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Passing PHP variables to an included file?

开发者 https://www.devze.com 2022-12-09 15:42 出处:网络
This should work, so I\'m really perplexed about why it\'s not working. I\'m checking to see if a user is logged in using a $session class method at the top of each admin page. However, I want to dyn

This should work, so I'm really perplexed about why it's not working.

I'm checking to see if a user is logged in using a $session class method at the top of each admin page. However, I want to dynamically adjust the header file depending on whether a user is logged in, and on what role level that user has.

So I check $session->is_logged_in() and then I went ahead and defined a variable called $logged = true; 开发者_StackOverflow社区to use later. I then use a $user->find_by_id($session->id) method to create a new User object and store $user->role_level in a new var called $role_level for easy use.

This is all happening near the top of the page. Further down the page past form processing, etc., is the include("../_layouts/header.php") command. Then, in the header.php file, I use little checks like if(!$logged) { ... } else { ... }. However...

I am getting the following errors:

Notice: Undefined variable: logged in /home/hips/html/_layouts/header.php on line 119
Notice: Undefined variable: logged in /home/hips/html/_layouts/header.php on line 131
Notice: Undefined variable: logged in /home/hips/html/_layouts/header.php on line 138

How can this be? I'm defining the vars in the file before I include header.php! Shouldn't that work?

FYI, everything was working fine until I tried to use $logged in the header.php file.


Variables do propagate to the included files, so it must be, that the variable is NOT set when you call the include: try checking if so, then figure out why is the variable not set at that point.

For example, if you defined $logged inside the "if" block or inside a function, then it won't propagate outside of it: you must define it in the outermost scope (at the same level at which you call the include statement). And you must define it for the case that the user is not logged in, not only for the case when the user is logged in. If the variable is not initialized to false, the check if(!$logged) will issue warning. Say $logged = false; at the beginning of your work.


Try something very simple, like

// file1.php
$var = "foobar";

// file2.php
include("file1.php"); // or require("file1.php");
die($var);

Does it work? Maybe it's a problem outside your code.


Just an opinion... instead of including code to execute in the global space and depending on another global variable being defined, include your file wherever and have the code inside header.php be organized into appropriate functions. Then where you want the output from header.php, call the appropriate function with the $logged as an argument. This will help make your code more cohesive and easier to test (as in unit tests).


Instead of if (!logged), try if (empty($logged)). That won't generate a notice in cases where the variable hasn't been set.

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