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My javascript code appears to work as it's supposed to. However, when I 'view source' in Chrome, it disagrees with the javascript that is actually executed.

Here is my code:

<?php
    $_SESSION['new'] = "blue";
    if (!isset($_SESSION['old'])) { $_SESSION['old'] = "blue"; }
        echo '<script type="text/javascript">
            $(document).ready(function() {
                changeCol("'.$_SESSION["old"].'","'.$_SESSION["new"].'");
            });
          </script>';
    $_SESSION['old'] = "blue";
?>    

$_SESSION['old']="green" from the previous page. The code is supposed to call changeCol("green","blue"), and then set $_SESSION['old']="blue".

In fact, both of these things happen, so my code works as it's designed, but if I view source, it says changeCol("blue","blue"). This is strange, because if in changeCol() I write the passed variables to console.log, I get green, blue.

So if it's calling changeCol(green,blue) why does it say changeCol(blue,blue) when I view source?

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3  
js before php ...its not possible .... php is server side and js is client side –  obi NullPoiиteя kenobi Dec 7 '12 at 4:25
6  
When you view source, your browser is probably requesting the page a second time, so you get a fresh page with the new session values. –  Brian Marshall Dec 7 '12 at 4:26
2  
Did you call session_start()? –  blackbourna Dec 7 '12 at 4:27
1  
Whatever is wrong is happening server-side. It's not the result of js execution. –  Beetroot-Beetroot Dec 7 '12 at 4:28
1  
@BrianMarshall ah, good call! I checked developer tools in chrome and it's as you'd expect. if you want to answer i'll give you a check. everyone else: yes. i know php executes first, but that doesn't answer my question. my fault for poor wording. –  Jeff Dec 7 '12 at 4:31

2 Answers 2

up vote 12 down vote accepted

When you view the source, you're probably making an additional request. Your session variable will be reset.

If you're using Chrome or Firefox — which you should be — you can open up either the Web Developer Tools or Firebug and examine the actual DOM tree. (This is also pretty useful in situations where a script has added content dynamically.)

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From my experience, this is most definitely the right answer. –  Scotty C. Dec 7 '12 at 4:29
1  
View source makes a request? In which browsers? –  Beetroot-Beetroot Dec 7 '12 at 4:31
2  
does appear to be a know issue in chromium code.google.com/p/chromium/issues/detail?id=523 –  Kelly Copley Dec 7 '12 at 4:37
4  
Someone at Google needs to be fired. View source should not make a new request, at least not without use sanction, otherwise there's a real danger that the source you get is not the source of the page you are viewing. The OP's problem is a case in point, as would be anything with rapidly changing dynamic content, eg news or stock prices sites. –  Beetroot-Beetroot Dec 7 '12 at 4:45
2  
@Beetroot-Beetroot: The current behavior (once you know it) is actually useful for devs to debug pages with changing content. You don't need to refresh the page and view source, refresh and view source, refresh and view source... you can just refresh the source view. Helped me lots of time to spot bits that change in the source just by pressing F5. Note, that chrome implements view source as a protocol, it's view-source:some_uri instead of http://some_url. So you can go directly to source without rendering the page. –  slebetman Dec 7 '12 at 4:58

Did you include <?php session_start(); ?> on your second page?

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1  
If he didn't, it's amazing how well those $_SESSION variables are working. :P –  Scotty C. Dec 7 '12 at 4:29
1  
WIth no session_start, php would make a new array called $_SESSION. $_SESSION['old'] would always be unset and set itself to blue. if this were the case –  Mister Dood Dec 7 '12 at 4:31

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