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if you visit here: Example You will see my problem.

The page loads, then loads all the same content within a div id=content

Have a look at the source for the JS/jQuery and if you need the PHP just let me know. Im not too sure if its the JS or PHP that's doing this. I use the jQuery Address Plugin so maybe im not using it properly but this is killing me.

any ideas on what i could be doing wrong? in Firebug the page loads and simply doesn't stop. Try it out if you have it.

Any help is appreciated!!

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3 Answers

up vote 6 down vote accepted

This line of code:

$('.content').load('http://laynestaley.co.uk/test/'+fragment+'?ajax=1');

Is actually loading the entire page into <div class='content'></div>. Your server-side code must not be executing the way you expect it to with that AJAX call (It's just loading the index page of /test/ again).

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thanks!! now i can focus on what is happening! is there any way you can help me with PHP? im useless when it comes to it –  Ricki Jun 17 '11 at 20:26
    
@Ricki: I'm useless when it comes to PHP as well :P. It might be easiest to open a new question. –  Andrew Whitaker Jun 17 '11 at 20:45
    
no problem, thanks for pointing this out. had a sneaking suspicion this was to blame. now to make it right!! –  Ricki Jun 17 '11 at 20:47
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I agree with @Andrew, but just a suggestion -- if you don't want the page to "snap" when the AJAX is loaded, set your height in css to something like 100%

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what? the div height? –  Ricki Jun 17 '11 at 20:29
    
yep. if the height after the content is loaded is something like 400px, set the content div to 400px, then when the content loads, it won't snap. –  AndyL Jun 17 '11 at 20:39
    
thanks man, i may use an effect for content load, not sure how yet but i'll get there –  Ricki Jun 17 '11 at 20:41
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You are incorrectly building fragment. In you code first letter truncated in query.

Correct code:

fragment = event.value.substring(2);
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doesnt seem to work when i do that –  Ricki Jun 17 '11 at 20:43
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