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Using an ajax call I send a json data packet to a php back-end, however the json_decode fails on it for an unclear reason. The php code in question is here:

$request = file_get_contents('php://input');
Logger::getInstance()->debug("Request: ".$request);
// The logger shows the following line after a sample submission: 
// Request: prospectname=OMEGAK&teaserimg=kb.png&submit=Submit
$data = json_decode($request, true);
Logger::getInstance()->debug("Data: ".var_export($data,true));
// The logger shows the following line after a sample submission:
// Data: NULL

The packaging of the json comes from a variety of similar posts, but I'm using the following script (which is simply trying to send up a json-encoded key-value map of the form submission):

(function (){
  $.fn.serializeObject = function()
  {
      var o = {};
      var a = this.serializeArray();
      $.each(a, function() {
          if (o[this.name] !== undefined) {
              if (!o[this.name].push) {
                  o[this.name] = [o[this.name]];
              }
              o[this.name].push(this.value || '');
          } else {
              o[this.name] = this.value || '';
          }
      });
      return o;
  };

  $(function() {
      $('form').submit(function() {
          var $blah = $('form').serializeObject();
          // The $blah object reads like so at this point:
          // {"prospectname":"OMEGAKB","teaserimg":"kb.png"}
          var promise = $.ajax({ 
            url: 'myform/save',
            dataType: 'json',
            data: $blah,
            type: 'POST'
          });

          promise.done(function (result) {
            alert("Success: "+result);
          });

          promise.fail(function (result) {
            alert("Failure: "+result);
          });

          return;
      });
  });

})();

Can anyone explain where I'm going wrong, and why the php seems to convert or be getting bad incoming data?

share|improve this question
    
I believe that it's not json, but my understanding is that it should be json. Why is it not? –  Nathaniel Ford Aug 20 '13 at 23:14
    
Why are you trying to post in JSON anyways? –  Tom Aug 20 '13 at 23:21
    
You need to echo or print the PHP result to respond. This can be done with echo json_encode($whateverYourSendingBack);. –  PHPglue Aug 20 '13 at 23:25
    
Thanks for the help everyone; it appears that a lot of this isn't working due to jQuery version conflicts. –  Nathaniel Ford Aug 20 '13 at 23:47

4 Answers 4

You're not actually sending JSON. You're creating a JavaScript object and passing it to $.ajax which converts it to a query string and posts it(It does not convert it to JSON). You can use JSON.stringify to convert an object to JSON.

data: JSON.stringify($blah),
share|improve this answer
    
Doing this produces the exact same result. I was also told that ajax will do that for you, but I may have been misled in that. Regardless, it goes up as a query string with or without that? –  Nathaniel Ford Aug 20 '13 at 23:19
    
Well you forgot to stop the form from submitting. –  Musa Aug 20 '13 at 23:21
    
Care to elaborate? That sounds very much like what I'm seeing. –  Nathaniel Ford Aug 20 '13 at 23:21
    
You need to return false from the submit handler, not just return. –  Musa Aug 20 '13 at 23:22

Is prospectname=OMEGAK&teaserimg=kb.png&submit=Submit the json you are referring to? If so, that's not json. That's a url string. http://php.net/manual/en/function.urldecode.php

dataType: 'json' doesn't convert your data to json. It tells the server that your attempting to send json.

JSON stands for *javascript* object notation. So when you using the jquery.serializeObject(), you actually get an object in return.

Straight from php.net:

<?php
$query = "my=apples&are=green+and+red";

foreach (explode('&', $query) as $chunk) {
    $param = explode("=", $chunk);

    if ($param) {
        printf("Value for parameter \"%s\" is \"%s\"<br/>\n", urldecode($param[0]), urldecode($param[1]));
    }
}
?>
share|improve this answer
    
Unfortunately, the receiving php end needs json so converting it on that end isn't actually an option. –  Nathaniel Ford Aug 20 '13 at 23:21
    
Are you not in control of the receiving end? If not, then we need to see exactly how the PHP server that you are not in control of is parsing the data. I have never seen a PHP server require json. –  Tom Aug 20 '13 at 23:24
    
I disagree that you need access to that scope. The reason for requiring json is that the api being hit digests json, not a url encoding. This send needs to work against multiple agents. –  Nathaniel Ford Aug 20 '13 at 23:54
    
I did not say I needed access. I said we need to see how the PHP server is parsing the data. My guess is it's not doing it the same as the code you posted above. –  Tom Aug 21 '13 at 0:13

not 100% sure without seeing your entire code, but i believe since you're doing "return" in the end instead of "return false" or "e.preventDefault()", the standard submit button behavior is triggered, and the form is actually posted without ajax.

share|improve this answer

My guess is that url in your ajax method is not a php page. Change it to the path.php to test this theory. Handle the $data on your PHP page as you would with an Associative Array, then echo or print the results within json_encode() that you want to go back to handle with jQuery, like:

echo json_encode($results);
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