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I want to call a function that opens a new link. I want to do this after all my images have been clicked on. How can i achieve this?

HTML

<!DOCTYPE HTML> 
<html>
<head>
    <meta charset="windows-1252"> 
    <!--[if lt IE 9]>
        <script src="http://html5shim.googlecode.com/svn/trunk/html5.js">   </script>
        <![endif]--> 
    <title>Date med mig - version b
    </title>
    <script type="text/javascript">
    function newWindow()
    {
        window.location = window.location = "http://www.tv3.se/datemedmig"
    }
    </script>
</head>
    <body>
    <h1>Del 2: Date med mig</h1>    

    <img src="1_c.jpg" id="image1" onclick="this.src='1_o.jpg';" alt="image" />
    <img src="2_c.jpg" id="image1" onclick="this.src='2_o.jpg';" alt="image" />
    <img src="3_c.jpg" id="image1" onclick="this.src='3_o.jpg';" alt="image" />
    <img src="4_c.jpg" id="image1" onclick="this.src='4_o.jpg';" alt="image" />

    </body>
</html>
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What have you tried so far? Your question, in its current form, is too broad to get many useful responses on Stack Overflow. –  dgvid Feb 12 '13 at 22:16
    
im actually clueless on where and how to call my function newWindow(), so that it gets called after every image has been clicked on. –  DrWooolie Feb 12 '13 at 22:17
1  
btw, having same ID for multiple elements are bad idea and asking for trouble. –  Infinity Feb 12 '13 at 22:18
    
oh yeah, my bad. thanks for that ! –  DrWooolie Feb 12 '13 at 22:21
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3 Answers

up vote 2 down vote accepted

If you are trying to just load a new window as soon as any image is clicked, I think the way that @runfaj said to do it is probably the best, It is my understanding that you want to do it only after ALL images have been clicked on?

If this is the case, here's one option (which is probably not the most efficient)

//Assuming there are 4 images
var hasBeenClicked = [false,false,false,false]

//To be called when each image is clicked
function imageClicked(whichImage){ 

    this.src = "'"+whichImage+"_o.jpg'"

    //set this position in the array equal to true
    hasBeenClicked[whichImage] = true

    // if the array is completely true (every image has been clicked)
    // call the newWindow function
    if(hasBeenClicked == [true,true,true,true]){
          newWindow();
    }

}

Then when you create an image:

<img src="1_c.jpg" id="image1" onclick="imageClicked(1);" alt="image" />
share|improve this answer
    
how should i call it, since im already using onclick ? –  DrWooolie Feb 12 '13 at 22:30
    
<img src="1_c.jpg" id="image1" onclick="imageClicked(this.src='1_o.jpg');" alt="image" />, this is how i call the function, but it will not work ? –  DrWooolie Feb 12 '13 at 22:36
    
editing function right now... –  Cabbibo Feb 12 '13 at 22:38
    
im I calling the function correctly ? <img src="1_c.jpg" id="image1" onclick="imageClicked(this.src='1_o.jpg');" alt="image" /> –  DrWooolie Feb 12 '13 at 22:43
    
i cant make it to work. i call it this way: <img src="1_c.jpg" id="image1" onclick="imageClicked(this.src='1_o.jpg');" alt="image" />, but nothing happens, and i do this in every img –  DrWooolie Feb 12 '13 at 22:52
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you could do it three ways:

jquery:

$('img').click(newWindow);

inline:

<img src=..... onclick="newWindow()" />

regular javascript:

get all the tags with:

var imgs = document.getElementByTagName('img');

then add an event listener to each one (google it for lots of different examples)

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Have an onclick function that triggers for each image which sets a new attribute on the image tag. Then run a loop over all images to check that they all have the tag. If so, open new windows. For example:

$('img').click(function() {
    $(this).data('was-clicked', true);

     var all_clicked = true;
     $('img').each(function() {
         if($(this).data('was-clicked') != true) {
             all_clicked = false;
             break;
         }
     });

     if(all_clicked == true) newWindow();
 });

Note, this code is not tested and may have syntax/semantic errors. Also, you may not really want the user to click ALL image tags (e.g. banners, backgrounds, etc), so you should modify the jquery selectors to filter only the 'img' tags you're interested in, e.g. $('#my-gallery img')...

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thank you, but the solution is supposed to be in pure javascript, no jQuery. –  DrWooolie Feb 13 '13 at 8:37
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