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I have 2 type of views that I'll be showing the users: the login page and all the other pages where you'll be able to see a menu. If you aren't logged in, you won't be seeing the menu.

What I trying to achieve now is use 1 template where the header and the footer is loaded automatically and the content is dynamic depending on which controller called the view.

At the moment I have this in my login controller

$data['content'] = 'login_view';
$data['menu'] = 'nomenu';
$this->load->view('templates/template', $data);

and this is what I have in my Logged in controllers

$data['content'] = 'profile_view';
$this->load->view('templates/template', $data);

Like you can see I won't be sending $data['menu']

and my view is like so:

<?php $this->load->view('templates/header'); ?>
<?php 
    if($menu == 'nomenu'){

    }   
    else{
        $this->load->view($menu);
    }
?>
<?php $this->load->view($content); ?>
<?php $this->load->view('templates/footer'); ?>

The problem here is that my logged in controller

A PHP Error was encountered
Severity: Notice

Message: Undefined variable: menu

Filename: templates/template.php

Line Number: 7

Is there a way to check if my $menu exists because I'll only be sending $menu if it is the login view, else I wont.

share|improve this question
    
Don't check if a variable is "undefined". Just ensure that it can't be - use an appropriate default/sentinel as required to make sure that it is "defined". This creates cleaner code in the end. Consider that many programming languages prohibit using an "undefined" variable and consider it an error in the code that tries to do so. –  user2246674 Jul 20 '13 at 18:37
    
I know that is a possible solution, but then I'll always have to send data[menu] in every controller, but I only want to send it when it comes from the login controller –  mXX Jul 20 '13 at 18:40
    
That's what I would do! Don't use "undefined" variables! On the other hand, I find it OK to use map collections with optional keys. –  user2246674 Jul 20 '13 at 18:41
    
I don't think that's a very good way to program :) You need to write efficient code that's why I'm asking it here to hope to learn something new :D –  mXX Jul 20 '13 at 18:43

2 Answers 2

up vote 0 down vote accepted

Its simple just use the isset to check that variable is defined or not

<?php $this->load->view('templates/header'); ?>
<?php 
    if(isset($menu) && $menu== 'nomenu'){

    }   
    else{
        $this->load->view($menu);
    }
?>
<?php $this->load->view($content); ?>
<?php $this->load->view('templates/footer'); ?>

you probably put the load in your if check because if $menu is not set then in else case it will fire the undefined error you should do it like this

<?php $this->load->view('templates/header'); ?>
<?php 
    if(isset($menu) && $menu== 'nomenu'){
   $this->load->view($menu);
    }   
    else{
        $this->load->view('load other view');
    }
?>
<?php $this->load->view($content); ?>
<?php $this->load->view('templates/footer'); ?>
share|improve this answer
    
This still gives me Undefined variable: menu –  mXX Jul 20 '13 at 18:39
    
see my updated answer it was because your else case –  M Khalid Junaid Jul 20 '13 at 18:43
    
Yep that did the trick. Thanks for pointing that out –  mXX Jul 20 '13 at 18:46
    
You are welcome man –  M Khalid Junaid Jul 20 '13 at 18:46

Or send $data['menu'] = FALSE ; on the 2nd controller

share|improve this answer
    
Can't do that, because later there will be more controllers, and then I'll have to add that in every controller –  mXX Jul 21 '13 at 10:42

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