Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

Lets say i have the following unordered list

<ul>
 <li><a>Hank</a></li>
 <li><a>Alice</a></li>
 <li><a>Tom</a></li>
 <li><a>Ashlee</a></li>
</ul>

What im looking for is when i click on Tom, that it moves (animated and without dragging) to the top of the list (index 0).

Ive considered jquery sortable, but i cant find a way to activate the moving part programmatically.

share|improve this question
up vote 12 down vote accepted

I came up with a solution that seems to work pretty well. It's a proof of concept, so you'll probably have to modify it a bit to work better for your specific case. Also, I only tested it in Firefox, but I don't see any reason why this wouldn't work in all the browsers. Anyway, here it is:

<script type="text/javascript">
  $(document).ready(function() {
    $('li').click(function() {
      // the clicked LI
      var clicked = $(this);

      // all the LIs above the clicked one
      var previousAll = clicked.prevAll();

      // only proceed if it's not already on top (no previous siblings)
      if(previousAll.length > 0) {
        // top LI
        var top = $(previousAll[previousAll.length - 1]);

        // immediately previous LI
        var previous = $(previousAll[0]);

        // how far up do we need to move the clicked LI?
        var moveUp = clicked.attr('offsetTop') - top.attr('offsetTop');

        // how far down do we need to move the previous siblings?
        var moveDown = (clicked.offset().top + clicked.outerHeight()) - (previous.offset().top + previous.outerHeight());

        // let's move stuff
        clicked.css('position', 'relative');
        previousAll.css('position', 'relative');
        clicked.animate({'top': -moveUp});
        previousAll.animate({'top': moveDown}, {complete: function() {
          // rearrange the DOM and restore positioning when we're done moving
          clicked.parent().prepend(clicked);
          clicked.css({'position': 'static', 'top': 0});
          previousAll.css({'position': 'static', 'top': 0}); 
        }});
      }
    });
  });
</script>

<ul>
 <li><a>Hank</a></li>
 <li><a>Alice</a></li>
 <li><a>Tom</a></li>
 <li><a>Ashlee</a></li>
</ul>

It calculates the difference in offsets between the clicked LI and first LI and moves the clicked one up to the top by setting its position to relative and animating the top property. Similarly, it calculates how much space was left behind by the clicked LI and moves all the previous ones down accordingly. When it's done with the animations, it rearranges the DOM to match the new order and restores the positioning styles.

Hope that helps!

share|improve this answer
    
Wow that looks very intresting, im definitely gonna give this a go. Voted up! – Fabian Oct 27 '09 at 13:44
    
Is there a version that moves li items down one? – crosenblum Apr 16 '10 at 18:57

Found this even neater:

$('li').on('click', function() {
    $(this).parent().prepend(this);
});​

Live example

share|improve this answer
3  
and to move to the bottom: $(this).parent().append(this); – Aaron Hoffman Apr 10 '13 at 21:46
    
And if you hadn't guess it - move to the top: $(this).parent().prepend(this); – Joseph Woodward Jul 24 '15 at 16:13
    
~~LOVELOVELOVE~~ – flunder Dec 8 '15 at 16:21

Assuming:

<ul id="list">
 <li><a>Hank</a></li>
 <li><a>Alice</a></li>
 <li><a>Tom</a></li>
 <li><a>Ashlee</a></li>
</ul>

then:

$("#list a").click(function() {
  $(this).parent().before("#list a:first");
  return false;
});

If you want to animate then it's a little harder. One option:

$("#list a").click(function() {
  $(this).parent().slideUp(500).before("#list a:first").slideDown(500);
  return false;
});

Another option:

$("#list a").click(function() {
  var item = $(this).parent();
  var prev = item.prev();
  while (prev.length > 0) {
    item.before(prev);
    prev = item.prev();
  }
  return false;
});

but I doubt you'll get smooth animation that way.

share|improve this answer
    
Not exactly what im looking for but i guess thats the next best thing. Voted up. – Fabian Oct 27 '09 at 8:34

i played around with the fiddle No Surprises has made, and extended the code for swapping two arbitrary sets of elements (the only restriction being they must directly follow each other).

see here: http://jsfiddle.net/ZXYZ3/139/

share|improve this answer

I came up with this solution: http://jsfiddle.net/FabienDemangeat/TBYWw/

The idea is to choose the index of the Li element which will move and its destination. If the destination value is inferior to the index of the li element to move, the effect will be reversed.

Some parts are not perfect but it can be a start point. I inspired myself from the snippet provided by "No Surprises"

The main function swapLiElements swaps two li elements and the callback function as parameters allows to do more than one swap easily (see fiddle).

function swapLiElements($northLi, $southLi, isPushingDown, duration, easing, callbackFunction) {

    var movement = $northLi.outerHeight();

    // Set position of the li elements to relative
    $northLi.css('position', 'relative');
    $southLi.css('position', 'relative');

    // Set the z-index of the moved item to 999 to it appears on top of the other elements
    if(isPushingDown)
        $northLi.css('z-index', '999');
    else        
        $southLi.css('z-index', '999');

    // Move down the first li
    $northLi.animate({'top': movement}, {
        duration: duration,
        queue: false,
        easing: easing,
        complete: function() {
            // Swap the li in the DOM
            if(isPushingDown)
                $northLi.insertAfter($southLi);
            else
                $southLi.insertBefore($northLi);

            resetLiCssPosition($northLi);
            resetLiCssPosition($southLi);

            callbackFunction();
        }
    });

    $southLi.animate({'top': -movement}, {
        duration: duration,
        queue: false,
        easing: easing,
    });

}
share|improve this answer

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.