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My HTML:

<div id="gallery-thumbs">

    <div class="thumb">
         <img alt="2" src="gallery/thumbs/2.jpg" class="thumbimg hand" />
    </div>

    <div class="thumb">
         <img alt="4" src="gallery/thumbs/4.jpg" class="thumbimg hand" />
    </div>

    <div class="thumb">
         <img alt="100" src="gallery/thumbs/100.jpg" class="thumbimg hand" />
    </div>

</div>

JavaScript:

nextphotoid = $('#gallery-thumbs img[alt="4"]').parent().parent().next("div.thumb img").attr('alt');

This should return 100, as that's the value of the alt attribute of the next image after the image with alt='4', but it's not working - why not?

I've tried various combinations of NextAll etc. I've read around similar questions but can't get mine working - I'm obviously missing something simple.

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3 Answers

up vote 3 down vote accepted

There's one parent() too many and you're on the level of #gallery-thumbs. Using next() will look for siblings and that's not what you want.

Try this:

nextphotoid = $('#gallery-thumbs img[alt="4"]')
    .parent()
    .next("div.thumb")
    .find('img')
    .attr('alt');

fiddle

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This doesn't seem to work either. I think the problem is with my structure of the HTML, as I think your code is just looking in the div with the image alt='4' in, so it never finds the other images? –  Dominic Williams Mar 31 '12 at 10:02
    
ah yes, damn it. I've corrected the example. –  TJ. Mar 31 '12 at 10:10
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$('div.thumb img[alt*=4]')
.parents('div :first')
.next('div')
.children('img')
.attr('alt');

try this Fiddle

I am really wondering when or why would you need to find "next('alt')", when you are already providing one for the selector

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I hardcoded the 4 for simplicities sake, but the selector will be variable depending what image they are currently viewing, and the numbers won't necessarily be incremental. There probably is a more elegant way to achieve all of this though –  Dominic Williams Mar 31 '12 at 10:52
    
If they are going to be variable how will you specify them as selectors ? –  Kishor Kundan Mar 31 '12 at 10:56
    
The last one they clicked is stored as a variable. If they press the next button I needed to find the 'next' one which is what my question was about it –  Dominic Williams Apr 1 '12 at 16:41
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You used .next() wrongly, Try this Fiddle

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