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.

Final Edit: The wall of text below can be summed up by simply asking "can I specify the speed of animations using jQuery's animate()? All that is provided is duration."

~~

jQuery's animate() seems to implement easing despite my use of "linear". How can I get the two boxes to stay together until the first finishes @ 250px? The second animates much faster because it has a longer distance to go.

<script type="text/javascript" src="http://ajax.googleapis.com/ajax/libs/jquery/1.4/jquery.min.js"></script>
<script type="text/javascript">
    $(function()
    {
        $('#a').animate({left: '250px'}, 1000, 'linear');
        $('#b').animate({left: '500px'}, 1000, 'linear');
    });
</script>

<div id="a" style="background-color: red; position: relative; width: 50px; height: 50px;"></div>
<br/><br/>
<div id="b" style="background-color: red; position: relative;width: 50px; height: 50px;"></div>

Alternatively is there a jQuery carousel plugin that does this (mouse movement based on where you're mousing) so I don't have to rewrite it? I spent about 20 minutes looking for one on Google but couldn't come up with anything I liked.

ETA: The example I provided is very simple, but the issue as I found it is applied to a more complex code base. (1) Go here. (2) Put mouse on C. Viper, see the speed. (3) Put mouse on Ryu, but before it finishes, move your mouse to the middle of the DIV (so it stops). (4) Put your mouse back on the left side and see how utterly slow it moves.

Calculating the differences in speed and distance seems insurmountable here. All I'm trying to do is recreate a lovely effect I saw a site use today (this site). But it's Mootools, and I'm in jQuery. =[

share|improve this question
    
link (1) is not working –  Teetrinker Jul 2 '13 at 15:55
add comment

4 Answers

up vote 15 down vote accepted

For the updated question:
First, here's a working demo with the behavior you want. What we're doing here is adjusting the speed based on the amount needed to move, because speed isn't an accurate description, it's the duration, moving a shorter distance over the same duration means a slower move, so we need to scale the duration with the distance we need to move. For moving backwards, it looks like this:

var oldLeft = ul.offset().left;
ul.animate({left: 0}, -oldLeft * speed, 'linear');

Since the <ul> scrolls with a negative left position, we need to move the inverse of that many pixels to get back to the beginning, so we're using -oldLeft (it's current left position).

For the forward direction, a very similar approach:

var newLeft = divWidth - ulWidth,
    oldLeft = ul.offset().left;
ul.animate({left: newLeft + 'px'}, (-newLeft + oldLeft) * speed, 'linear');

This gets the new left property, the end being the width of the <ul> minus the width of the <div> it's in. Then we subtract (it's negative so add) that from the current left position (also negative, so reverse it).

This approach gives your speed variable a whole new meaning, it now means "milliseconds per pixel" rather than the duration it did before, which seems to be what you're after. The other optimization is using that cached <ul> selector you already had, making things a bit faster/cleaner overall.


For the original question:
Keep it simple, just half the time for half the distance, like this:

$(function() {
    $('#a').animate({left: '250px'}, 500, 'linear');
    $('#b').animate({left: '500px'}, 1000, 'linear');
});

You can try a demo here

share|improve this answer
    
Seriously, that's required? The example I provided was extremely simple, so this suggestion is fine.. But I'm having this problem on a more complex set of code, but trying to add this calculation to that code would be more complex than what I've already written. =[ –  Langdon Jul 7 '10 at 1:55
    
@Langdon - I'm sure we can come up with some simple solution to the problem, what's different about the actual code? Can you animate both with one animation, then in the complete callback, kick off the second leg that only involves a subset of the elements, like #b in this case? Something like this: jsfiddle.net/BVN7n/2 –  Nick Craver Jul 7 '10 at 1:56
    
I updated the the question to show my true intent. A simple example was easier to get my point across. Thanks for the effort so far. –  Langdon Jul 7 '10 at 2:01
    
Nick - Sorry, deleted my comment after I saw you left a comment for Reigel. –  user113716 Jul 7 '10 at 2:08
1  
@Langdon - Here's a version that does what you need, adjusting the speed to match the number of pixels to move: jsfiddle.net/SF6yc –  Nick Craver Jul 7 '10 at 2:24
show 1 more comment

I made a plugin that does exactly what you want. You can use Supremation to specify the speed of the animation as opposed to the duration.

share|improve this answer
    
Wow, this is exactly what I was looking for. I can't upvote this enough. I was considering writing this plugin myself, thanks for saving me the time. :) –  Scott Greenfield Nov 17 '11 at 18:46
    
Link's dead.... –  Mark Aug 31 '12 at 21:30
2  
Here's the project on GitHub (github.com/lukeshumard/supremation) since I forgot to renew the domain. Oops. –  lukeshumard Sep 3 '12 at 17:20
add comment

linear only specifies that the animation should be done in linear increments and not speed up or slow down as it finishes. If you want the two animations to be the same speed, just double the time it takes for the animation that is twice the distance:

$('#a').animate({left: '250px'}, 1000, 'linear');
$('#b').animate({left: '500px'}, 2000, 'linear');
share|improve this answer
    
I updated my question showing what I'm really doing. Calculating the difference in speed/pixels seems impossible for my real code. –  Langdon Jul 7 '10 at 2:02
add comment

something like this??

demo

$('#a,#b').animate({left: '250px'}, 1000, 'linear',
    function(){
       $('#b').animate({left: '500px'}, 1000, 'linear');   
    }
);
share|improve this answer
1  
This would start the animation for the second after the first finishes...I believe the OP wants them to stay together until the first finishes, then #b to continue animating the remaining 250px. –  Nick Craver Jul 7 '10 at 1:55
    
@nick - my demo and yours are just almost the same... take a look jsfiddle.net/BFhm6 –  Reigel Jul 7 '10 at 1:59
    
I completely missed the #b in the first selector, yeah this will work just fine :) –  Nick Craver Jul 7 '10 at 2:03
add comment

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.