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I need to load a PHP file into a variable. Like include();

I have loaded a simple HTML file like this:

$Vdata = file_get_contents("textfile.txt");

But now I need to load a PHP file.

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up vote 79 down vote accepted

I suppose you want to get the content generated by PHP, if so use:

$Vdata = file_get_contents('http://YOUR_HOST/YOUR/FILE.php');

Otherwise if you want to get the source code of the PHP file, it's the same as a .txt file:

$Vdata = file_get_contents('path/to/YOUR/FILE.php');
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1  
what if i want to get " the content generated by PHP " without using http and directly use the path ? – Osa Sep 10 '12 at 9:27
4  
@Osa: Depending on your needs, you could probably use eval() or if you're dealing with more complicated code: github.com/nikic/PHP-Parser. – Alix Axel Sep 10 '12 at 9:42
2  
implementing a php parser just for that seems like a huge overkill – David Fariña Aug 29 '13 at 11:44
ob_start();
include "yourfile.php";
$myvar = ob_get_contents();
ob_end_clean();
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That works! But whenever I try to include: yourfile.php?id=3 it won't work. Any suggestions? – tvgemert Dec 21 '11 at 9:33
    
Because you are not using http anymore, you need to pass values through $_GET in that case. – Fire-Dragon-DoL Nov 19 '12 at 20:01
    
How about the images? – kta Mar 21 '13 at 14:16

If you are using http://, as eyze suggested, you will only be able to read the ouput of the PHP script. You can only read the PHP script itself if it is on the same server as your running script. You could then use something like

$Vdata = file_get_contents('/path/to/your/file.php");
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hi this only get static html. see this example. if this is the file we are going to load; ///////////////// <?php echo("text1"); ?> Text2 /////////////// this is the out put i got; //////////////////// Text2 /////////////////// – Kombuwa Aug 13 '09 at 14:34
    
@Kombuwa, could you, please, clarify your response in an edit to your original question, where you have more space to clearly explain? Thanks =) – David Thomas Aug 13 '09 at 14:39

If you want to load the file without running it through the webserver, the following should work.

$string = eval(file_get_contents("file.php"));

This will load then evaluate the file contents. The PHP file will need to be fully formed with <?php and ?> tags for eval to evaluate it.

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I like this method. Just that my file is not fully formed with <?php and ?> tags for eval to evaluate it. Is there any other way? – ItsMeDom Jul 8 '14 at 11:13

Theoretically you could just use fopen, then use stream_get_contents.

$stream = fopen("file.php","r");
$string = stream_get_contents($stream);
fclose($stream);

That should read the entire file into $string for you, and should not evaluate it. Though I'm surprised that file_get_contents didn't work when you specified the local path....

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file_get_contents() will not work if your server has *allow_url_fopen* turned off. Most shared web hosts have it turned off by default due to security risks. Also, in PHP6, the *allow_url_fopen* option will no longer exist and all functions will act as if it is permenantly set to off. So this is a very bad method to use.

Your best option to use if you are accessing the file through http is cURL

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Alternatively, you can start output buffering, do an include/require, and then stop buffering. With ob_get_contents(), you can just get the stuff that was outputted by that other PHP file into a variable.

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