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perhaps someone could help me here. I have those lines of code:

1 $(document).ready(function(){
2 if('<?php echo Yii::app()->controller->action->id?>' == 'update'){
3   if('<?php echo Yii::app()->user->id;?>' != '<?php echo $model->createUser->id; ?>'){

I'm getting,

trying to access property of a non-object (on line 3).

And it makes sense, because I have no object with that property here.

The problem is that the second if is running, even if, the first if condition returns FALSE.

Yii::app()->controller->action->id is NOT equal to 'update' so, the second IF shouldn't NEVER execute. So, I don't understand.

Can anyone please clarify whats going on here plz ?

Cheers

share|improve this question
    
should I provide more details? –  MEM Jun 15 '12 at 16:17
    
from your last comment in ernie's answer, what exactly do you want to avoid? –  bool.dev Jun 15 '12 at 19:09
    
please comment here. the error gets to the browser because YII_DEBUG and YII_TRACE_LEVEL are enabled in the entry script of the app, i.e index.php in your app's root directory, check that to confirm for yourself. –  bool.dev Jun 15 '12 at 19:48
    
afk. return here later. –  MEM Jun 15 '12 at 20:17
    
try and get your understanding of the web application flow/lifecycle more clear –  bool.dev Jun 16 '12 at 3:06

1 Answer 1

up vote 2 down vote accepted

The PHP will always evaluate, because that's happening server side, while the Javascript is going to execute on client side. By the time the code gets to the browser, the PHP has all been evaluated and replaced, leaving just Javascript. Put another way, all the PHP in your view is going to be evaluated (probably by the PHP interpreter in Apache), and the Javascript won't matter until the code runs in the browser.

You need to separate your server-side and client-side code.

Your code is failing server side, since all the PHP has to evaluate to render the Javascript, and in this case, the third PHP block:

<? if(isset($model)) echo $model->createUser->id; ?>

Looks like when the PHP is running, $model has been set, just not to the expected object.

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1  
so, let's see if I get this. The problem is due to my server-side and client-side incomprehension ? Since php will get evaluated FIRST, it will ignore the javascript part, HENCE, it will ALWAYS run, regardless the javascript conditionals. is that it ? –  MEM Jun 15 '12 at 17:04
    
Yep, that's exactly it . . . for an example, look at one of your working pages in a web browser where you used PHP within a Javascript code block and then view-source on it. You should see that all the PHP code is gone, and just the values it's evaluated to are there. –  ernie Jun 15 '12 at 17:23
2  
It will get executed but won't output anything. Items like: <?= Yii::app()->controller->action->id?> will never render anything . . . same as if you just put that code in the view, nothing will show, instead you would need to do a <?= echo Yii::app()->controller->action->id ?> –  ernie Jun 15 '12 at 17:40
1  
@MEM what ernie is saying is that your first if is javascript then your second if is also javascript, so those will not get evaluated until they reach the client browser. But your third if is php and that will get evaluated in your server before reaching the client, and that if will obviously fail as you have mentioned in your question. –  bool.dev Jun 15 '12 at 17:53
1  
NO NO NO ! This error gets to the browser, while PHP or APACHE is still executing. Regardless any document ready or not. So all this makes sense. The only issue is related with the isset that should be there. I rest my case. –  MEM Jun 15 '12 at 19:20

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