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I know there are alot of different questions about this but none of them seem to pertain to me. I have an ajax request as follows:

var responsePacket;
$.ajax({
    dataType: 'json',
    type:'POST',
    data:{
        "updatePacket":{
            "job":"name-update",
            "firstName":firstName,
            "lastName":lastName
        }
    },
    processData: false,
    url:'modify.php',
    success: function(json){
        console.log(json);
        responsePacket = json;

        if(responsePacket.updateStatus==true){
            genAlertAlignAndShow('Name Successfully Updated', false, 4000);
        }
        else{
            genErrorAlignAndShow('Name Update Failed!', false, 4000);
        }
    }
})

And my PHP on the other end are as follows:

$updatePacket = json_decode($_POST['updatePacket'], true);
//and I access variables from the JSON Object like this:
$job = $updatePacket['job'];

In response to the AJAX, the PHP file will punch out a simple JSON object, and yes my headers are set to application/json. This is how I a output a JSON response, I have tested it and it appears to get back to the AJAX Request when I rig it to return a static response:

$responsePacket = array("updateStatus"=>true);
echo json_encode($responsePacket);

But Here Is The Problem As you can see I output the data to the console, but all it says is null which I have deduced is indicative of the JSON not getting to the PHP correctly. So, is there a proper way to create JSON Objects and prepare an AJAX request that will get the data to the PHP script intact.

I have been grappling with this problem for about 3 hours now, ANY suggestions are welcome.

share|improve this question
    
var_dump($_POST); – Dan Grossman Jul 19 '11 at 5:12
    
I've copied to code above and create a file named modify.php and your code seems to work fine for me. I was able to see that updateStatus is true. Do you have an if statement somewhere that handles a case when updateStatus is false? Is is possible that the problem lies there? – Francois Deschenes Jul 19 '11 at 5:22

I believe $_POST['updatePacket'] is not actually a json string. Try to access it like this instead:

$updatePacket = $_POST['updatePacket'];
$job = $updatePacket['job'];

No need to json_decode() it. From the json_decode() manual (return value):

NULL is returned if the json cannot be decoded...

Give it a try. As mentioned in the comments, var_dump($_POST); should be the first thing you try, to ensure you're getting what you think you are.

share|improve this answer
up vote 0 down vote accepted

I figured it out. Here is my AJAX Requst:

$.post('modify.php', { job: "name-update", lastName: lastName }, function(data){
    console.log(data);
})

The Problem:
When declaring data for an AJAX Post request putting quotes on the variable names will make the variables inaccessible to the receiving script.

share|improve this answer

You can easily make the time consuming issue of getting form data in a clean way with jquery, or javascript alone.

All you need to do is .serialize() the data. An example is here.

$( "form" ).on( "submit", function( event ) {
  event.preventDefault();
  console.log( $( this ).serialize() );
});

Once it is done you can transform a string that looks like this.

"param1=someVal&param2=someOtherVal"

with this

$params = array();
parse_str($_GET, $params);

with this usage you also want to filter the data and you should do this prior to the above.

http://php.net/manual/en/function.filter-input.php

Do this is less time consuming then listing each one individually in your ajax. You can also create a function to do this so you aren't continually writing ajax boilerplate code.

share|improve this answer

You are doing it wrong. You don't send a JSON object to the server, you send key/value pairs. And it's what jQuery expects. Do it like this instead:

data: {
    "job": "name-update",
    "firstName": firstName,
    "lastName": lastName
},

and access the values like this:

$job = $_POST['job'];
share|improve this answer
    
This is not the only way to do it. If you have a large form it would be much easier to serialize the form. That is why the function exists. It also gives you the ability to use a function repeatedly. – Goddard Oct 7 '15 at 19:48
    
Why the down vote? Based on his example he was doing it wrong. Just take a look at the accepted answer and compare to mine! He got it write but the "why" is wrong. You should go and down vote that too! – fromvega Oct 9 '15 at 3:55

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