Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have a php file called sample.php with the following content:

<?php
echo "Hello World!";
?>

And what I want to do, is to run this php script using a second php script.

I think shell_exec could help me, but I don't know its syntax.

By the way, I want to execute this files with cpanel. So I have to execute the shell.

Is there any way to do this?

share|improve this question
    
You'd rather execute it in another process, invoking the shell and all that, than simply include it? – cHao Dec 9 '13 at 5:12
    
i didnt get you – Sanjay Rathod Dec 9 '13 at 5:13
    
You can say include "other_script.php"; to run the script within the same PHP instance, rather than spawning another interpreter. There are valid reasons to want a distinct process...but unless you have to, include is usually better. – cHao Dec 9 '13 at 5:16
    
No i have to run through it shell because i want to make an php online editor – Sanjay Rathod Dec 9 '13 at 5:18
    
I had tried this $script_output = shell_exec("php $myfile 2> output"); but this code return nothing. – Sanjay Rathod Dec 9 '13 at 5:22
up vote 5 down vote accepted

If you need to write a php file's output into a variable use the ob_start and ob_get_contents functions. See below:

<?php
    ob_start();
    include('myfile.php');
    $myStr = ob_get_contents();
    ob_end_clean();
    echo '>>>>' . $myStr . '<<<<';
?>

So if your 'myfile.php' contains this:

<?php
    echo 'test';
?>

Then your output will be:

>>>>test<<<<
share|improve this answer
    
Hi i had tried your suggestion. It worked. But i am taking data from editor and storing that data into file using this code $d=rand(); $myfile=$d.".php"; //file_put_contents($myfile,"code: ",FILE_APPEND); file_put_contents($myfile,"<?php "."\n",FILE_APPEND); file_put_contents($myfile,$code."\n",FILE_APPEND); file_put_contents($myfile,"?>"."\n",FILE_APPEND); so you can understand from my code that each time the file name should be different. i had tried this include($myfile); but it returns an error that no such file is found. So how can i do this – Sanjay Rathod Dec 9 '13 at 5:46
    
I'm not sure I see the problem. Just include the correct file. If it's named differently every time shouldn't you have a handle to the name of it somewhere? – Randy Dec 11 '13 at 13:33

You can use cURL for remote requests. The below is from php.net:

<?php
// create a new cURL resource
$ch = curl_init();

// set URL and other appropriate options
curl_setopt($ch, CURLOPT_URL, "http://www.example.com/");
curl_setopt($ch, CURLOPT_HEADER, 0);

// grab URL and pass it to the browser
curl_exec($ch);

// close cURL resource, and free up system resources
curl_close($ch);
?>

Here's a good tutorial: http://www.sitepoint.com/using-curl-for-remote-requests/

Consider watching this YouTube video here as well: http://www.youtube.com/watch?v=M2HLGZJi0Hk

share|improve this answer

You can try this:

Main PHP file

<?php
// change path/to/php according to how your system is setup
// examples: /usr/bin/php or /opt/lampp/bin/php
echo shell_exec("/path/to/php /path/to/php_script/script.php");
echo "<br/>Awesome!!!"
?>

Secondary PHP file

<?php
echo "Hello World!";
?>

Output when running Main PHP file

Hello World!
Awesome!!!

Hope it helps you.

share|improve this answer
    
It is also return empty data. How can i find what is the error – Sanjay Rathod Dec 9 '13 at 5:28
    
If "Hello World!" above is not displayed, the error be displayed instead because of the "echo" before "shell_exec". – sagunms Dec 9 '13 at 5:48

Try this:

<?php
// change path/to/php according to how your system is setup
// examples: /usr/bin/php or /opt/lampp/bin/php
$output = shell_exec("/path/to/php /path/to/php_script/script.php");
print_r($output);
?>

This May Help you.

share|improve this answer

It's important to stress that including/executing user-generated code is dangerous. Using a system call (exec, shell_exec, system) instead of include helps separate the execution context, but it's not much safer. Consider proper sanitation or sand-boxing.

With that in mind, here is a working example including generating the (temporary) file, executing it, and cleanup:

<?php
   // test content  
   $code = <<<PHP
   echo "test";
PHP;

   // create temporary file
   $d=rand();
   $myfile="$d.php";
   file_put_contents($myfile,"<?php\n$code\n?>");

   // start capture output
   ob_start();

   // include generate file
   // NOTE: user-provided code is unsafe, they could e.g. replace this file.
   include($myfile);

   // get capture output
   $result = ob_get_clean();

   // remove temporary file
   unlink($myfile);

   // output result
   echo "================\n" . $result . "\n================\n" ;

Output:

================
test
================
share|improve this answer

Go to terminal and type

php filename.php

filename.php should be the name of file you want to execute!

share|improve this answer
terminal view:
abgth@ubuntu:/var/www$ cat > test.php

  <?php
      echo shell_exec("php5 /var/www/check.php");     
  ?>

abgth@ubuntu:/var/www$ cat > check.php
  <?php
      echo 'hi';
  ?>
abgth@ubuntu:/var/www$ php5 test.php
hi

I hope you are looking for this

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.