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I'm attempting to make a button display random element when clicked using show/hide. It sets up so the element will be hidden first to stop duplicates, then shown. However it sometimes doesn't show.

The Fiddle will be clearer than my explanation: http://jsfiddle.net/qAfqN/.

Simplified code:

    this.uiSelect = function(){
    var length = $("#ui li").length;
    var ran = Math.floor(Math.random()*length);
        $('#ui li').hide();
    $("#ui li:nth-child(" + ran + ")").show();
};

    $(document).ready(function(){   
    $('#mangle').click(function(){
        uiSelect();
    }); 
});
share|improve this question
    
why dont you print the "ran" result in order to know which element should print and then maybe see whats going on. – jpganz18 May 9 '13 at 23:39
    
you want to print a random element of each list? – juanpastas May 9 '13 at 23:45
up vote 2 down vote accepted

Use :eq() instead of :nth-child(). They have quite a different meaning. The former refers to the element's position in the jQuery collection, while the latter refers to its position among its DOM siblings. These are not the same in your situation.

Consider the following markup:

 div
    > ul
        > li 1
        > li 2
    > ul
        > li 3
        > li 4
        > li 5

The query $('div li:eq(2)') will return li 3 (indices are zero-based), because that is the third element in the collection. On the other hand, $('div li:nth-child(3)') (indices are one-based here, that is why I wrote 3 instead of 2) will return li 5, because that is the only third element in its group, among its siblings.

You can even save yourself some ugly string concatenation and duplicate DOM lookups if you use .eq() instead of :eq() and some chaining like this:

$("#ui li").hide().eq(ran).show();

jsFiddle Demo

share|improve this answer
    
Hey @bažmegakapa thanks for that, however I need to keep the two ul separate (in your example markup) but connected. For instance if the 2nd li of any #ui ul will always display together. My original example does this OK, it's just the attribute isn't applied 100% of the time. Thanks – atomictom May 10 '13 at 0:03
    
@atomictom Then you have a problem with length. Based on the explanation I guess you can work that out. Ask if not. – kapa May 10 '13 at 0:08
1  
Ah yes! I understand, the variable length was doubled because of the extra ul so it was looking for, for example, 10 values when there were only 5. I've edited this fiddle which is a cheaty version of what I need and works perfectly, http://jsfiddle.net/qAfqN/5/. It's too late for me to figure how to work it out properly, but I might take you up on your help if I can't figure it out later. Thanks! – atomictom May 10 '13 at 0:37

Try this one, but I am not sure if this is what you want http://jsbin.com/ibasuv/1/edit

var pickRandom = function(selector){
  var lis = $(selector).find('li');
  lis.hide();

  var size = lis.size();

  var random = Math.floor(Math.random()*size);
  $(selector).find('li').eq(random).show();
};

I put a div closing tag for the second div, I think

share|improve this answer
    
Ah yeah, it's definitely displaying 100% of the time which is way better, however it's only displaying one of the two ul. I had a go butchering your work and got it to display two ul however it causes the same problem I had before, in which it displays intermittently. Thanks anyhow – atomictom May 10 '13 at 0:16
    
Try this jsbin.com/ixiyup/2/edit. – juanpastas May 10 '13 at 12:39
    
jsbin.com/ixiyup/3/edit – juanpastas May 10 '13 at 12:46

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