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in my layout page Cmenu visible fn Yii::app()->user->isAdmin() is not working properly when i use Yii::app()->user->isAdmin() in someother view it showing correct value but not working in layout. my code in protected/views/layouts/main.php

    <?php $this->widget('zii.widgets.CMenu',array(
        'items'=>array(
            array('label'=>'Home', 'url'=>array('/site/index'),/*'visible'=>!Yii::app()->user->isGuest*/),
            array('label'=>'Master','url'=>array('/site/master'),'visible'=>Yii::app()->user->isAdmin()),
            array('label'=>'Transaction','url'=>array('/site/transaction'),'visible'=>Yii::app()->user->isAdmin()),
            array('label'=>' Alotted Task','url'=>array('/site/alottedtask'),'visible'=>!Yii::app()->user->isGuest),    
            array('label'=>'Completed Task','url'=>array('/site/completedtask'),'visible'=>!Yii::app()->user->isGuest),
            array('label'=>'Status Update', 'url'=>array('/site/statusupdate'),'visible'=>Yii::app()->user->isAdmin()),

            array('label'=>'Login', 'url'=>array('/site/login'), 'visible'=>Yii::app()->user->isGuest),
            array('label'=>'Logout ('.Yii::app()->user->name.')', 'url'=>array('/site/logout'), 'visible'=>!Yii::app()->user->isGuest)
        ),
    )); ?>

it showing the error like

Trying to get property of non-object

Update:

My error page http://localhost/tracktest/index.php

error page

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1  
Car you provide more detail on the Trying to get property of non-object error? Which property is causing the error (isAdmin? name? isGuest?) Also - did you add an isAdmin() method to your Application's CWebUser class? Please add the the isAdmin() method to your question –  thaddeusmt Feb 16 '12 at 4:26
    
@thaddeusmt i added isAdmin() in my CWebUser.it working properly when i test the code after login.if i test the code when using as a guest its not working and giving the error i hope you understand what i am telling... –  jayanthan Feb 16 '12 at 5:54

3 Answers 3

up vote 4 down vote accepted

So this is the code that is throwing the "non-object" error:

return intval($user->role) == 1;

This means that when PHP is trying to get the role attribute of the $user object, $user is not actually an object. Looking at your code, this means that either loadUser() is not working correctly, or Yii::app()->user->id is not returning the user ID.

To test this, I would add this to your function so some test variables will be printed out:

function isAdmin() { // this should say "public function", btw
  $testId = Yii::app()->user->id;
  echo $testId;
  print_r(User::model()->findByPk($testId));
  die();
}

This should let you see if you are getting the user ID, and if the user if being loaded properly.

Good luck!

share|improve this answer
    
@thanddeusmt My error page –  jayanthan Feb 16 '12 at 6:05
    
sorry for delayed reply i am not well for few days...yii::app()->user->id; returning id properly –  jayanthan Feb 21 '12 at 6:04
    
Un-accepted the answer? Are you still having errors? –  thaddeusmt Mar 2 '12 at 15:33
    
yes having error so i changed my main page with if condition –  jayanthan Mar 3 '12 at 5:33

Use Yii::app()->user->getName()=='username' if you want to check for specific user.

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1  
it worked for me, and i replaced username wid admin to compare with and i got the functionality like isAdmin() which is suggested by some people above. This functionality is good if someone like me needs something inline instead of implementing a function by the name like isAdmin(); –  iltaf khalid Dec 22 '13 at 15:59

You can try this:
array('label' => 'Master', 'url' => array('/site/master'), 'visible' => Yii::app()->user->checkAccess(array('admin')),

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