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I have a jQuery function that finds all the images nested in a container DIV with the ID of #popupForm, looks at the SRC attribute and compares it to a hidden input that has it's value created by a server side variable. Once rendered if there's a match it'll do a replace on the SRC of the image, hense:

var thisTheme = $("#hiddenTheme").val();
var defaultTheme = "/midway/firstTheme/"

$('#popupForm img').each(function () {

    var thisSRC = $(this).attr('src');
    if (thisSRC.indexOf(defaultTheme) !== -1) {

        var new_src = $(this).attr('src').replace(defaultTheme, thisTheme);
        $(this).attr('src', new_src);

    }

});

Now this works great but I wish to extend the loop part of this code (the .each part) so not only does it look at images in the container DIV but all inputs (yes some of the inputs have a SRC attribute - please don't ask why)

I was thinking of adding an array like such

var arrValues = ["#popupForm img", "#popupForm input"];

and then chaning the selector partof the each to contain the array, something like this

$(arrValues).each(function () {

Does anyone know the best way for me to amend the code for this, what I've tried thus far hasn't worked!

Thanks

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hi Mike i think i am too late in this conversation, but have you got your answer? –  Vivek Feb 8 '11 at 10:00

3 Answers 3

up vote 1 down vote accepted

This is a way to extend the wrapper:

$('#popupForm img').add('#popupForm input[src!=""]')...

The [src!=""] ensures only those inputs are added, which has an src attribute.

Hope this helps!

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That's what I need! Cheers! –  Mike Sav Feb 8 '11 at 10:03

Just use commas in your selector (similar to CSS):

$('#popupForm img, #popupForm input').each(function () { ... });
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Have you tried changing this line to the following:

$('#popupForm img, #popupForm input').each(function () {...

Hope it works.

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Whoops, seems I'm too late… –  Anriëtte Myburgh Feb 8 '11 at 9:50
    
I seem to get the error "thisSRC is undefined", and I think it's because not all inputs have a SRC attribute! –  Mike Sav Feb 8 '11 at 9:55
    
It's because the inputs normally don't have a source. You can change it to this: $('#popupForm img, #popupForm input[src!=""]').each(function () { –  Anriëtte Myburgh Feb 8 '11 at 12:41

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