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I'm trying to pass a variable from one include file to another. This is NOT working unless I declare the variable as global in the second include file. However, I do NOT need to declare it as global in the file that is calling the first include. For example:


front.inc:

$name = 'james';

index.php:

include('front.inc');
echo $name;
include('end.inc');

output: james


end.inc:

echo $name;

output: nothing


IF I declare global $name prior to echoing $name in end.inc, then it works properly. The accepted answer to this post explains that this depends on your server configuration: Passing variables in PHP from one file to another

I'm using an Apache server. How would I configure it so that declaring $name to be global is not necessary? Are there advantages/disadvantages to one vs. the other?

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2  
includes are not like functions. includes do not break the variable scope. it's as if you copy pasted the include files contents directly into the calling script. –  dqhendricks Jan 13 '11 at 1:32
2  
is the echo in end.inc within a function? –  dqhendricks Jan 13 '11 at 1:32
1  
that would break the variable scope. and in that case you should probably pass $name to the function in an argument. –  dqhendricks Jan 13 '11 at 1:34
    
This should work as written! –  deceze Jan 13 '11 at 1:36
    
the echo in end.inc is not inside a function. Assume that the three files I described above contain no more and no less than exactly what I wrote. –  maxedison Jan 14 '11 at 21:01

4 Answers 4

up vote 20 down vote accepted

When including files in PHP, it acts like the code exists within the file they are being included from. Imagine copy and pasting the code from within each of your included files directly into your index.php. That is how PHP works with includes.

So, in your example, since you've set a variable called $name in your front.inc file, and then included both front.inc and end.inc in your index.php, you will be able to echo the variable $name anywhere after the include of front.inc within your index.php. Again, PHP processes your index.php as if the code from the two files you are including are part of the file.

When you place an echo within an included file, to a variable that is not defined within itself, you're not going to get a result because it is treated separately then any other included file.

In other words, to do the behavior you're expecting, you will need to define it as a global.

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8  
Your response seems to contradict itself. You said a couple times that including a file is the same as if all the code was simply part of one file. Therefore, what I described in my post would be equivalent to: $name = 'james'; echo $name; echo $name; -- That should produce jamesjames. But your second-to-last paragraph contradicts what I just described. Perhaps what you mean is that ONLY the file making the include call has access to the included file's variables, so other included files do NOT have access to those variables. Is that correct? –  maxedison Jan 14 '11 at 21:00
5  
Yeah, that sounds correct. Sorry if I what I said was confusing. I edited it like 5 times because I was having a really hard to describing the process without getting you lost. So, the parent file has access to variables in both included files, but the included file doesn't have access to the other included file. If that makes any sense. –  Michael Irigoyen Jan 14 '11 at 21:10
    
perfect. thanks michael. –  maxedison Jan 14 '11 at 22:50

Here is a pitfall to avoid. In case you need to access your variable $name within a function, you need to say "global $name;" at the beginning of that function. You need to repeat this for each function in the same file.

include('front.inc');
global $name;

function foo() {
  echo $name;
}

function bar() {
  echo $name;
}

foo();
bar();

will only show errors. The correct way to do that would be:

include('front.inc');

function foo() {
  global $name;
  echo $name;
}

function bar() {
  global $name;
  echo $name;
}

foo();
bar();
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I have a strange solution to that. in the file end.inc, add this line:

$name=$name;

Then the echo would work.

I hit into this solution in my project, without a good explanation why it worked like this.

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I just had this problem, turned out it was because I was using require_once and included the same file twice causing the variable to be defined after the first included instance

like this

require_once("file.php");

$var = "sandwich";

require_once("file.php");

Won't work! $var will not be defined in file.php.

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