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.

To the esteemed readers. I'm reasonably new in javascript and I have come across this problem. I'm trying to implement a modified version of this force directed graph:

http://mbostock.github.com/d3/ex/force.html

The json data is generated on the fly from a php script. The idea is to color all lines connecting to one specific node ( defined in a php script) in one color and all the others in shades of gray. I'm attempting to do it by matching the source variable in the json file to the variable from the php script and changing color when that is true like this:

  var link = svg.selectAll("line.link")
  .data(json.links)
  .enter().append("line")
  .attr("class", "link")
  .style("stroke-width", function(d) { return Math.sqrt(d.value);})
  .style("stroke-opacity", function(d) { return d.value/10;})
  .style("stroke", function(d) { 
  x = (tested == d.source) ?  return '#1f77b4' : '#707070';// <-- Attempt to change the color of the link when this is true.
  })

however this does not work. The script works fine but without the color change if I just do this

  var link = svg.selectAll("line.link")
  .data(json.links)
  .enter().append("line")
  .attr("class", "link")
  .style("stroke-width", function(d) { return Math.sqrt(d.value);})
  .style("stroke-opacity", function(d) { return d.value/10;})
  .style("stroke", function(d) { 
  return '#707070';
  })

I've been staring at this for days trying to figure out to get this done and I'm stuck. Any help would be greatly appreciated!!

Here is my complete script

<script type="text/javascript">

var width = 1200,
    height = 1200;

var color = d3.scale.category20();

var tested=<?php echo $tested_source;?>; //<-- the variable from php

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

d3.json("data.json", function(json) {

var force = d3.layout.force()
    .charge(-130)
    .linkDistance(function(d) { return 500-(50*d.value);})
    .size([width, height]);

  force
      .nodes(json.nodes)
      .links(json.links)
      .start();

  var link = svg.selectAll("line.link")
      .data(json.links)
      .enter().append("line")
      .attr("class", "link")
      .style("stroke-width", function(d) { return Math.sqrt(d.value);})
      .style("stroke-opacity", function(d) { return d.value/10;})
      .style("stroke", function(d) { 
      x = (tested == d.source) ?  return '#1f77b4' : '#707070'; //<-- Attempt to change the color of the link when this is true. But is is not working...  :(
      })


  var node = svg.selectAll("circle.node")
      .data(json.nodes)
    .enter().append("circle")
      .attr("class", "node")
      .attr("r", 12)
      .style("fill", function(d) { return color(d.group); })
      .call(force.drag);

  node.append("title")
      .text(function(d) { return d.name; });

  force.on("tick", function() {
    link.attr("x1", function(d) { return d.source.x; })
        .attr("y1", function(d) { return d.source.y; })
        .attr("x2", function(d) { return d.target.x; })
        .attr("y2", function(d) { return d.target.y; });

    node.attr("cx", function(d) { return d.x; })
        .attr("cy", function(d) { return d.y; });
  });
});

</script>
share|improve this question

1 Answer 1

up vote 8 down vote accepted

d.source is an object, you can't use == to determine if tested is a similar object. Have a look at this answer for more details on object equality.

If you want to test for a specific value of the d.source object described below, which I assume you want, you need to specify it.

Here is the source object architecture : (I'm using the example you pointed so the data comes from the miserables.json)

source: Object
    group: 4
    index: 75
    name: "Brujon"
    px: 865.6440689638284
    py: 751.3426708796574
    weight: 7
    x: 865.9584580575608
    y: 751.2658636251376

Now, here is the broken part in your code :

x = (tested == d.source) ?  return '#1f77b4' : '#707070';// <-- Attempt to change the color of the link when this is true.

It doesn't work because the return is misplaced. You're mixing ternary and return statements but you don't put them in the right order :

return test ? value_if_true : value_if_false;

if you want to assign the value to x anyway, you can do

x = test ? value_if_true : value_if_false;
return x;

You should do something like this :

return (tested == d.source) ? '#1f77b4' : '#707070';// <-- Attempt to change the color of the link when this is true.

That's for the general syntax, but this won't work as is You need to pick one of the value for your test for example :

return (tested === d.source.name) ? '#1f77b4' : '#707070';

Also, if the variable from PHP is a string you should do

var tested="<?php echo $tested_source;?>"; //<-- the variable from php

and in most cases you should use json_encode to map PHP variables into javascript ones.

As a final note, I would recommend using console functions coupled with Firebug's console panel if you're using Firefox, or the Chrome Developer Tool's console panel if you're using a Chromium based browser. It would allow you to debug your code more easily.


Working code

var width = 960,
  height = 500;

var color = d3.scale.category20();

var force = d3.layout.force().charge(-120).linkDistance(30).size([width, height]);

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

var tested = 20;

d3.json("miserables.json", function (json) {
  force.nodes(json.nodes).links(json.links).start();

  var link = svg.selectAll("line.link")
  .data(json.links)
  .enter()
  .append("line")
  .attr("class", "link")
  .style("stroke-width", function (d) {
    return Math.sqrt(d.value);
  }).style("stroke-opacity", function (d) {
    return d.value / 10;
  }).style("stroke", function (d) {
    return (tested == d.source.index) ? '#ee3322' : '#707070'; //'#1f77b4'
  });

  var node = svg.selectAll("circle.node")
  .data(json.nodes)
  .enter()
  .append("circle")
  .attr("class", "node")
  .attr("r", 5)
  .style("fill", function (d) {
    return color(d.group);
  }).call(force.drag);

  node.append("title").text(function (d) {
    return d.name;
  });

  force.on("tick", function () {
    link.attr("x1", function (d) {
      return d.source.x;
    }).attr("y1", function (d) {
      return d.source.y;
    }).attr("x2", function (d) {
      return d.target.x;
    }).attr("y2", function (d) {
      return d.target.y;
    });

    node.attr("cx", function (d) {
      return d.x;
    }).attr("cy", function (d) {
      return d.y;
    });
  });
});
share|improve this answer
    
Thanks! I'm a complete rookie when it comes to javascript. The suggestion does make the script work however it still does not change the color of the connecting lines. I think there might be a problem retrieving d.source from the json array. Help?? –  user1378824 May 7 '12 at 3:36
    
I've edited my answer with some code regarding the source object that you're testing against tested. I think the problem comes from there. –  Jeremie Parker May 7 '12 at 10:38
    
Thanks for the quick reply. Maybe I'm misunderstanding something but the object you are referring to is the node. I'm trying to change color of the connecting lines between the nodes. This value is defined in the "Links" in the miserables.json file. Am I misunderstanding something completely? –  user1378824 May 7 '12 at 14:22
    
.style("stroke", function(d) { console.dir(d.source); return (tested == d.source) ? '#1f77b4' : '#707070'; }) This will help you find why colors are not changing. Using firefox + firebug or chrome and the chrome developer tools. I don't think I can help you more than that. –  Jeremie Parker May 7 '12 at 16:12
    
and fyi the source object I printed above is exactly the result of the console.dir(d.source) in my previous comment –  Jeremie Parker May 7 '12 at 18:37

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.