33

How can I make a basic connected graph (two nodes and a link connecting them for example) that doesn't use a force() layout? I just want to be able to drag a node and have the link adjust to stay connected as a node is being dragged. I dont want any of the charge or positioning capabilities of force(). Essentially I want every node to be "sticky". Nodes will only move when being dragged.

But is there a simple way to do this? Every example I have seen is built around a force directed graph.

I've looked at this example, http://bl.ocks.org/mbostock/3750558 , but it starts with a force directed graph then makes the nodes sticky. This approach seems backwards for what I want.

Is there a basic example somewhere?

53

I have made a small code snippet. Hope this helpful.

var data = {
   nodes: [{
     name: "A",
     x: 200,
     y: 150
   }, {
     name: "B",
     x: 140,
     y: 300
   }, {
     name: "C",
     x: 300,
     y: 300
   }, {
     name: "D",
     x: 300,
     y: 180
   }],
   links: [{
     source: 0,
     target: 1
   }, {
     source: 1,
     target: 2
   }, {
     source: 2,
     target: 3
   }, ]
 };

 var c10 = d3.scale.category10();
 var svg = d3.select("body")
   .append("svg")
   .attr("width", 1200)
   .attr("height", 800);

 var drag = d3.behavior.drag()
   .on("drag", function(d, i) {
     d.x += d3.event.dx
     d.y += d3.event.dy
     d3.select(this).attr("cx", d.x).attr("cy", d.y);
     links.each(function(l, li) {
       if (l.source == i) {
         d3.select(this).attr("x1", d.x).attr("y1", d.y);
       } else if (l.target == i) {
         d3.select(this).attr("x2", d.x).attr("y2", d.y);
       }
     });
   });

 var links = svg.selectAll("link")
   .data(data.links)
   .enter()
   .append("line")
   .attr("class", "link")
   .attr("x1", function(l) {
     var sourceNode = data.nodes.filter(function(d, i) {
       return i == l.source
     })[0];
     d3.select(this).attr("y1", sourceNode.y);
     return sourceNode.x
   })
   .attr("x2", function(l) {
     var targetNode = data.nodes.filter(function(d, i) {
       return i == l.target
     })[0];
     d3.select(this).attr("y2", targetNode.y);
     return targetNode.x
   })
   .attr("fill", "none")
   .attr("stroke", "white");

 var nodes = svg.selectAll("node")
   .data(data.nodes)
   .enter()
   .append("circle")
   .attr("class", "node")
   .attr("cx", function(d) {
     return d.x
   })
   .attr("cy", function(d) {
     return d.y
   })
   .attr("r", 15)
   .attr("fill", function(d, i) {
     return c10(i);
   })
   .call(drag);
svg {
    background-color: grey;
}
<script src="https://d3js.org/d3.v3.min.js"></script>

2
  • 7
    You are a wizard! Oct 14 '16 at 5:50
  • Will this work without manually specifying x and y coordinates and letting d3 figure it out ? (I am trying to achieve the same with large graphs and I am tying to avoid complex graph layout algorithms)
    – amipro
    Mar 5 '20 at 22:13
4

Gilsha has a great answer, but note that newer versions of d3 no longer use the behavior module.

Instead of this:

var drag = d3.behavior.drag()
   .on("drag", function(d, i) {
     d.x += d3.event.dx
     d.y += d3.event.dy
     d3.select(this).attr("cx", d.x).attr("cy", d.y);
     links.each(function(l, li) {
       if (l.source == i) {
         d3.select(this).attr("x1", d.x).attr("y1", d.y);
       } else if (l.target == i) {
         d3.select(this).attr("x2", d.x).attr("y2", d.y);
       }
     });
   });

Simply change d3.behavior.drag() to d3.drag()

var drag = d3.drag()
   .on("drag", function(d, i) {
     d.x += d3.event.dx
     d.y += d3.event.dy
     d3.select(this).attr("cx", d.x).attr("cy", d.y);
     links.each(function(l, li) {
       if (l.source == i) {
         d3.select(this).attr("x1", d.x).attr("y1", d.y);
       } else if (l.target == i) {
         d3.select(this).attr("x2", d.x).attr("y2", d.y);
       }
     });
   });

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.