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.

I have a range of divs, each with an incremental ID:

<div id="1">contents</div>
<div id="2">contents</div>
<div id="3">contents</div>
<div id="4">contents</div>
<div id="5">contents</div>
<div id="6">contents</div>

...

I'm trying to assign a class through JQuery by selecting by ID: $('#id').addClass('someClass'); but I want the '#id' to be selected randomly from the range I have there. The range could be sizable, maybe up to 50 ids or more. I'm guessing this will have to read the IDs as number, right? How do I get a random number there?

...Here's the full scheme:

setInterval ( "flipit()", 3000 );

function flipit ( ) {
    $(document).ready(function(){
        var elmId = 'nS_' + (Math.floor(Math.random() * 6) + 1);
        $('#' + elmId).addClass('numSen2');
    });
}
<style type="text/css">

.numSen {
    visibility: hidden;
}
.numSen2 {
    visibility: visible;
}

</style>

<div class="numSen" id="nS_1">contents</div>
<div class="numSen" id="nS_2">contents</div>
<div class="numSen" id="nS_3">contents</div>
<div class="numSen" id="nS_4">contents</div>
<div class="numSen" id="nS_5">contents</div>
<div class="numSen" id="nS_6">contents</div>
share|improve this question
1  
Element IDs cannot start with a number. –  Interrobang Feb 26 '12 at 3:38
    
@Interrobang Correct, though they can in html 5. –  James Montagne Feb 26 '12 at 3:40
    
You also want to remove the class from the other elements, right? –  Salman A Feb 28 '12 at 15:22

5 Answers 5

'#id' is just a string. So, after fixing your IDs (they must start with a letter), build a string like you would anywhere else:

var elmId = 'somePrefix_' + (Math.floor(Math.random() * 5) + 1);
$('#' + elmId).addClass('someClass');
share|improve this answer
    
Lovely, now perhaps I should've made my whole scheme clear from the get go... This approach works but now I also need to undo this through setInterval. What I'm going for is sort of like an on/off visibility switch for those divs. In other words I want a random div to show up, stay on for 3 seconds and then turn it off while another random div repeats this process and shows up. I'm editing my original post to show code... –  user1233337 Feb 26 '12 at 4:28
    
@user1233337: Sounds like a new problem. Please don't ruin all the answers by changing the question so fundamentally at this late stage. –  Lightness Races in Orbit Feb 26 '12 at 4:52

I would re-work your elements so they have some class ahead of time. This way, you can select an element from those that you want to change, rather than everything.

<div class="addClasstoMe">contents</div>
<div class="addClasstoMe">contents</div>
<div class="addClasstoMe">contents</div>
<div class="addClasstoMe">contents</div>
<div class="addClasstoMe">contents</div>
<div class="addClasstoMe">contents</div>

And then in your JavaScript:

var elements = $('.addClassToMe');
$(elements[Math.floor(Math.random()*elements.length)]).addClass('someClass');

Untested, but should work, or be close to it.

share|improve this answer
    
+1 This seems like a better way to do this. –  jfriend00 Feb 26 '12 at 3:44
    
@Xander, Yeah, it was new to me too, and it turns out it's wrong, so I edited it back out. I was checking to see if there was a jQuery way of doing it, but it looks like :random was a custom filter. blog.mastykarz.nl/jquery-random-filter –  Brad Feb 26 '12 at 3:48
    
Strictly speaking, you're now selecting six times as many elements as you were before, and doing so from the same pool of elements (the document). –  Lightness Races in Orbit Feb 26 '12 at 3:49
    
Fixed... couldn't rollback for some reason, so re-wrote it again. –  Brad Feb 26 '12 at 3:49
1  
This won't work. elements[...] will return the element, not a jquery object. You can't call addClass on it. You want to use eq(). –  James Montagne Feb 26 '12 at 3:51

You can do it even shorter. This will select a div with random id between 1-100 and hide() it:

$('div#'+~~(Math.random()*101)).hide();

Edit:

var $divs = $('div'), len = $divs.length;
$divs.filter('#'+~~(Math.random()*++len)).hide();
share|improve this answer
    
Your solution works by selecting elements which have pre-assigned IDs, assumes a specific number of them and no gap between ID numbers. I don't believe this is a very good way to do this, as you'll need to be dynamically updating your JavaScript along with your page as you add/remove elements. –  Brad Feb 26 '12 at 3:55
    
Oh I see what you mean. You could use filter() too. See edit. –  elclanrs Feb 26 '12 at 4:01
    
@Brad: The question heavily implies that this is fine. –  Lightness Races in Orbit Feb 26 '12 at 4:06
    
@LightnessRacesinOrbit, Then up-vote it. I didn't say that this solution doesn't work... elclanrs had asked why I was doing what I was doing rather than doing what he was doing, and I explained. –  Brad Feb 26 '12 at 4:08
    
@Brad: I'll upvote when I want to. I'm just replying to your comment. I see now that you were replying to a question.. how confusing to do it in a different place! –  Lightness Races in Orbit Feb 26 '12 at 4:13

Use Math.floor in combination with Math.random() to create a random selector:

var selector = '#' + (Math.floor(Math.random() * 50) + 1);

$(selector).html();
share|improve this answer

You do not need (prefix +) numerical Ids for this. All you need is a way to identify the DIVs that need to be flipped. You can:

  1. add a class to all such divs (like Brad said)
  2. put them inside a container

Etc. Using approach #2, revise your markup like this:

<div id="div-wrap">
    <div>contents</div>
    <div>contents</div>
    .
    .
    .
    <div>contents</div>
</div>

And write jQuery code:

$(document).ready(function() {
    window.setInterval(function() {
        var $divs = $("#div-wrap").children("div");
        var randId = Math.floor(Math.random() * $divs.length);
        $divs.removeClass("current").eq(randId).addClass("current");
    }, 1000);
});​

Demo here

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.