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I am using this code:

function save() {
    // submit the dataform
    $.post(document.dataform.action, 
        $("#dataform").serialize(),
        function(reply) {
           //handle reply here
    });
}

This sends the right data to the server, but it arrives in $_GET. When I alter the server code to match I get the expected reply. There is a part of the query on the dataform.action. which I expected to arrive in $_GET.

How can I actually get the POST to send the data from the form so it arrives in $_POST, and thus avoid the size restrictions on GET?

I'm testing with Firefox, JQuery 9, and PHP 5.4.3

Thanks, Ian

share|improve this question
    
How exactly are you calling that "save" function? –  Pointy May 1 '13 at 18:15
    
Via an on_Click event. How could it matter? –  Ian May 1 '13 at 18:18
2  
It would matter if the <form> were still being submitted as part of the normal action of a form submit button, and its "method" were "GET" (which is the default). –  Pointy May 1 '13 at 18:19
2  
Are you preventing the form from submitting? It's possible the original submit is GET thus messing up your POST –  David Nguyen May 1 '13 at 18:20
    
The form's method is POST. There is no submit button. However there IS a query on the post action. –  Ian May 1 '13 at 18:22

3 Answers 3

$_GET takes parameter from query string so to have $_POST and $_GET just do this:

var action       = document.dataform.action;
var get_variable = "var1=v1&var2=v2..."; 
action = action+"?"+get_variable;
$.post(action, 
        $("#dataform").serialize(),
        function(reply) {
           //handle reply here
    });
share|improve this answer
    
document,dataform.actions ALREADY CONTAINS the query string. And I am quite happy for that to be sent urlencoded so it arrives in $_GET. What I need is fort the form DATA to be transmitted as if the form had been submitted as normal, and capture the reply –  Ian May 1 '13 at 18:45
function save() {
    // submit the dataform
    $.post(document.dataform.action, 
        { data: $("#dataform").serializeArray() })
    .done(function(reply) {
           //handle reply here
    });
}

then json_decode($_POST['data']); in PHP

share|improve this answer

Cracked it! The correct method is

function save() {
    // submit the dataform
    $.ajax({
    url: document.dataform.action,
    data: new FormData(document.dataform),
    cache: false,
    contentType: false,
    processData: false,
    type: 'POST',
    success: function(reply){
        if (reply.action) fetch('/content.php',reply.action);
        if (reply.content) document.getElementById('content').innerHTML=reply.content;
        if (reply.menu) document.getElementById('menu').innerHTML=reply.menu;
        if (reply.status) document.getElementById('status').innerHTML=reply.status;
        calcSize();
        }
    });
}

This will however only work with browsers that support FormData - Chrome 7+, FF4.0+, IE 10+, Opera 12+ and Safari 5+
OK for my use-case ;) Thanks for everyone's input.

share|improve this answer
    
Credit to Ralph for his answer at stackoverflow.com/questions/5392344/… –  Ian May 1 '13 at 19:42

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