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I'm creating a app that requires me to run a second php script while the first script is still running.

I'm new to php programing so I'm sure there's a simple function I can use that I'm just not aware of.

Looking forward to any help...

Shane

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exec('php path/to/the/script'); –  k102 Feb 28 '12 at 5:43
    
    
Thanks @k102 I think I'll use that. I also asked a couple questions on PaulP.R.O Answer that I could use some help on... –  Shane E. Bryan Feb 28 '12 at 6:10

2 Answers 2

up vote 1 down vote accepted

Since you are new to PHP I'm guessing you're looking for the include/require (and include_once/require_once) language constructs which will execute another PHP script as if it is part of the current script.

Otherwise if you want it to run as a separate process look into exec, shell_exec, or backticks. If you need the other PHP script to run as a background process make sure to redirect stdout somewhere (a file or maybe /dev/null if you don't need it) so that your currently executing script doesn't have to wait for it to finish to continue executing.

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absolutely what i think he wants. –  Bert Feb 28 '12 at 5:53
    
I think the exec operator will work great, but if I need to pass var. how would I do that? Also will the first script continue or will it wait for a response? –  Shane E. Bryan Feb 28 '12 at 6:07
1  
@ShaneE.Bryan Are you familiar with a linux shell (and running PHP ON Linux)? exec takes in a command if you want to pass arguments to that command you can just append them to the command string separated by whitespace like '/usr/bin/php ' . $filename to run a php script whose name is stored in the variable $filename (If your php interpreter is located in /usr/bin/php). You probably also want to escape your arguments with escapeshellarg. The script will wait for a response unless you redirect stdout somewhere like: exec('/usr/bin/php ' . escapeshellarg($filename) . ' > /dev/null'); –  Paulpro Feb 28 '12 at 6:28
    
So if I have multiple var. i would code it like this <code> exec('/usr/bin/php . escapeshellarg($filename?var=$var&var2=$var2) . ' > /dev/null'); </code> –  Shane E. Bryan Feb 28 '12 at 8:21
    
Also if I run <?php phpinfo() ?> which field would include the root dir for php? –  Shane E. Bryan Feb 28 '12 at 8:30

This will actually require us to use some Javascript for an ajax call to execute our PHP and return it's data.

I prefer Jquery, which will look similar to this:

function callPHP(){           
     $.post('./filetocall.php', {variableid: 'id'}, function (response) {
                        $("#div_for_return_data").val(response);
                });
}

filetocall.php can look like anything. It's output will populate the #div_for_return_data

eg:

<?php echo $_GET['variableid']; ?>

Then just call the Jquery function from anywhere.

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