9

I have an existing HTML form that I'm trying to update to use jQuery.load(). How can I pass all of the elements of the form as POST parameters rather than having to specify which parameters to pass?

The form elements are created dynamically by a script and the number of elements as well as the name of the elements varies considerably to the extent that it's not practical to specify which parameters to pass via AJAX/POST. Is there a simple way to pass to jQuery.load() all of the elements within the <form></form> tags as if the form was submitted traditionally?

19

You can use .serialize() to serialize all of the inputs of the form for submitting along with your jQuery.load() call.

$('form').serialize()

For example, using jQuery.load() (only does GET unless you pass it an object for data, then POST)

$.load(
    'postTo.php', 
    $('#yourFormId').serialize(), 
    complete(responseText, textStatus, XMLHttpRequest){
        //do your processing after the fact
}))

Using, jQuery.ajax(), you can make it POST

$.ajax({
    'url': 'postTo.php',
    'type': 'POST',
    'data': $('#yourFormId').serialize(),
    'success': function(result){
         //process here
    }
});

See: http://api.jquery.com/jQuery.ajax/

  • How can I apply this in a way that would duplicate the normal functionality of submitting a form using POST? I'm trying to get the results in the same format ($_POST) array, which contains nested arrays. – Joe M. Feb 16 '12 at 20:48
  • Ah, you won't be able to POST with load() as it uses GET. You'll want to use $.ajax or something else to actually change the method to POST. I'll update my original post to show this. – derekaug Feb 16 '12 at 20:57
  • 1
    Have you considered using $.post() ? – Nick Bork Feb 16 '12 at 20:57
  • Actually, scratch that, you should be able to do POST through $.load after reading it, you'll have to use something other than .serialize though. Let me look into it. – derekaug Feb 16 '12 at 20:58
  • You'd have to write your own function to spit the form out as JSON if you're going to want to use $.load, I'm going to update my post to show how to do it using $.ajax – derekaug Feb 16 '12 at 21:01
28

Easy: When you gather your form data and past it as the second parameter to load(), use serializeArray(data), and don't use serialize(data), as the currently accepted answer recommends.

serialize() returns a string, whereas serializeArray() returns an object. load() sends a POST if the data is an object. If data is a string, load() sends a GET.

  • 2
    This should be the right answer. – user2233706 Nov 5 '14 at 5:13
  • both the answers helped a lot. Using $.load was able to change the given div, using ajax call very easily, but couldn't find the same way to do it in $.ajax. – Babulu May 26 '16 at 0:54

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