41

Using javascript with or without Jquery, I need to a create a gradient of colours based on a start and finish color. Is this possible to do programmatically?

The end colour is only ever going to be darker shade of the start colour and it's for an unordered list which I have no control over the number of li items. I'm looking for a solution that allows me to pick a start and end color, convert the hex value into RGB so it can be manipulated in code. The starting RGB values gets incremented by a step value calculated based upon the number of items.

so if the list had 8 items then the it needs to increment the seperate Red Green Blue values in 8 steps to achieve the final colour. Is there a better way to do it and if so where can I find some sample code?

  • 1
    What you describe is the way I would do it: just do a linear interpolation between the start and end points for each of the three color components. – Pointy Jun 20 '10 at 18:37
  • 2
    Please note that there are different type of gradient: if you which to make a gradient that goes through the red -> yellow -> green -> blue, you'll probably need to get the HSL values rather than the RGB values. – vaab Nov 14 '12 at 8:46
73

I created a JS library, RainbowVis-JS to solve this general problem. You just have to set the number of items using setNumberRange and set the start and end colour using setSpectrum. Then you get the hex colour code with colourAt.

var numberOfItems = 8;
var rainbow = new Rainbow(); 
rainbow.setNumberRange(1, numberOfItems);
rainbow.setSpectrum('red', 'black');
var s = '';
for (var i = 1; i <= numberOfItems; i++) {
    var hexColour = rainbow.colourAt(i);
    s += '#' + hexColour + ', ';
}
document.write(s); 
// gives:
// #ff0000, #db0000, #b60000, #920000, #6d0000, #490000, #240000, #000000, 

You are welcome to look at the library's source code. :)

  • 3
    Perfect! That's exactly what I was looking for. Thank you – Maksym Kozlenko Sep 19 '12 at 7:41
  • This is a really useful script, nice work. – Bob-ob Nov 27 '12 at 12:49
  • 2
    Thanks, very helpful. Using it for upcoming elections in Iran. ;) – pp19dd May 15 '13 at 17:17
  • 3
    You library is really awesome! – DontVoteMeDown Sep 2 '13 at 17:56
  • 1
    Thanks Anomal :) Got the exact one which I searched for. – ABHILASH SB Feb 18 '14 at 13:02
27

Correct function to generate array of colors!

function hex (c) {
  var s = "0123456789abcdef";
  var i = parseInt (c);
  if (i == 0 || isNaN (c))
    return "00";
  i = Math.round (Math.min (Math.max (0, i), 255));
  return s.charAt ((i - i % 16) / 16) + s.charAt (i % 16);
}

/* Convert an RGB triplet to a hex string */
function convertToHex (rgb) {
  return hex(rgb[0]) + hex(rgb[1]) + hex(rgb[2]);
}

/* Remove '#' in color hex string */
function trim (s) { return (s.charAt(0) == '#') ? s.substring(1, 7) : s }

/* Convert a hex string to an RGB triplet */
function convertToRGB (hex) {
  var color = [];
  color[0] = parseInt ((trim(hex)).substring (0, 2), 16);
  color[1] = parseInt ((trim(hex)).substring (2, 4), 16);
  color[2] = parseInt ((trim(hex)).substring (4, 6), 16);
  return color;
}

function generateColor(colorStart,colorEnd,colorCount){

	// The beginning of your gradient
	var start = convertToRGB (colorStart);    

	// The end of your gradient
	var end   = convertToRGB (colorEnd);    

	// The number of colors to compute
	var len = colorCount;

	//Alpha blending amount
	var alpha = 0.0;

	var saida = [];
	
	for (i = 0; i < len; i++) {
		var c = [];
		alpha += (1.0/len);
		
		c[0] = start[0] * alpha + (1 - alpha) * end[0];
		c[1] = start[1] * alpha + (1 - alpha) * end[1];
		c[2] = start[2] * alpha + (1 - alpha) * end[2];

		saida.push(convertToHex (c));
		
	}
	
	return saida;
	
}

// Exemplo de como usar


var tmp = generateColor('#000000','#ff0ff0',10);

for (cor in tmp) {
  $('#result_show').append("<div style='padding:8px;color:#FFF;background-color:#"+tmp[cor]+"'>COLOR "+cor+"° - #"+tmp[cor]+"</div>")
 
}
	
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>
<div id="result_show"></div>

  • 1
    You're a modern day picasso. This is DOPE!!! – lol Nov 14 '15 at 6:21
  • exactly what I looked for. Thank you. – DolceVita Aug 25 '17 at 9:04
  • can you do this with multiple colors? i tried but cant get it stackoverflow.com/questions/51659031/… – FussinHussin Aug 3 '18 at 16:27
  • @FussinHussin yes I created another function that essentially uses two arrays generated from generateColor where I pass in a start, middle, and end color. Then combine the arrays and its a 3 color gradient. – Reed Aug 30 '18 at 15:17
21

Yes, absolutely.

