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I need to make a FadeOut method (similar to jQuery) using D3.js. What I need to do is to set the opacity to 0 using transition().

d3.select("#myid").transition().style("opacity", "0");

The problem is that I need a callback to realize when the transition has finished. How can I implement a callback?

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up vote 87 down vote accepted

You want to listen for the "end" event of the transition.

d3.select("#myid").transition().style("opacity","0").each("end", myCallback);
  • This demo uses the "end" event to chain many transitions in order.
  • The donut example that ships with D3 also uses this to chain together multiple transitions.
  • Here's my own demo that changes the style of elements at the start and end of the transition.

From the documentation for transition.each([type],listener):

If type is specified, adds a listener for transition events, supporting both "start" and "end" events. The listener will be invoked for each individual element in the transition, even if the transition has a constant delay and duration. The start event can be used to trigger an instantaneous change as each element starts to transition. The end event can be used to initiate multi-stage transitions by selecting the current element, this, and deriving a new transition. Any transitions created during the end event will inherit the current transition ID, and thus will not override a newer transition that was previously scheduled.

See this forum thread on the topic for more details.

Finally, note that if you just want to remove the elements after they have faded out (after the transition has finished), you can use transition.remove().

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4  
Thank you very much. This is a GREAT GREAT library, but it is not so easy to find the important information in the documentation. – Tony May 21 '12 at 20:41
7  
So, my problem with this way of continuing from the end of the transition is that it runs your function N times (for N items in the set of transitioning elements). This is far from ideal sometimes. – Steven Lu Oct 3 '13 at 5:44
1  
I have the same issue. Wish it would run the function once after the last remove – canyon289 Jun 16 '15 at 1:38

Mike Bostock's solution with a small change:

  function endall(transition, callback) { 
    if (transition.size() === 0) { callback() }
    var n = 0; 
    transition 
        .each(function() { ++n; }) 
        .each("end", function() { if (!--n) callback.apply(this, arguments); }); 
  } 

  d3.selectAll("g").transition().call(endall, function() { console.log("all done") });
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3  
If the selection contains zero elements, the callback will never fire. One way to fix this is if (transition.size() === 0) { callback(); } – hughes Mar 24 '15 at 19:12
    
hughes, thanks! Edited. – kashesandr Mar 26 '15 at 9:23

Actually there's one more way to do this using timers.

var timer = null,
    timerFunc = function () {
      doSomethingAfterTransitionEnds();
    };

transition
  .each("end", function() {
    clearTimeout(timer);
    timer = setTimeout(timerFunc, 100);
  });
share|improve this answer

A slightly different approach that works also when there are many transitions with many elements each running simultaneously:

var transitions = 0;

d3.select("#myid").transition().style("opacity","0").each( "start", function() {
        transitions++;
    }).each( "end", function() {
        if( --transitions === 0 ) {
            callbackWhenAllIsDone();
        }
    });
share|improve this answer
    
Thanks, that worked nicely for me. I was trying to customize the x-axis label orientation automatically after loading a discrete bar chart. The customization can't take effect before load, and this provided an event hook through which I could do this. – whitestryder Sep 17 '15 at 16:51

I solved a similar problem by setting a duration on transitions using a variable. Then I used setTimeout() to call the next function. In my case, I wanted a slight overlap between the transition and the next call, as you'll see in my example:

var transitionDuration = 400;

selectedItems.transition().duration(transitionDuration).style("opacity", .5);

setTimeout(function () {
  sortControl.forceSort();
}, (transitionDuration * 0.75)); 
share|improve this answer

The following is another version of Mike Bostock's solution and inspired by @hughes' comment to @kashesandr's answer. It makes a single callback upon transition's end.

Given a drop function...

function drop(n, args, callback) {
    for (var i = 0; i < args.length - n; ++i) args[i] = args[i + n];
    args.length = args.length - n;
    callback.apply(this, args);
}

... we can extend d3 like so:

d3.transition.prototype.end = function(callback, delayIfEmpty) {
    var f = callback, 
        delay = delayIfEmpty,
        transition = this;

    drop(2, arguments, function() {
        var args = arguments;
        if (!transition.size() && (delay || delay === 0)) { // if empty
            d3.timer(function() {
                f.apply(transition, args);
                return true;
            }, typeof(delay) === "number" ? delay : 0);
        } else {                                            // else Mike Bostock's routine
            var n = 0; 
            transition.each(function() { ++n; }) 
                .each("end", function() { 
                    if (!--n) f.apply(transition, args); 
                });
        }
    });

    return transition;
}

As a JSFiddle.

Use transition.end(callback[, delayIfEmpty[, arguments...]]):

transition.end(function() {
    console.log("all done");
});

... or with an optional delay if transition is empty:

transition.end(function() {
    console.log("all done");
}, 1000);

... or with optional callback arguments:

transition.end(function(x) {
    console.log("all done " + x);
}, 1000, "with callback arguments");

d3.transition.end will apply the passed callback even with an empty transition if the number of milliseconds is specified or if the second argument is truthy. This will also forward any additional arguments to the callback (and only those arguments). Importantly, this will not by default apply the callback if transition is empty, which is probably a safer assumption in such a case.

share|improve this answer
    
That's nice, I like it. – kashesandr Jun 18 '15 at 7:17
    
Thanks @kashesandr. This was indeed inspired by your answer to begin with! – milos Jun 18 '15 at 13:40
    
don't really think we need a drop function or passing of arguments, since the same effect can be achieved by a wrapper function or by utilizing bind. Otherwise I think it's a great solution +1 – Ahmed Masud Nov 17 '15 at 17:28

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