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I've successfully posted a single array, but I can't figure out how to send more than one array in an AJAX post. Here is my code for one array:

var a = new Array();
// fill array
var a_post = {};
a_post['array1[]'] = a;

$.ajax({
    url: "submitOrder.php",
    data: a_post,
    type: 'post',
    success: function(data) {
        alert(data);
    }
});

And in submitOrder.php I have:

$array1= $_POST['array1'];

foreach ($array1 as $a => $b)
echo "$array1[$a] <br />";

This works fine. However, when I try to add a second array b_post to the data: field, it doesn't work. I tried data: {a_post, b_post}, and a few variations of that, but I can't get it to work properly. While I'm at it, how would I then load submitOrder.php after posting rather than show an alert of the data?

UPDATE

Using Nicolas' suggestion, I got this to work changing the data field to:

data: {'array1':JSON.stringify(a), 'array2':JSON.stringify(b)},

However, I also need to add the rest of the form data that has been input by the user. I can get this data with $(this).serialize() but if I try to add that to the data field, it does not work. How can I add this data to the above line?

Thanks.

SOLUTION

What ended up working the way I originally had hoped for (with Nicolas' help):

var formData = $(this).serializeArray();
var a_string = JSON.stringify(a);
formData.push({name: 'array1', value: a_string});
var b_string = JSON.stringify(b);
formData.push({name: 'array2', value: b_string});

$.ajax({
    url: "submitOrder.php",
    data: formData,
    type: 'post',
    success: function(data) {
        alert(data);
    }
});            
share|improve this question

1 Answer 1

up vote 1 down vote accepted

The data should be encapsuled this way

data: {'first_array':JSON.stringify(array1),'second_array':JSON.stringify(array2)}

Then in PHP:

$array1 = json_decode($_POST['first_array']);
$array2 = json_decode($_POST['second_array']);

You can add the rest of the inputs as well.

data: {'first_array':JSON.stringify(array1),'second_array':JSON.stringify(array2),'input1':$(input[name="input1"]).val()}

Just repeat with all the inputs you want to send.

'input1':$(input[name="input1"]).val(),'input2':$(input[name="input2"]).val(),... etc
share|improve this answer
    
This is working nicely for my purposes, however I'd also like to include my standard form data as well. The easiest way to do this would be adding $(this).serialize() to the data field, but this is not allowed. How could I also include the rest of the input data from the form? –  Kevin_TA Jun 4 '12 at 20:43
    
Added what you asked for –  Nicolás Torres Jun 4 '12 at 20:56
2  
Thanks. I've updated my question with the full solution that worked. –  Kevin_TA Jun 4 '12 at 22:34

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