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I have a blog structured with several different php files (header, footer, main, etc.). I want to create a PHP file called adv.php that contains a var that needs to be retrieved in all the other PHP files. I would like to include the adv.php file ONLY in the header.php, and make sure that the var still works in footer.php, main.php, and so on.

I tried and even with global vars, this doesn't seem to work. How can I fix this? Again, I would like to only include the adv.php file once in header.php and not in every single php file.

EDIT

Here is a simplified version of the code with only relevant parts:

adv.php

<?php $ad300_top_right_index = "RTB"; ?>

header.php

<?php include_once('adv.php');  ?>

main.php

<?php if  ( $ad300_top_right_index == "RTB" ) { ?>

show code here

<?php } else { ?>

show some other code here

<?php } ?>

About the inclusions: it's a Wordpress template, where the resulting page will include header.php and main.php, and header.php includes adv.php. Of course adv.php gets included before I try to use the var in main.php.

  • Perhaps sessions? – Jay Blanchard Dec 14 '15 at 16:57
  • are you retreiving the var after you have included the file containing it? – atoms Dec 14 '15 at 16:57
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    include/require act as if the contents of the included file are literally cut&paste into the spot where the include directive is. as far as the later code is concerned, there's no difference between including a file and having it literally part of the main file itself. you just have to be aware of PHP's scoping rules. – Marc B Dec 14 '15 at 16:58
  • Are you attempting to use this variable in a function in one of the other included scripts Variable Scope in the manual – RiggsFolly Dec 14 '15 at 16:58
  • Yes, the var is called after the include (this is why i choose to add the include in the header). – Nicolò Canal Dec 14 '15 at 18:22
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You haven't shown any code, but there is NO reason for a var included in one file to not be visible in the other:

a.php

<?php
$x = 7;

b.php

<?php
echo $x, "\n";

z.php

<?php
echo "#1 - startup\n";
echo $x, "\n";

echo "#2 - including a\n";
include('a.php');

echo "#3 - included\n";
echo $x, "\n";

echo "#4 - including b\n";
include('b.php');

echo "#5 - included\n";

Output of running z.php:

#1 - startup
PHP Notice:  Undefined variable: x in /home/marc/z.php on line 3

#2 - including a
#3 - included
7
#4 - including b
7
#5 - included

Note that 7 is output as expected.

If you're not getting your var, then there's something OTHER than php causing the problem, e.g. not understanding scoping rules.

  • Thanks! I added the relevant code in my original question. I am probably missing something (I'm not a PHP expert, really). Could the problem be that I'm not echoing the var, but just using it as a hidden string to store a content that I'm then using in a conditional? – Nicolò Canal Dec 15 '15 at 11:05
  • not really, but it is wordpress. are you sure that your include() is being executed at the top-level scope? you may have to declare the var global – Marc B Dec 15 '15 at 14:22

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