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I have this code that generates a group ID with javascript. It's shown here: http://jsfiddle.net/LwtvK/5/. Now instead of it writing the text "Group id : X", I want it to control an image that gets shown. There are 7 group id's and 7 images

    <div data-role="content" id="pictures"> 
        <img src="images/image1.jpg" alt="image" id="pict1">
        <img src="images/image2.jpg" alt="image" id="pict2">    
        <img src="images/image3.jpg" alt="image" id="pict3">    
        <img src="images/image4.jpg" alt="image" id="pict4">    
        <img src="images/image5.jpg" alt="image" id="pict5">    
        <img src="images/image6.jpg" alt="image" id="pict6">    
        <img src="images/image7.jpg" alt="image" id="pict7">    
    </div>

Now when the group id is 5, I want the 'Continue' button to hide images 1, 2, 3, 4, 6 and 7 and show image 5. I was thinking of doing something like

    function show_img(id)
    {
        if(id=='1')
        {
           $("#pict1").hide();
           $("#pict2").show();
        }
        else if(id=='2')
        {
            $("#pict2").show();
            $("#pict1").hide();
        }
    return false;
     } 

But that would result in a lot of retyping and I'm not really sure how to get it to work. So, does anyone know how I can get the generated group ID to show the right image when the button is clicked?

share|improve this question
3  
In your markup there is an extra img: <img src="images/image1.jpg" alt="image" img id="img1"> – Toni Toni Chopper Dec 7 '12 at 11:47
    
Thanks. Corrected it. Also I changed the image id's to 'pictX' from 'imgX' to avoid confusion. – wortle Dec 7 '12 at 12:03
up vote 6 down vote accepted

You could hide all (using some general selector) and then show just the one you need. E.g.

function show_img(id) {
    // hide every image that is immediate child of node with "pictures" id
    $('#pictures > img').hide();
    $('#pict'+id).show();
}
share|improve this answer
    
do you also know how I get the ID that is generated with the checkboxes (in the JSFiddle) to be saved as the ID that is used in this function? (Also, I edited my original image ID's to 'pictX' to avoid confusion by 'img' tags. Could you update your suggestion?) – wortle Dec 7 '12 at 12:06
    
What do you mean by "to be saved as ID" ? – WTK Dec 7 '12 at 12:08
    
Well, in the JSfiddle, when you check some checkboxes, it shows 'group id : X'. But I don't want it to display the group id, I want it to save that group id and use it as the id that influences this function. So when checkbox 1 is checked, it shows image1 (#pict1). And when checkbox 1 and 2 are checked, it shows image3 (#pict3) and so on. – wortle Dec 7 '12 at 12:13
1  
Just get the calculated id and pass it to function above jsfiddle.net/LwtvK/6 – WTK Dec 7 '12 at 12:26
1  
It works for me jsfiddle.net/LwtvK/7 – WTK Dec 7 '12 at 13:17

Something like this might be useful -

function show_img(id)
{
  // hide all other images (possibly only within a certain parent element)
  $("#parent_selector > img").hide();

  // display only specified image by id
  $("#img"+id).show();
  return false;
}
share|improve this answer

The following code will hide all images with an id starting img then show the one with the id passed in:

function show_img(id)
{
    $('img[id^="img"]').hide();
    $('#img' + id).show();
} 

http://jsfiddle.net/3U96T/1/

share|improve this answer
    
And how do I get the id that's generated saved as the function ID? – wortle Dec 7 '12 at 11:56

I'd suggest (though untested):

 function show_img(id) {
    $('#img' + id).show().siblings().hide();
 }
share|improve this answer

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