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I'm trying to make a scatter plot with two sets of data from two tsv files. However, each one shares the x-axis with single scale. There are two y-axis each with their own scale. The graph The graph I have right now will help visually.

Problem is, the 2nd data set (in orange) only plots partially as seen as a smudge at about 15,000 on the a-axis. it should really be a much larger line. Also, when I run this, sometimes the 2nd data set renders and the first does now. Not sure why this is happening..

Here are the two (likely) relevant blocks of code:

    //1st data set
    d3.tsv("datatest4.tsv", function(error, tsv1) {

        tsv1.forEach(function(d) {
            d.altit = +d.altit;
            d.tmp = +d.tmp;

        });

        x.domain(d3.extent(tsv1, function(d) { return d.altit; })).nice();
        y.domain(d3.extent(tsv1, function(d) { return d.tmp; })).nice();

        svg.append("g")
            .attr("class", "x axis")
            .attr("transform", "translate(0," + height + ")")
            .call(xAxis)
            .append("text")
            .attr("class", "label")
            .attr("x", width)
            .attr("y", -6)
            .style("text-anchor", "end")
            .text("Altitude (m)");

        svg.append("g")
            .attr("class", "y axis axis1")
            .call(yAxis)
            .append("text")
            .attr("class", "label")
            .attr("transform", "rotate(-90)")
            .attr("y", 6)
            .attr("dy", ".71em")
            .style("text-anchor", "end");

        svg.selectAll(".dot")
            .data(tsv1)
            .enter().append("circle")
            .attr("class", "dot")
            .attr("r", 1)
            .attr("cx", function(d) { return x(d.altit); })
            .attr("cy", function(d) { return y(d.tmp); })
            .style("fill","steelblue");

    });

and

    //2nd data set
    d3.tsv("datatest2.tsv", function(error, tsv2) {

        tsv2.forEach(function(dd) {
            dd.alti = +dd.alti;
            dd.pressure = +dd.pressure;
        });

        x2.domain(d3.extent(tsv2, function(dd) { return dd.alti; })).nice();
        y2.domain(d3.extent(tsv2, function(dd) { return dd.pressure; })).nice();

        svg.append("g")
            .attr("class", "x axis")
            .attr("transform", "translate(0," + height + ")")
            .call(xAxis2)
            .attr("x", width)
            .attr("y", -6)
            .text("Altitude (m)");

        svg.append("g")
            .attr("class", "y axis axis2")
            .call(yAxis2)
            .append("text")
            .attr("class", "label")
            .attr("transform", "rotate(-90)")
            .attr("y", 6)
            .attr("dy", ".71em")
            .style("text-anchor", "end");

        svg.selectAll(".dot")
            .data(tsv2)
            .enter().append("circle")
            .attr("class", "dot")
            .attr("r", 1)
            .attr("cx", function(dd) { return x2(dd.alti); })
            .attr("cy", function(dd) { return y2(dd.pressure); })
            .style("fill","orange");    

    });
share|improve this question

1 Answer 1

up vote 18 down vote accepted

The problem is that you're using the same selector, svg.selectAll(".dot"), for each dataset .data(tsv1) and .data(tsv2).

D3 thinks that the 2nd set is supposed to replace the first. You can fix it by assigning a unique class to each type of dot.

    svg.selectAll(".blue.dot")// Select specifically blue dots
        .data(tsv1)
        .enter().append("circle")
        .attr("class", "blue dot")// Assign two classes
        ...

    svg.selectAll(".orange.dot")
        .data(tsv2)
        .enter().append("circle")
        .attr("class", "orange dot")
        ...
share|improve this answer
    
Thanks - totally noob move. I thought .dot was something defined by d3. Live and learn. –  Todd Sherman Dec 5 '12 at 12:13
    
This answer should be accepted. –  countfloortiles Sep 11 '13 at 3:43
    
Thanks a lot!!! This answer should be accepted. –  Sumod Sep 17 '13 at 10:54
    
:) Thank's countfloortiles and@Sumod for your vote of confidence, but it appears that @ToddSherman hasn't been back on this site roughly since the day he posted this question. I think we lost him :) –  meetamit Sep 17 '13 at 18:09
    
Sorry for the delay :) –  Todd Sherman Oct 23 '13 at 18:33

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