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Here is the test page: http://grozav.com/test.php

I'm trying to add a jquery function to each image from the mysql database table. Here is the generated code:

<div class="thumb" id="grozav-thumb">
<a class="ajax" href="gallery/grozav.html">
<p class="work-type">MOTION GRAPHICS</p>
<img src="http://grozav.com/images/thumbs/grozav-bwthumb.jpg" alt=""/>
<img src="http://grozav.com/images/thumbs/grozav-thumb.jpg" alt="" class="color"/>
</a></div>

I need a function which creates a code for each div with the class thumbnail. The outcome should be like this:

*thumbnail() is a function

thumbnail('divid');

which is something like

thumbnail('grozav')

Thanks a lot!


After reading the advices here, I've changed the code into:

function thumbnail(param1){
$(param1).hover(
    function() {
        $(param1+' .color').hide().stop().fadeTo(500,'1');
    },
    function() {
        $(param1+' .color').stop().fadeTo(500,'0');
    }
) ;                 
};

for(var p in document.querySelectorAll('div.thumb'))

thumbnail(p.id);

EDIT Problem solved. I used the following jQuery code to do it, which seems to work fine.

$("div.thumb").each(function (){
    var id = $(this).attr('id');  
    thumbnail(id);});

Applies the function to each of the divs created through php. Thank you anyway guys!

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2  
You need to show us the generated HTML/JS, not the PHP source code. –  Pekka 웃 Jan 22 '12 at 13:03
1  
Open the javascript console, and see if it shows any errors. In chrome, you can do this by clicking view -> developer -> JavaScript console. In FireFox, you can find this console in the extra's menu somewhere. –  bigblind Jan 22 '12 at 13:05
    
What that function is supposed to do? –  ogur Jan 22 '12 at 13:09
    
hit CTRL + SHIFT + J in frefox to bring up the JS console. –  JohnP Jan 22 '12 at 13:10
    
@AlexG.: Have you solved your problem? Your website seems to work now. –  Zeta Jan 22 '12 at 16:49

2 Answers 2

Your thumbnail function is defined in $(document).ready(function(){. This means, that the browser won't know about thumbnail() until the site is loaded completly. So when your browser stumbles upon <script>thumbnail('img0');</script> in your div it has no idea what this thumbnail means.

You should place the call of thumbnail right after your definition of thumbnail. Something like

function thumbnail(param1){
$('#'+param1+'-thumb').hover(
    function() {
        $('#'+param1+'-thumb .color').hide().stop().fadeTo(500,'1');
    },
    function() {
        $('#'+param1+'-thumb .color').stop().fadeTo(500,'0');
    }
) ;                 
};

for(var p in document.querySelectorAll('div.thumb'))
    thumbnail(p.id);

Maybe there's a better solution than this in jQuery, but this should satisfy your needs.

EDIT: Use the error console of your browser (in this case [xx:xx:xx.xxx] thumbnail is not defined @ http://grozav.com/test.php#portfolio:119) - it will help you to find your errors faster.

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It's also worth noting that simply calling <script>thumbnail('x');</script> won't work, as it'll execute before the DOM has loaded. –  leemachin Jan 22 '12 at 13:17
    
@fuzzyDunlop: That's the statement of my first paragraph - just didn't use the word "DOM" but $(document).ready... ;). –  Zeta Jan 22 '12 at 13:26
    
I'm supposed to receive an outcome like: thumbnail('lifelovelies'); which is thumbnail('idfromdatabase') How can I do that with your function? –  Alex G. Jan 22 '12 at 13:47
    
@AlexG.: Just use the code above and replace your current definition of thumbnail with this. Every <div> has an ID='idfromdatabase' and a class='thumbnail'. In the last two lines I iterate through all divs tagged as thumbnail and call thumbnail(div.id). And strip all <script>thumbnail(xxx)</script> tags from your code, as they won't work. EDIT: You edited your question a little too much, my answer won't help you anymore. Hint: strip '-thumb' in thumbnail, then everything should work fine. –  Zeta Jan 22 '12 at 13:58
up vote 0 down vote accepted

Problem solved. I used the following jQuery code to do it, which seems to work fine.

$("div.thumb").each(function() {
    var id = $(this).attr('id');  
    thumbnail(id);
});

Applies the function to each of the divs created through php. Thank you anyway guys!

share|improve this answer

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