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I have a <div> and i want to add images into it. The number of images will vary randomly.

here is what i am trying to do

$(document).ready(function () {
    var img = document.getElementById("img");
    $('#button').click(function () {
        var randomnumber = Math.floor(Math.random() * 11) + 1;
        for (var i = 1; i < = randomnumber; i++) {
            $(this).append(img);
        }
    });
});

But it is not working. Please help

here is my code JSFiddle

share|improve this question
    
I would recommend providing a JSFiddle that shows your problem in action –  musefan Feb 17 at 12:32
    
What kind of element is your #button? Is it <button>? –  Radzikowski Feb 17 at 12:34
    
yes it is button –  insanity Feb 17 at 12:35
    
There were a few errors in your fiddle. I corrected them. New fiddle : –  Jack Zelig Feb 17 at 12:46
    
thanks !! it works @jack –  insanity Feb 17 at 12:53

4 Answers 4

up vote 2 down vote accepted

You should probably use clone as simon suggests, or you can create new images:

function getImage(){
    var img = new Image();
    img.src = "http://cdn.acidcow.com/pics/20110830/lolcats_ever_13.jpg"
    img.width = 200;
    return img;
}

var rand = Math.floor(Math.random() * 11) + 1,
    imgContainer = $("#imgContainer"),
    i;

$("#imgNo").text(rand);

for (i=0; i<rand; i++){
    imgContainer.append(getImage());
}

fiddle

share|improve this answer
    
Thanks a lot. it works –  insanity Feb 17 at 12:46

You need to clone the image:

$(this).append( $(img).clone() ); 

Your way always puts the same image (only one instance!) inside of div random amount of times. So in the end it is only one image.

If you clone it every time then you will have N amount of images

share|improve this answer
    
inside loop if any alert i am doing then it is not showing. what should i do it to make it work –  insanity Feb 17 at 12:28
    
I can't imagine OP wants to use this as that will mean the #button element is what gets appended to... –  musefan Feb 17 at 12:32

uhm, you aren't defining any new images. I am not sure from where you are getting your images. If you have differeny images, you can use the next loop. Besides that, the this points to the #button element. Not sure which item it is, but if it's an input button, then it won't work. you have to use a div or article or section ... as target.

$(document).ready(function () {
    $('#button').click(function () {
        // random number
        var randomnumber = Math.floor(Math.random() * 11) + 1;
        // insert images
        for (var i = 1; i < = randomnumber; i++) {
            // create a new img - element
            var img = document.createElement('img');
            // give it an id
            img.attr("id","img_" + i);
            // source, link
            img.attr("src","your_URL_here");
            // put newly created image in the div with id yourDivIdHere
            $('#yourDivIdHere').append(img);
        }
    });
});

the id has to be unique, that's why i'm using the index of the for loop for the id of the newly created element. Having same id for multiple HTML elements can lead to issues.

#yourDivIdHere means the div with the id yourDivIdHere, like

<div id="yourDivIdHere"></div>

When you are re-using the button, simply clear the content by using $('#yourDivIdHere').empty() method if you don't want to see that old images are still there after clicking on the button.

share|improve this answer

You are getting elements by id, so appended element is always the same element with id="img". Read about jQuery find() to find all elements.

share|improve this answer
    
The issue is not with the retrieval of the img element. It is about how it is used, which you answer does not help solve –  musefan Feb 17 at 12:30

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