I do this in Java, should be fairly simple to do in JavaScript too.

First, you'll need to break the colors up into RGB components.

Then calculate the differences between start and finish of the components.

Finally, calculate percentage difference and multiply by the start color of each component, then add it to the start color.

Assuming you can get the RGB values, this should do it:

var diffRed = endColor.red - startColor.red;
var diffGreen = endColor.green - startColor.green;
var diffBlue = endColor.blue - startColor.blue;

diffRed = (diffRed * percentFade) + startColor.red;
diffGreen = (diffGreen * percentFade) + startColor.green;
diffBlue = (diffBlue * percentFade) + startColor.blue;

The "percentFade" is a floating decimal, signifying how far to fade into the "endColor". 1 would be a full fade (thus creating the end color). 0 would be no fade (the starting color).

  • 1
    that second set of assignments is the set of new colors – alxndr Feb 16 '12 at 3:18
11

I use this function based on @desau answer:

 getGradientColor = function(start_color, end_color, percent) {
   // strip the leading # if it's there
   start_color = start_color.replace(/^\s*#|\s*$/g, '');
   end_color = end_color.replace(/^\s*#|\s*$/g, '');

   // convert 3 char codes --> 6, e.g. `E0F` --> `EE00FF`
   if(start_color.length == 3){
     start_color = start_color.replace(/(.)/g, '$1$1');
   }

   if(end_color.length == 3){
     end_color = end_color.replace(/(.)/g, '$1$1');
   }

   // get colors
   var start_red = parseInt(start_color.substr(0, 2), 16),
       start_green = parseInt(start_color.substr(2, 2), 16),
       start_blue = parseInt(start_color.substr(4, 2), 16);

   var end_red = parseInt(end_color.substr(0, 2), 16),
       end_green = parseInt(end_color.substr(2, 2), 16),
       end_blue = parseInt(end_color.substr(4, 2), 16);

   // calculate new color
   var diff_red = end_red - start_red;
   var diff_green = end_green - start_green;
   var diff_blue = end_blue - start_blue;

   diff_red = ( (diff_red * percent) + start_red ).toString(16).split('.')[0];
   diff_green = ( (diff_green * percent) + start_green ).toString(16).split('.')[0];
   diff_blue = ( (diff_blue * percent) + start_blue ).toString(16).split('.')[0];

   // ensure 2 digits by color
   if( diff_red.length == 1 ) diff_red = '0' + diff_red
   if( diff_green.length == 1 ) diff_green = '0' + diff_green
   if( diff_blue.length == 1 ) diff_blue = '0' + diff_blue

   return '#' + diff_red + diff_green + diff_blue;
 };

Example:

getGradientColor('#FF0000', '#00FF00', 0.4);
=> "#996600"
4

desau's answer is great. Here it is in javascript:

function hexToRgb(hex) {
  var result = /^#?([a-f\d]{2})([a-f\d]{2})([a-f\d]{2})$/i.exec(hex);
  return result ? {
    r: parseInt(result[1], 16),
    g: parseInt(result[2], 16),
    b: parseInt(result[3], 16)
  } : null;
}

function map(value, fromSource, toSource, fromTarget, toTarget) {
  return (value - fromSource) / (toSource - fromSource) * (toTarget - fromTarget) + fromTarget;
}

function getColour(startColour, endColour, min, max, value) {
  var startRGB = hexToRgb(startColour);
  var endRGB = hexToRgb(endColour);
  var percentFade = map(value, min, max, 0, 1);

  var diffRed = endRGB.r - startRGB.r;
  var diffGreen = endRGB.g - startRGB.g;
  var diffBlue = endRGB.b - startRGB.b;

  diffRed = (diffRed * percentFade) + startRGB.r;
  diffGreen = (diffGreen * percentFade) + startRGB.g;
  diffBlue = (diffBlue * percentFade) + startRGB.b;

  var result = "rgb(" + Math.round(diffRed) + ", " + Math.round(diffGreen) + ", " + Math.round(diffBlue) + ")";
  return result;
}

function changeBackgroundColour() {
  var count = 0;
  window.setInterval(function() {
    count = (count + 1) % 200;

    var newColour = getColour("#00FF00", "#FF0000", 0, 200, count);

    document.body.style.backgroundColor = newColour;
  }, 20);
}

changeBackgroundColour();

