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so im working on a page to learn Yii. this is it: http://devcave.freeiz.com/

What i am trying to do is, when i click on login, a div is sliding down, where the login.php form should be. The question is how do i render that into the main.php's div tag.

i tryed $this->renderPartial('//site/login',array('model'=>$model)); , but i get Undefined variable: model error. I read trough the Understanding yii view rendering flow but it seems i didnt quit get the point.

Any suggestions please?

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2 Answers 2

up vote 5 down vote accepted

Use this:

$this->renderPartial('site/login',array('model'=>new LoginForm));

And in login view you should define action like this:

$form=$this->beginWidget('CActiveForm', array(
    // ...
    'action' => $this->createUrl( 'site/login' ),
    // ...
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its working. I need to format my login.php form now to fit in that box, cuase it looks like this now: devcave.freeiz.com Could you explain why it works now. Is it cause of the action thing? Cause i already did the array('model'=>new LoginForm). –  Barta Tamás Jun 22 '12 at 19:21
    
@Toma - You were using $model before as a variable that hadn't been defined. Boris' code works because he explicitly ensured that the 'model' passed to the view via renderPartial() was defined . . . –  ernie Jun 22 '12 at 21:05
    
i know dont get me wrong, befor Boris posted the answer i tryed that 'model'=>new LoginForm, but whitout the action=>.... so probably there is the sullotion to the problem. –  Barta Tamás Jun 23 '12 at 9:18
1  
Let say you are using renderPartial part only, but in the view action wasn't set. And this renderPartial is called from site/index view. In this case form's action at the login view, will point to site/index, in which action you don't have validation or any kind of processing of the LoginForm. That's why setting action to site/login works. Because form will submit user's data to the site/login action, where is the validation and so on for the LoginForm. e.g. if you don't define action for your CActiveForm Yii will set current controller's action. –  Boris Belenski Jun 23 '12 at 10:55

The error is that you didn't defined a variable named $model in your controller and this variable is needed in the View login.

In your controller when you call

$this->render('yourView', array());

you'll have to add in the second array the datas that you want to pass to the Login view

$this->render('yourView', array('model'=>$model));

Don't hesitate to post your code if you need a more specific answer!

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uhh well there is not much to post, cause i dont really know what i have to do. In my controller i know there is a $model = new LoginForm. That is creating the model. So normally when i go on the login button, in the main content area the login for loaded. But i want it to be loaded in the main.php's div as u can see in the link i posted. –  Barta Tamás Jun 22 '12 at 18:15

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