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i have a series of images let's say

<img src="1.jpg" />
<img src="2.jpg" />
<img src="3.jpg" />
<img src="4.jpg" />
<img src="5.jpg" />
<img src="6.jpg" />

so on and so forth.

and what i need to happen is to wrap in random 1,2 or 3 elements inside a div. so result would be

<div>
 <img src="1.jpg" >
</div>
<div>
 <img src="2.jpg" ><img src="3.jpg"><img src="4.jpg">
</div>
<div>
 <img src="5.jpg" ><img src="6.jpg" >
</div>

any ideas how to do this?

Thank you!

------ EDIT ------- How to do the same thing but this time the images are wrapped within an ? simply replacing img in Bojan's doesn't seem to do the trick..

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3 Answers

up vote 1 down vote accepted

Here is a very simple example of that

Here is html

<div id="container">
    <img src="" />
    <img src="" />
    <img src="" />
    <img src="" />
    <img src="" />
    <img src="" />
    <img src="" />
    <img src="" />
    <img src="" />
</div>

And here is javascript

function wrapInsideDiv(){
    while($("#container>img").length > 0){
        var images = Math.floor(Math.random() * 4) + 1;
        var div = $("<div/>");
        $("#container").append(div);
        $("#container>img").each(function(index, elem){
            if(index + 1 < images){
             $(elem).appendTo(div);
            }
        });
    }
}
wrapInsideDiv();​

Demo

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That doesn't work. Check the page source and you'll see it only wraps one image at a time, while skipping some. –  Jeroen Moons Sep 17 '12 at 12:47
    
I've updated my answer, thanks for notice. –  Bojan Kaurin Sep 17 '12 at 13:41
    
nice! :) Thank you! –  user1677581 Sep 17 '12 at 14:32
    
I've been trying to use this. however, this time the images are wrapped with <a href...> and this breaks. I would essentially like the same to happen just images wrapped in a link. –  user1677581 Sep 17 '12 at 16:43
    
You need to add display:block to <a>. When you add this css link will behave like div with default values, because div is display:block by default and is display:inline. Try demo –  Bojan Kaurin Sep 17 '12 at 19:14
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I'd do it like this (HERE'S A DEMO, you'll possibly need to check the page source to see the results):

HTML

<img src="img.png" />
<img src="img.png" />
<img src="img.png" />
<img src="img.png" />
<!-- etc. ->

<div id="container"></div>

JS

var randomNr, currentDiv;

$("img").each(function(){
    // if this is the first iteration, or if randomNr is larger than 3
    if(randomNr == undefined || randomNr > 3){
        // get a new random nr between 1 and 3
        randomNr = randomXToY(1, 3);
        // create a new div to put the images in
        currentDiv = $("<div></div>");
        $("#container").append(currentDiv);
    }

    // move image to currentDiv
    $(this).appendTo(currentDiv);
    randomNr++;   
});


// function to get random number
function randomXToY(minVal,maxVal){
    var randVal = minVal+(Math.random()*(maxVal-minVal));
    return Math.round(randVal);
}  

This generates a random nr between 1 and 3, loops over all images and counts up to 3 from that number. Every time the random number gets larger than 3, a new div is created to put the images in.

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Wow that works amazing! thank you! this was my first question on stackoverflow (BEST TEACHER ever) and i must say, what an amazing community. Thank you! +karma –  user1677581 Sep 17 '12 at 14:30
    
You're welcome, please accept this answer by clicking the 'V' on the left if this answered your question. Good luck with your project! –  Jeroen Moons Sep 17 '12 at 15:17
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Give an id to each of the images and with javascript or jquery, generate a random number or a serie of random numbers and grab them using this variable and push them into certain divs you may want.

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