this lies in the conversion of a R=G=B triad to greyscale R. That will only be true if you square the colour value, not the colour value times coefficient. See Nine Shades of Greyscale

  • 5
    there are parenthesis mistmatches – log0 Feb 1 '16 at 13:25
  • unless the coefficient you use is the square root of the correct coefficient. – RufusVS Jun 22 '16 at 18:56

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