2

The xolor library has a gradient function. This will create an array with 8 colors in a gradient from a start color to an end color:

var gradientColors = []
var startColor = "rgb(100,200,50)", endColor = "green"
var start = xolor(startColor)
for(var n=0; n<8; n++) {
   gradientColors.push(start.gradient(endColor, n/8))
}  

See more on github: https://github.com/fresheneesz/xolor

1

Not such mighty but in most cases working and you do not have to include any other libraries except jQuery for the following code:

HTML:

<div id="colors"></div>

JavaScript:

function rainbow(value, s, l, max, min, start, end) {
    value = ((value - min) * (start - end) / max)+end;
    return 'hsl(' + value + ','+s+'%,'+l+'%)';
}

function createRainbowDiv(start,end){
    var gradient = $("<div>").css({display:"flex", "flex-direction":"row",height:"100%"});
    for (var i = start; ((i <= end) && (i >= start)) || ((i >= end) && (i <= start)); 
        i += (end-start) / Math.abs(end-start)){
            gradient.append($("<div>").css({float:"left","background-color":rainbow(i, 100,50, Math.max(start,end), Math.min(start,end), start,end),flex:1}));
    }

    return gradient;
}

$("#colors").append(createRainbowDiv(0,150));
$("#colors").css("width","100%").css("height","10px");

This should make an div that contains a rainbow. See http://jsfiddle.net/rootandy/54rV7/

1

I needed to create a large enough array of color options for an unknown set of dynamic elements, but I needed each element to increment their way through a beginning color and an ending color. This sort of follows the "percent fade" approach except I had a difficult time following that logic. This is how I approached it using inputs of two rgb color values and calculating the number of elements on the page.

Here is a link to a codepen that demonstrates the concept.

Below is a code snippet of the problem.

    <style>
      #test {
          width:200px;
          height:100px;
          border:solid 1px #000;
      }

      .test {
          width:49%;
          height:100px;
          border:solid 1px #000;
          display: inline-block;
      }
    </style>
</head>
<body>

<div id="test"></div>

<div class="test"></div>

<div class="test"></div>

<div class="test"></div>

<div class="test"></div>

<div class="test"></div>

<div class="test"></div>

<div class="test"></div>

<div class="test"></div>

<div class="test"></div>

<div class="test"></div>

    <script>

      var GColor = function(r,g,b) {
          r = (typeof r === 'undefined')?0:r;
          g = (typeof g === 'undefined')?0:g;
          b = (typeof b === 'undefined')?0:b;
          return {r:r, g:g, b:b};
      };


      // increases each channel by the difference of the two
      // divided by 255 (the number of colors stored in the range array)
      // but only stores a whole number
      // This should respect any rgb combinations
      // for start and end colors

      var createColorRange = function(c1) {
          var colorList = [], tmpColor, rr = 0, gg = 0, bb = 0;
          for (var i=0; i<255; i++) {
            tmpColor = new GColor();
              if (rExp >= 0) {

                tmpColor.r = Math.floor(c1.r - rr);
                rr += rAdditive;

              } else {

                tmpColor.r = Math.floor(c1.r + rr);
                rr += rAdditive;
              }

              if (gExp >= 0) {

                tmpColor.g = Math.floor(c1.g - gg);
                gg += gAdditive;

              } else {

                tmpColor.g = Math.floor(c1.g + gg);
                gg += gAdditive;
              }

              if (bExp >= 0) {

                tmpColor.b = Math.floor(c1.b - bb);
                bb += bAdditive;

              } else {

                tmpColor.b = Math.floor(c1.b + bb);
                bb += bAdditive;

              }

              console.log(tmpColor);


              colorList.push(tmpColor);
          }
          return colorList;
      };

      /* ==================
         Testing Code Below
         ================== */


      var firstColor = new GColor(255, 24, 0);
      var secondColor = new GColor(255, 182, 0);

      // Determine the difference
      var rExp = firstColor.r - secondColor.r;

