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.

I try to use d3.scale.category.20b() to generate a color scale, problem is whatever number of the list I ask for, it always returns first element of the list.

var color = d3.scale.category20b();
console.log(color(X));

OR

console.log(d3.scale.category20b()(X);

No matter what X is, it always logs #393b79 which is the first elements, according to the d3 API

share|improve this question
    
Hmm, looks like a bug to me. You should file an issue on the D3 website. –  Lars Kotthoff Jul 10 '13 at 11:18
    
This might sound really stupid, but what is X in your example? ie, if you console.log(X) what does it return? For instance, if you happened to initialize X somewhere, hoping to later update its value and use it in your function up there, something might be wrong with updating the value... hence it systematically displaying the same thing. –  Joum Jul 10 '13 at 13:24
    
@Joum I used X to represent numbers between 1 and 20. Should have said so. –  Aleks G Jul 11 '13 at 7:42

3 Answers 3

up vote 4 down vote accepted

This can happen because categorical scales in d3 append to the domain as new data comes in. If every enter() creates a new categorical scale, the domain of the categorical scale remains the same.

As an example, please consider this jFiddle: http://jsfiddle.net/seldomawake/MV55j/1/ Here, we see that as data enters, we append to a categorical scale in the global namespace, $colorScale (specific code below).

function redraw(theData) {
    var localColorScale = d3.scale.category20c(); //< NOT USED HERE
    var svg = d3.select("svg");
    var circles = svg.selectAll("circle")
                     .data(theData).enter().append("circle")
     var circleAttributes = circles.attr("cx", getRandomInt(50, 450))
                                   .attr("cy", getRandomInt(50, 450))
                                   .attr("r", function (d) { return d.value; })
                                   .style("fill", function () { return $colorScale(getRandomInt(0, 19)); });
}

However, if we were to replace return $colorScale(getRandomInt(0, 19)) with return localColorScale(getRandomInt(0, 19)), we would no longer have the data append to the range of the categorical scale, and which would result in a single-color output.

Edit: fixing URL to jsfiddle.

share|improve this answer
    
This is the correct answer –  joe_coolish Sep 11 at 18:55

At first I thought this would have been a bug with D3.js so created this jsfiddle which works fine.

var data = d3.range(0,20);
var color = d3.scale.category20b();

d3.select('.target').selectAll('div')
    .data(data)
    .enter()
        .append('div')
        .text(function(d){return color(d);})
        .attr('style', function(d){return "background-color:"+ color(d) + ";" ;})

It had been raised by others about version of D3 you are using. This looks unlikely to be the cause of your issue as the code in question has hardly been touched. If the code has not been touched much and others have no issue it raises the question of browser compatibly. I sent my jsfiddle to browsershots and did not see any browser output a single block of color instead of the expected pretty color stripes.

After all this it seams there is not enough information to properly answer your problem. I suggest you have a look to see if X is really changing by making a small change to the code console.log({'color':color(X), 'x':X}).

enter image description here

share|improve this answer
    
Thanks for answering. –  Aleks G Jul 11 '13 at 7:44
    
khan has the right explanation for this behavior. –  lobo_tuerto Jul 30 at 13:03

Which version of D3 are you using? I wrote a jsFiddle (D3 3.0.4), the colors are shown normally:

var color = d3.scale.category20b();

var svg = d3.select('#chart').append('svg')
    .attr('width', 200)
    .attr('height', 100);

svg.append('rect')
    .attr('width', 100)
    .attr('height', 100)
    .attr('fill', color(0));

svg.append('rect')
    .attr('x', 100)
    .attr('width', 100)
    .attr('height', 100)
    .attr('fill', color(1));

The result is:

Distinct colors

share|improve this answer
2  
Dam, you beat me. Mine also seems to work correctly jsfiddle.net/8CaCn –  Christopher Hackett Jul 10 '13 at 13:21
    
Same here... Didn't fiddle, tho... My local one works fine... –  Joum Jul 10 '13 at 13:22
    
Your fiddle is way better :) –  Pablo Navarro Jul 10 '13 at 13:24

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.