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How to divide the #000000 - #ffffff interval intro x equal parts, to get x gray colors? Is this possible?

Edit: More specifically: I want 'divide' the #000000 - #ffffff color range like this:

  1. #000000
  2. #1E1E1E
  3. #282828
  4. #515151
  5. #5B5B5B
  6. #848484
  7. #8E8E8E
  8. #B7B7B7
  9. #C1C1C1
  10. #EAEAEA
  11. #F4F4F4
  12. #FFFFFF

In this list there are 12 colors. (Check out the sgi gray colors here.)

But what if I want not 12 but 32 colors? How to calculate them? I hope now you understand me :)

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Im not really sure what you mean, sounds interesting tho :) What exactly do you want? –  Hans Wassink Mar 10 '12 at 16:41

5 Answers 5

up vote 3 down vote accepted

#000000 is actually RGB with R = #00, G = #00, B = #00

You get a gray color for R = G = B.

#00 - #FF leaves you with 256 possible combinations, so if you wanna exclude white and black (#000000 and #FFFFFF) try something like this:

step = 256 / (x + 2)

So if you want to get 4 grays, step resolves to

step = 256 / (4+2) = 256 / 6 = 43

Transform that from decimal to hex:

step_16 = 43_16 = #2B

The colors would now be:

#2B2B2B
#565656
#818181
...
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I accept this answer for the detailed explanaiton. –  Tamás Pap Mar 10 '12 at 16:54
    
Great explanation Niko, thanks –  Hans Wassink Mar 10 '12 at 18:23

Yes it's possible, just divide 255 by x and then you will get the step.

Generator in Ruby:

def gray_generator(steps)
  step = 255/steps
  ret = []
  steps.times { |i| ret << (step*i).to_s(16) * 3 }
  return ret
end
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Actually you just have to divide 255(DEC) in x parts. Then, you pass those numbers to hexadecimal numbers, lets call one of those numbers 0xC4. Finally, you just have to do this:

    .whatever { background-color: #C4C4C4; }

That's how.

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As long as all three values (RGB) are equal, they are gray

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If you need X grays within the #000000 (Black) to #ffffff (White) range, you will need to divide 255/(x-1) and use the result as a step value for Reg, Green and Blue. To do this in java:

int x = 12;
for (int i = 0; i < x; i++) {
    int c = (int) Math.round(i*255.0/(x-1));
    System.out.printf("%d. #%02x%02x%02x\n", i, c, c, c);
}

Note that you have to multiply i with (255.0/(x-1)) then round it to an integer each time to get the closest gray for each step.

The above produces (which is what you've asked for after your edit):

0. #000000
1. #171717
2. #2e2e2e
3. #464646
4. #5d5d5d
5. #747474
6. #8b8b8b
7. #a2a2a2
8. #b9b9b9
9. #d1d1d1
10. #e8e8e8
11. #ffffff
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