      // Divide that difference by length of the array
      // you would like to create (255 in this case)
      var rAdditive = Math.abs(rExp)/255;

      var gExp = firstColor.g - secondColor.g;
      var gAdditive = Math.abs(gExp)/255;

      var bExp = firstColor.b - secondColor.b;
      var bAdditive = Math.abs(bExp)/255;

      var range = createColorRange(firstColor, secondColor);
      console.log(range);
      var pointer = 0;


      // This gently cycles through
      // all the colors on a single element
      function rotateColors() {
          var currentColor = range[pointer];
          document.getElementById("test").style.backgroundColor = "rgb("+currentColor.r+","+currentColor.g+","+currentColor.b+")";
          pointer++;
          if (pointer < range.length) window.setTimeout(rotateColors, 5);
      }

       rotateColors();

      // say I have 5 elements
      // so I need 5 colors
      // I already have my first and last colors
      // but I need to locate the colors between
      // my start color and my end color
      // inside of this range
      // so I divide the range's length by the
      // number of colors I need
      // and I store the index values of the middle values

      // those index numbers will then act as my keys to retrieve those values
      // and apply them to my element

      var myColors = {};
      var objects = document.querySelectorAll('.test');
        myColors.num = objects.length;


      var determineColors = function(numOfColors, colorArray) {
        var colors = numOfColors;

        var cRange = colorArray;
        var distance = Math.floor(cRange.length/colors);
        var object = document.querySelectorAll('.test');

        var j = 0;
        for (var i = 0; i < 255; i += distance) {

          if ( (i === (distance*colors)) ) {
            object[j].style.backgroundColor = "rgb(" + range[255].r + ", " + range[255].g + ", " + range[255].b + ")";

            j = 0;
            // console.log(range[i]);
          } else {

                // Apply to color to the element
                 object[j].style.backgroundColor = "rgb(" + range[i].r + ", " + range[i].g + ", " + range[i].b + ")";


                  // Have each element bleed into the next with a gradient
               // object[j].style.background = "linear-gradient( 90deg, rgb(" + range[i].r + ", " + range[i].g + ", " + range[i].b + "), rgb(" + range[i+distance].r + ", " + range[i+distance].g + ", " + range[i+distance].b + "))";

            j++;
          }

        }
      };


      setTimeout( determineColors(myColors.num, range), 2000);

    </script>
</body>
0

You can retrieve the list of elements. I'm not familiar with jQuery, but prototypejs has Element.childElements() which will return an array. Once you know the length of the array, you can determine how much to change the pixel components for each step. Some of the following code I haven't tested out in the form I'm presenting it in, but it should hopefully give you an idea.

function hex (c) {
  var s = "0123456789abcdef";
  var i = parseInt (c);
  if (i == 0 || isNaN (c))
    return "00";
  i = Math.round (Math.min (Math.max (0, i), 255));
  return s.charAt ((i - i % 16) / 16) + s.charAt (i % 16);
}

/* Convert an RGB triplet to a hex string */
function convertToHex (rgb) {
  return hex(rgb[0]) + hex(rgb[1]) + hex(rgb[2]);
}

/* Remove '#' in color hex string */
function trim (s) { return (s.charAt(0) == '#') ? s.substring(1, 7) : s }

/* Convert a hex string to an RGB triplet */
function convertToRGB (hex) {
  var color[];
  color[0] = parseInt ((trim(hex)).substring (0, 2), 16);
  color[1] = parseInt ((trim(hex)).substring (2, 4), 16);
  color[2] = parseInt ((trim(hex)).substring (4, 6), 16);
}


/* The start of your code. */
var start = convertToRGB ('#000000');    /* The beginning of your gradient */
var end   = convertToRGB ('#ffffff');    /* The end of your gradient */
var arr = $('.gradientList').childElements();
var len = arr.length();                  /* The number of colors to compute */
var alpha = 0.5;                         /* Alpha blending amount */

for (i = 0; i < len; i++) {
    var c = [];

    c[0] = start[0] * alpha + (1 - alpha) * end[0];
    c[1] = start[1] * alpha + (1 - alpha) * end[1];
    c[2] = start[2] * alpha + (1 - alpha) * end[2];

    /* Set the background color of this element */
    arr[i].setStyle ({ 'background-color': convertToHex (c) });
}
  • 2
    Consider replacing your hex function with simply <num>.toString(16). – haylem Oct 8 '10 at 17:10
  • 1
    There are multiple errors in this. For example convertToRGB does not actually return anything :) – fuzzy-waffle Oct 26 '11 at 22:57

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