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I'd like to avoid doing any needless HTTP requests on my site to improve performance. So, I'd like to include a local PHP on my server without using cURL. The problem is that the PHP I'm calling expects some parameters to be passed via HTTP GET. I'd like to keep it that way since I also want to be able to access those PHP files from other places.

What is the best way of doing this? Can I access the output of a local PHP file while giving it GET parameters?

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See if you have allow_url_fopen enabled from php.ini. –  Sarfraz Jun 12 '12 at 11:47
    
@Sarfraz Even if he does, that command would not include the script it would include the output of the script. Also, you would need allow allow_url_include to be enabled as well in order for it work. Plus you should never include stuff via HTTP anyway. Ever. –  DaveRandom Jun 12 '12 at 11:49
    
@DaveRandom: That's correct I just focused on his error :) –  Sarfraz Jun 12 '12 at 11:52

3 Answers 3

up vote 2 down vote accepted

I'd like to avoid doing any needless HTTP requests on my site to improve performance

include also makes an HTTP request when you supply an HTTP URI to it, so instead of the client's asynchronous include (for example using AJAX or an iframe) you do it synchronously on the server, therefore making the page load even slower.

So while the include may work as intended (you want to include the output, right?), it will definitely not speed up your site.

the PHP I'm calling expects some parameters to be passed via HTTP GET. I'd like to keep it that way since I also want to be able to access those PHP files from other places.

Then alter those files and set the appropriate variables before including them. Or even better, refactor it into functions. For example, if the file you want to include looks like this:

$username = $_GET['username'];
print "User: $username";

Then refactor into a function and store in a separate file:

function PrintUsername($username)
{
    print "User: $username";
}

And call it appropriately:

include('printusername.php');
PrintUsername($_GET['username']);

(You might want to throw in an isset() here and there.) Now you can alter your code that also needs this output:

include('printusername.php');
PrintUsername($someOtherVariable);

Now you don't have to rely on URL or $_GET or include magic, but simply use all functions as they're meant to.

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Is there another way of including output. I'm already using cURL at the moment and it's very slow (accessing 3 PHPs per request). –  Hassan Jun 12 '12 at 11:52
    
@Hassan yes, by using AJAX requests from the client. –  CodeCaster Jun 12 '12 at 11:53
    
Any way of getting them from the server? They're sitting right next to each other after all! –  Hassan Jun 12 '12 at 11:53
    
@Hassan then simply alter those scripts and include them directly. See edit. –  CodeCaster Jun 12 '12 at 12:14
    
I think "refactor" is an understatement :) I just spent an hour "refactoring" a single page on my site. Well, it works now, thanks! –  Hassan Jun 12 '12 at 14:00

Assuming you're on a linux box, you could exec the script and pick up the output with something like:

exec ("php myPhpFile.php arg1 arg2 arg3 > myPhpOutput.html");

then open the outputted file for read.

For this to work however (and it is ugly!) you would need to modify myPhpFile and implement a method to test for $_GET paramaters. If it doesn't find them then load the properties using argv


Improvement (I was thinking lazily :))

shell_exec will return the output as a string. so
$filecontents = shell_exec("php yourfile.php arg1 arg2 arg3...");
will return the processed output of a php file.

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exec's second param can also be given to fill an array with lines of output. So it's up to how you want your output returned. shell_exec exec –  John David Ravenscroft Jun 12 '12 at 12:51
    
Probably the most interesting answer here. Thanks, I'll look into this too! –  Hassan Jun 12 '12 at 14:01
    
You are velkom! Spotted this too. The top answer has a nice and tidy method for catching your args using getOpt() –  John David Ravenscroft Jun 12 '12 at 17:05

This is ugly, but works.

$_GET['foo'] = 1;
$_GET['bar'] = 2;
include '/path/to/file.php';
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Yes, this is the answer I arrived at when I asked a related (but different) question. The implementation in my case is exactly how you described it: ugly. –  Hassan Jun 12 '12 at 11:48
    
This is wrong in many ways, and it's not even supported anymore in the latest PHP version. You will get an error if you do this. –  rid Jun 12 '12 at 11:50
    
But thanks for answering anyway... –  Hassan Jun 12 '12 at 11:50
2  
@bsdnoobz - but it doesn't work. DaveRandom, it is invalid. Try this with PHP 5.4 and you will get an error. I have a legacy application that uses this all over the place, and it was a real pain trying to get it to work with PHP 5.4. I eventually gave up. This is the kind of practice that makes your application non-future-proof and severely limits your possibilities of growth. Bad practice is named "bad practice" for a reason... –  rid Jun 12 '12 at 11:56
1  
@Radu Which part of it causes an error? Testing on PHP 5.4.3/Apache 2.4.2/Win32 I cannot get any part of the above procedure to fail. Let me re-iterate I'm definitely not advocating this approach, but I would like to understand what part of it will not work and, more to the point, why. –  DaveRandom Jun 12 '12 at 12:16

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