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I've got a block of HTML that looks like this:

<div id="banners">
    <a href="p1.html"><img src="img1.jpg" /></a>
    <a href="p2.html"><img src="img2.jpg" /></a>
    <a href="p3.html"><img src="img3.jpg" /></a>
    <a href="p4.html"><img src="img4.jpg" /></a>
    <a href="p5.html"><img src="img5.jpg" /></a>
</div>

Using JavaScript, I'd like to randomly pick two of those images and their corresponding links and display them, while hiding the others. Also, they need to not be duplicates, meaning, I want to avoid showing something like img1.jpg img1.jpg at the same time.

jQuery is being used on the site, so it'd be nice if the proposed solution was a jQuery solution.

It's unfortunate that I don't have access to the backend of this site, or else I'd explore a server-side solution. It's just not possible in this instance.

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3 Answers 3

up vote 7 down vote accepted
var allBanners = $('#banners a');
allBanners.hide();

var index = Math.floor(Math.random() * allBanners.length);
allBanners.eq(index).show();

var index2 = Math.floor(Math.random() * allBanners.length - 1);
allBanners.not(allBanners.eq(index)).eq(index2).show();

Demo

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That works, David. Thank you very much! –  ctrlaltdel Aug 9 '12 at 11:35
    
Hey, David I wonder if I want to display 5 of 10 images instead what should I do ? I have tried to edit your code but it does not work properly –  Poramat Fin Nov 15 '13 at 14:40
    
More info: I want to display 5 image of 10. And not showing duplicate image. And the most important is each time i press button it must show 5 image. But After I edited your code by putting index3, index4, index5…After I press button 2-3 times it show only 4 images. Sometimes 3 images. What is wrong ? And how to fix this ? –  Poramat Fin Nov 15 '13 at 15:28
    
@PoramatFin: yeah, this solution doesn't scale very neatly. To be able to extend it as it is, you'd need to have more and more .nots chained, and you'd need to decrement the randomization range (increasing the -1 term) as you go, and as you do that, you'd have to counter for the fact that that operation will sometimes give you indexes lower than 0 (these would be the "misses" where you end up with less than 5 elements in your result). –  David Hedlund Nov 15 '13 at 18:50
    
For your scenario, it'd be worth doing a proper shuffle for instance, as described here and then just grab the first slice of the result. Demo –  David Hedlund Nov 15 '13 at 18:51
var elem = $("#banners a");
var img1 = Math.floor(Math.random() * elem.length), 
    img2 = Math.floor(Math.random() * elem.length);

while (img1===img2) {
  img2 = Math.floor(Math.random() * elem.length);
}

elem.hide();
elem.eq(img1).show();
elem.eq(img2).show();

FIDDLE

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1  
You'd want to use 0 based indexes when using eq, tho, so skip the +1 in your variables. –  David Hedlund Aug 9 '12 at 11:37
    
+1 for the while –  Roko C. Buljan Aug 9 '12 at 11:38
$('a').hide();
var count = 0;
while(count < 2) {
var number = 1 + Math.floor(Math.random() * 5); 
if($('a[href="p' + number + '.html"]:visible').length == 0) {
 $('a[href="p' + number + '.html"]').show();
 count++;
}
}

This ensures the unbiased randomness over choosing those two images.

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your code doesn't work.. jsfiddle.net/AAXEz –  Shouvik Aug 9 '12 at 11:46
    
property values need to be quoted because of the dot, 'a[href="p' + number + '.html"]'. –  David Hedlund Aug 9 '12 at 11:51
    
oops. Thanks. I have updated my answer now. –  sundar Aug 9 '12 at 11:52

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