Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I'm using Laravel 4 and its built-in form component. I'm trying to set it so that I can give the form set of default values, but if the user submits and the validator fails, it will use the values from the previous input. The code below, however, always fails. The session value 'threw_error' is always true for some reason, even when the form throws errors.

It seems that everything is done with sessions, which is why I'm setting __old_input, an internal key that the form uses. What am I doing wrong? Should I be using __old_input like this, or is there a better way to achieve this goal?

I'm using resourceful controllers, so index() below is GET /, and store() is POST /.

class Admin_DetailsController extends Admin_BaseController
{
    public function index()
    {           
        $details = Detail::all();

        // this is always true for some reason?
        if(!Session::get('threw_error', false))
        {
            Session::put('__old_input', $details);          
        }

        $data['message'] = Session::get('message');

        $this->layout->nest('content', 'admin.details.index', $data);
    }

    public function store()
    {
        $validator = $this->makeValidator();
        if($validator->fails())
        {
            return Redirect::to('/admin/details')->withErrors($validator)->withInput()->with('threw_error', 1);
        }

        // process normally
    }
}

// in view
{{ Form::text('some_field') }}

Edit: This code works as expected, more or less, though Session::flashInput($details) is better than manually calling __old_input. I tried removing some fields in the form to see if it was something there, and this actually worked. In other words, I think it's an issue with either my local version of PHP, or some config or something - and not a Laravel issue.

share|improve this question

As of Laravel 4 you can do Form::model($model, array) instead of Form::open(array)

Then you don't have to pass value to the Form helper methods. It will get the value from the model, but first, it's gonna check if there is oldInput, so the value will be the old one.

Check out this method. It's a small change, but really smart one :)

But for this to work, you have to redirect back with the input

Redirect::back()->withInput();

Like so:

public function createNew()
{
    $data = array(
        'model' => new Model();
    );

    $this->layout->nest('content', 'admin.details.form', $data);
}

public function store()
{
    $validator = $this->makeValidator();
    if($validator->fails())
    {
        return Redirect::back()
            ->withErrors($validator)
            ->withInput();
    }
}

// In the view
{{ Form::model($model, array(...)) }}

    // The first time it will be null
    // But if the validation fails, it will be the old value 
    {{ Form::text('some_field', 'Some fields title') }} 

{{ Form::close()}}

PS instead of using the Session::flashInput(), you can use Input::old()

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.