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How do I use jQuery Form Plugin to send an ajax version of a form I am working on as a variable that can then be sent to a database? I am wanting to pull several inputs (such as order name and date) and put those in the database or organizational purposes but I want to be able to store the entire order form in the base as well so that the form can be called up and edited later if need be. jQuery Form Plugin seems ideal for doing this but it sends the form to a file destination, I am needing it to be sent to a variable so that I can then send it to a database. If anyone has any ideas on how to do this it would be greatly appreciated! Thank you so much!

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1 Answer 1

If you just want to send your form to Laravel, you just need jQuery do do it:

jQuery('#saveButton').click(function(evnt) {
    var href = $("#"+event.target.id).closest('form').attr('action');
    var form = $("#"+event.target.id).closest('form').attr('id');

    jQuery.post(href, jQuery("#"+form).serialize())
    .done(function(data) {
        if (data.success == "true") {
            /// do what you need to do in case of success
        } else {
            /// do what you need to do in case of error
        }
    })

    return false;
});

What this does:

1) Set an event click on a button with id saveButton

2) get the form action

3) get the form id

4) serialize the whole form to Json

5) POST the form to the action url

6) My controller is supposed to return some data, with a success property, which I check and do whatever I need to do in the front end

In your Laravel controller you just need to:

Input::get('email');
Input::get('password');

You can even do:

Post::create(Input::all());

Note that Input::all() gives you an array of fields, so you can remove what you don't need. This is just an example to explain that there are lots of ways to store user fields in your table, this is just one, a very simple one:

$post = Post::find(Input::get('id'));

$post->title = Input::get('title');

$post->body = Input::get('body');

$input = Input::all();

unset($input['title']);

unset($input['body']);

$post->userFields = json_encode($input);

$post->save();

As you noted in your comment, you can make use Input::except() and loops to get what you need.

If you need to use those fields with Form::model(), you can stuff them back to your model:

$post = Post::find(1);

foreach(json_decode($post->userFields) as $key => $value)
{
    $post->attributes[$key] =  $value;
}

And then pass it:

Form::model($post...);
share|improve this answer
    
This looks great, my only concern is if it will, upon being called, upload not just the default form but any additional inputs the user has created. Right now I can get json_encode and decode to get the default part of the form to fill out but the additional fields are never created and filled. But this looks very promising, I will try it right now! Thanks! –  mario Mar 24 '14 at 15:19
1  
The way it is, it will upload all inputs you have on your form. If your user managed to add some more inputs in your form, they will be uploaded as well. If you need to prevent that, you can serialize only the inputs you need to send to your app. –  Antonio Carlos Ribeiro Mar 24 '14 at 15:21
1  
You'll have to provide some more info if you need the answer to be specific. But I edited to give you some options. You'll have your data available via Input::all(), which may be used to send to directly to your database. –  Antonio Carlos Ribeiro Mar 24 '14 at 15:41
1  
You may need to create separate table, to hold those fields and create a relation between your user and your order. –  Antonio Carlos Ribeiro Mar 24 '14 at 15:51
1  
But you also can stuff those fields back to your Orders model, any attributes you add to your orders will be used by Form::model() –  Antonio Carlos Ribeiro Mar 24 '14 at 15:52

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