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 have a simple graph with x and y axes. I don't want the drawing area I draw within to overlap the axes.

I'm using d3 to create my chart but the clip-path does not work:

http://jsfiddle.net/EqLBJ/

var margin = {top: 19.5, right: 19.5, bottom: 19.5, left: 39.5},
    width = 960 - margin.right,
    height = 500 - margin.top - margin.bottom;

var xScale = d3.scale.linear().
    domain([xMin, xMax]). // your data minimum and maximum
    range([0, width]); // the pixels to map to, e.g., the width of the diagram.

var yScale = d3.scale.linear().
    domain([yMax, yMin]). 
    range([0, height]); 

var xAxis = d3.svg.axis().orient("bottom").scale(xScale).ticks(10, d3.format(",d")),
    yAxis = d3.svg.axis().orient("left").scale(yScale);


var chart = d3.select("#chart").append("svg")
    .attr("class", "chart")
    .attr("width", width + margin.left + margin.right)
    .attr("height", height + margin.top + margin.bottom)
    .attr("pointer-events", "all")
    .append("g")
    .attr("transform", "translate(" + margin.left + "," + margin.top + ")")
    .call(d3.behavior.zoom().scaleExtent([0.2, 5]).on("zoom", redraw));


var rect = chart.append('svg:rect')
    .attr('width', width)
    .attr('height', height)
    .attr('fill', 'white');


var line = d3.svg.line()
        .interpolate("basis")
        .x(function(d, i) { return xScale(d.time); })
        .y(function(d) { return yScale(d.value); });

var clip = chart.append("svg:clipPath")
    .attr("id", "clip");

clip.append("svg:rect")
    .attr("id", "clip-rect")
    .attr("width", width)
    .attr("height", height);
    // .attr("fill", "white");

var path = chart.append("svg:path")
    .attr("clip-path", "url(#clip-rect)")
    .data([data])
    .attr("class", "line")
    .attr("fill", "none")
    .attr("stroke", "maroon")
    .attr("stroke-width", 2)
    .attr("d", line);

// x-axis label
chart.append("text")
    .attr("class", "x label")
    .attr("text-anchor", "end")
    .attr("x", width)
    .attr("y", height - 6)
    .text("time");

// y-axis label
chart.append("text")
    .attr("class", "y label")
    .attr("text-anchor", "end")
    .attr("y", 6)
    .attr("dy", ".75em")
    .attr("transform", "rotate(-90)")
    .text("value");

// x-axis
var xaxis = chart.append("g")
    .attr("class", "x axis")
    .attr("transform", "translate(0," + height + ")")
    .call(xAxis);

// y-axis
var yaxis = chart.append("g")
    .attr("class", "y axis")
    .call(yAxis);



function redraw() 
{
    console.log("here", d3.event.translate, d3.event.scale);

    path.transition()       
        .ease("linear")
        .attr("transform", "translate(" + d3.event.translate + ")" + " scale(" + d3.event.scale + ")");

}
share|improve this question

1 Answer 1

up vote 16 down vote accepted

You want something like this:

http://jsfiddle.net/dsummersl/EqLBJ/1/

Specifically:

  • use 'clip' instead of 'clip-rect'
  • put the content you wish to clip inside a 'g' element, and specify the 'clip-path' attribute and the transforms for the 'g' element.
share|improve this answer
    
A clip-path cannot legally point to a <g> element per w3.org/TR/SVG/masking.html#EstablishingANewClippingPath –  Robert Longson May 7 '12 at 21:04
2  
I'm not sure what you're referring to. According to the definition of the clip-path attribute, it is applicable to container elements, which the <g> tag happens to be a member of. See: w3.org/TR/SVG/masking.html#ClipPathProperty -- besides which, my example works so... –  dsummersl May 8 '12 at 2:42
1  
I was unsuccessfully trying to make clear that a while a clip-path attribute can exist on a <g> element, the xlink:href of a clip-path cannot point to a <g> element. –  Robert Longson May 8 '12 at 8:24
    
Ah...you mean a 'clip-path' must reference a 'clipPath', otherwise it is ignored? –  dsummersl May 8 '12 at 11:55
    
Yes, although I stated it rather badly, and the clipPath can't contain <g> elements. –  Robert Longson May 8 '12 at 14:01

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.