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When I pass the results from getJSON to parseInfo() function just like the one below, is it possible to get results back into a php variable so that I could put the latter through another php function.

$.getJSON('getinfo.php', { id:id }, parseInfo);

function parseInfo(data) {
   <?php 
      $some_var = json_decode(data);
      function some_function($some_var) {
         // rest of the script here...
      } 
   ?>
}

Can anyone please help me out with this? I would really appreciate it.
Cheers!

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1 Answer 1

PHP runs BEFORE the page is sent. Javascript runs AFTER the page is sent. Therefore the only way to can run PHP is to request a page.

So, if you wanted to pass data to PHP, you would have to call another page like ajax.php:

<?php

$data = $_POST['data'];
// ... do stuff ...

?>

From your script:

$.post('ajax.php', data);

See this question.

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Wow. Thanks a lot for the quick reply. I will give it a shot. Best, –  DGT Feb 21 '10 at 22:35
    
I'm sorry but may be I wasn't so clear earlier. I can't seem to achieve the thing that I want to with the way you've suggested. Firstly, because the post function (below) doesn't seem to do anything. Secondly, the whole purpose of doing this is just so a php function can format the content of one of the array element (data.desc) returned from the line: json_encode($ref[$id]) within the 'getinfo.php' script. So, the idea is to print the formated data.desc inside the same #div, like so: $('div#info').html(data.desc); // i tried function parseInfo(data) { $.post("ajax.php",data); } Thanks –  DGT Feb 22 '10 at 0:14
    
Oh, I plum forgot. The $.post() thing is part of jQuery, a very popular Javascript framework. Given you might already use it, you have to get the data the page outputs via a function passed in the called. $.post('ajax.php', data, function(data){ alert(data); }); –  Tyler Carter Feb 22 '10 at 0:40
    
Try the documentation for more information on this: docs.jquery.com/Post –  Tyler Carter Feb 22 '10 at 0:40

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