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this is my first post.

I'm new to Yii framework.

I'm having a problem now with rendering view. I get an undefined variable error when I render Controller.

I don't understand why I get an undefined variable error although the variable getting error is surrounded with if statement.

the code below is what I simplified my code that I'm actually working on.

Please help me out! I'd like to know the reason why Im getting an undefined variable error and also I'd like to know how to solve this problem.

Thanks very much in advance!!!

+++ Controller +++

class CategoryController extends Controller
{

    public function actionIndex()
    {

        $flag = false;

            if($flag){

                $this->render('index', array('test'=>$flag));

            }


        //This causes "Undefined variable:test" Error.
        $this->render('index');

        //This works fine.
        //$this->render('index', array('test'=>$flag));

    }


}

+++ View(this is rendered with layout view. +++

<?php 
if($test){ 
    echo "$test is false";
}else{
    echo "$test is true";
}
?>
share|improve this question
    
Because if($test) still requires a variable to be defined. If you want to test if a variable exists, use if(isset($test)). –  DCoder Aug 9 '13 at 8:51
    
shouldn't it be something like $this->test –  DevZer0 Aug 9 '13 at 8:57
    
>DCoder Thanks, it works!! –  Hayato Aug 9 '13 at 9:23

1 Answer 1

up vote 1 down vote accepted

It's a fact that you receive an error since attempts to access a $test in your View without passing it through the Controllers render is wrong.

You'd pass varible with the rendering function all the time or just check if it is set if(isset($test)) in your View file.

Cheers!

share|improve this answer
    
<?php if(isset($test)){ echo "$test is false"; }else{ echo "$test is true"; } ?> –  Hayato Aug 9 '13 at 9:00
    
Thanks so much!!! I didn't know I should use "isset". –  Hayato Aug 9 '13 at 9:24
1  
But when you write a $variable between doble "", PHP evaluates this variable. And in 'else' when you print: echo "$test is true"; the php displays the value of the variable. Put this between '$test is true' simple. –  Daniel Vaquero Aug 9 '13 at 9:42
    
>Daniel Thanks!! –  Hayato Aug 9 '13 at 10:56

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