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Situation: I have a tiny http server that can only handle 4 connections at any given time. When opening a web page, my web browser sends a get request for every image resource asynchronously (tries to open more than 4 connections at the same time). This causes some bad behaviour.

Initial solution: I wrote a JS function that loads the images sequentially and stores them in a dictionary

var loadedImages = {};

like so:

 var img = new Image();
        img.src = <img_location>; 
        loadedImages[<img_name>] = img;

After all the images are loaded i try to place them in various places in the DOM. The important part is that i need to place the same picture in multiple places. I do it like this:

//For all the elements that need to have the same image DO:
var img = loadedImages["<img_name>"];
        $(this).html(img);

Problem: What happens is that as soon as the code puts the image in the SECOND element, the image gets removed from the FIRST element. When the image gets put in the THIRD element, it gets removed from the SECOND element. So what happens is that basically only the last element contains the image, while all the others are empty.

Question: How can I place the same image from my javascript dictionary (or any other javascript object) on multiple DOM elements?

Edit:When using something like

//For all the elements that need to have the same image DO:
var img = loadedImages["<img_name>"];
        $(this).html($(img).clone());

as proposed by Tamil Vendhan and Atif Mohammed Ameenuddin, the image gets placed on all the elements and that is ok, but the browser requests the image from the server every time it comes to that line of code. So it is not really a good solution. Same goes when i use "cloneNode()"

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the browser making a request is inevitable, however you shouldn't worry about that because the image is loaded from cache from second request onwards –  Atif Mohammed Ameenuddin Jul 7 '13 at 18:12

2 Answers 2

Try using the clone method in jQuery

$(this).html($(img).clone());
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Thanks, but it does quite work for me. Please check the edit. –  Solver Jul 4 '13 at 11:44

Use jQuery.clone:

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

Update:

Yes, browser will make the request. But it will use the cached image if it is already loaded. Check your debugger's net panel to confirm this. You will see (from cache) under Size column.

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lol you won by 14 seconds –  Atif Mohammed Ameenuddin Jul 4 '13 at 11:27
    
@AtifMohammedAmeenuddin: ;-) –  Tamil Vendhan Kanagaraju Jul 4 '13 at 11:28
    
Thanks, but it does quite work for me. Please check the edit. –  Solver Jul 4 '13 at 11:45
    
@Solver: see my update –  Tamil Vendhan Kanagaraju Jul 4 '13 at 11:51
    
@TamilVendhan Is there a way to avoid the requests? The amount of traffic is extremely important because of some hardware restrictions. –  Solver Jul 4 '13 at 11:55

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