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I had a php file that did this:

$recresults = array('dupes' => $result, 'total' => $number2);
header('Content-type: application/json');
echo json_encode($recresults);

Then I modified the file to this:

$recresults = array('dupes' => $result, 'total' => $number2, 'thefield' => "WWW");
header('Content-type: application/json');
echo json_encode($recresults);

But when I checked google dev tools, network tab, I seen that it was not returning the last array element that I added thefield. If I attempt to use the variable for that element in my JavaScript I get undefined data.thefield.

So to see if changes were being being acknowledged by the server at all I tried changing my code to this:

$recresults = array('dupes' => $result, 'total' => $number2, 'thefield' => "WWW");
echo ("WTF SERVER?");

I also deleted type json on my ajax call. Well after checking I was right about the server not acknowledging my changes to the php file. The return code was still the json from the first code set. I tried an old trick of changing the php file's name. Did not work. Tried rebooting server. No dice.

What can I do? The server is not returning any errors.

$.post(PROCESSORFILE, {"task": "csv_dedupe", "file_name": file_name, "column_dedupe":                                    elem}, function(data) {
                $("#message").replaceWith('<div id="message" class="nNote nSuccess hideit"><p><strong>CSV Deduped! </strong><span class="badge badge-important">' + data.thefield + '</span> duplicate<span class="label label-info"> ' + data.dupes+ '</span> found</p></div>')
            });

When I return stuff from the php file using json_encode I change the above JS $.post() to type json.

share|improve this question
    
Please post the js where you refer to the php file. –  Daedalus Sep 11 '12 at 9:42
2  
caching maybe? Server-side or client-side ;) –  Snicksie Sep 11 '12 at 9:44
    
Yeah tried deleting cache client side. –  user1464296 Sep 11 '12 at 9:45

1 Answer 1

up vote 1 down vote accepted

Try the following, replacing ? with & depending on the content of your PROCESSORFILE variable.

var cacheBuster = new Date().getTime() + Math.round(Math.random()*100000);
$.post(PROCESSORFILE + "?t=" + cacheBuster, {"task": "csv_dedupe", "file_name": file_name, "column_dedupe": elem}, function(data) {
    $("#message").replaceWith('<div id="message" class="nNote nSuccess hideit"><p><strong>CSV Deduped! </strong><span class="badge badge-important">' + data.thefield + '</span> duplicate<span class="label label-info"> ' + data.dupes+ '</span> found</p></div>')
});

This is cache-buster code, to ensure a fresh copy of the php page is retrieved.

share|improve this answer
    
I tried both ways but no luck. Thanks for suggestion anyway. –  user1464296 Sep 11 '12 at 10:12

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