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I'm drawing a line graph out of little circle bullets. However, the data has holes in it, which are represented by null's in my array. Naturally, wherever there's no data, there shouldn't be circles. But d3's append() method adds them anyway. How do I avoid this?

Here's a mockup reproducing my problem exactly:

I'm interested in NOT having that series of circles that lie on the X axis of my graph, since those are all nulls.

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4 Answers 4

up vote 15 down vote accepted

One option is to represent your data differently, so that you aren't dependent on the index to compute the x-coordinate. For example, if you represented each datum as an object (e.g., {x: 0, y: 0.2840042}) then you could compute the x-coordinate as x(d.x) rather than x(i).

Another option would be to set the radius to zero when the value is null, so the circles are hidden: circle.attr("r", function(d) { return d == null ? 0 : 3; }). Or, you could hide the circles:"display", function(d) { return d == null ? "none" : null; }).

You could also remove the null elements after appending them: circle.filter(function(d) { return d == null; }).remove(). That would work for the initial creation, but I wouldn't recommend it because the index would change if you reselected the elements later.

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Aside, regarding the zero radius approach - with my large but sparse array, I get much better performance when I create and use a new filtered array via…. I realize @meetamit wishes to maintain the original indices but thought I'd point out that there may be undesirably performance implications. Maybe d3 can address this by short circuiting when r <= 0 or implement the 'defined' function for circle? – Ken Lin Sep 25 '14 at 21:40
I used the circle.filter(function(d) { return d == null; }).remove() method for my issue and it worked beautifully! – Climbs_lika_Spyder Jul 23 at 13:02

Try this pattern, which can either delete or hide your circles.

// Step 1: hides all circles which are "null"
    .attr("visibility", function(d,i){
        if(yourFunction(d) == null) return "hidden";

// Step 2: optional, deletes all circles which are "hidden"
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The simplest option is to filter the nulls out of the data being passed in to .data(…), augmenting the data to maintain the index:

    .map(function(v, idx) { return v == null? null : { idx: idx, value: v })
    .filter(function(v) { return v != null })
    .attr('fill', '#c00')
    .attr('r', 3)
    .attr('cx', function(d) { return d.idx * 10 }) // or whatever
    .attr('cy', function(d) { return d.value.y }) // or whatever

Note that you can also follow this pattern individual sub-elements, even if they aren't naturally lists. For example, consider a situation where you want to conditionally add a second circle:

var circles = [
    { color: 'red', cx: 30, cy: 30, subCircleColor: 'blue' },
    { color: 'blue', cx: 60, cy: 60, subCircleColor: 'green' },
    { color: 'green', cx: 90, cy: 90 },

// Create a group which will hold the circles, since the result will
// be:
//    <g class="circles">
//      <circle color="{{ color }}" ... />
//      <circle class="sub-circle" color="{{ subCircleColor }}" ... />
//    </g>
var circlesGroups = svg.selectAll("g.circles")
        .append("g").attr({"class": "circles"})

// Add the first circle to the group
        "fill": function(d) { return d.color },
        "r": 20,
        "cx": function(d) { return },
        "cy": function(d) { return },

// If there is a subCircleColor, add the second circle to the group
    .data(function(d) {
        if (d.subCircleColor)
            return [d];
        return [];
            "class": "sub-circle",
            "fill": function(d) { return d.subCircleColor; },
            "r": 10,
            "cx": function(d) { return },
            "cy": function(d) { return },


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Just filter it.

values.filter(function(el){return el !== null;})
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Thanks, but that just removes those elements from the array, which affects the index, i that's passed into my attr() setting functions. I need the index to remain unchanged, because it's what I use to calculate x positions. – meetamit May 31 '12 at 3:11
This was actually my problem and I felt silly not even thinking about just filtering out. I guess I was so caught up in "How does d3 do this?" that I didn't think :) – freeall Nov 6 at 9:18

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