Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I'm making a function for my users where they can upload large XML files to synchronize with my database.

When a user uploads a file to upload.php, I want to start processing the data in the background with process.php, preferably from a shell command, and redirect the user to status.php, which shows the process of the synchronization.

I need to pass some variables to the process.php script while executing it, either at least one variable with the user id and put the other variables into a text file, (Would probably prefer this so I wont have to put to much data into the exec() command.) or the user id and a bunch of $_POST variables.

One solution I had in mind is executing the PHP script like this:

exec("php -f ./process.php > /dev/null 2>/dev/null &"); 

This allows me to lock away process.php from http access, which is good since it's a process taking script. The only thing I need here is to pass a variable somehow, but i don't know how to do it.

So my main question is:

How do i pass a variable in the above solution?

Or do any of you have a better solution to doing this? Possibly one where i wont have to go through exec()? Keep in mind that i do not want the user to wait for the script to execute, and i need to pass at least one variable.

Update: For future reference, remember to use escapeshellarg() when passing arguments through exec() or likewise functions.

share|improve this question
up vote 4 down vote accepted

You test use it

exec("php -f ./process.php var1 var2 > /dev/null 2>/dev/null &"); 

And if you like get these variables values can acces with global variable $argv. If you print this var show same:

print_r($argv);


Array
(
    [0] => process.php
    [1] => var1
    [2] => var2
)
share|improve this answer
    
Thanks, works like a charm. :P – Kristoffer la Cour Jul 16 '11 at 22:33

You can pass parameters like the following.

// call process.php
exec("php -f ./process.php foo=bar bar=foo > /dev/null 2>/dev/null &"); 

// process.php
if ($argc > 0) {
    for ($i=1;$i < $argc;$i++) {
        parse_str($argv[$i],$tmp);
        $_REQUEST = array_merge($_REQUEST, $tmp);
    }
}

var_dump($_REQUEST);
share|improve this answer

I don't really understood your goal, but to pass an argument to an PHP-script works similar to any other shell scripts. See: http://www.php.net/manual/en/features.commandline.usage.php (Example #2)

"When a user uploads a file […], I want to start processing the data in the background" - You can't access an upload before it is finished, in PHP using CGI.

share|improve this answer
    
The file will be saved before process.php is executed, don't worry. And thanks for the link. – Kristoffer la Cour Jul 16 '11 at 22:47

Here is my solution.

The advantage is that you can use this script for command line usage as well as for regular web usage. In case you call it from cmd the $argv variable is set, so the parse_str() part extracts the variables and puts them into the $_GET array. In case you call it from the web the $argv is not set so the values come from the url.

// executingScript.php
// You have to make percent escaping yourself
exec("php -f ./executedScript.php foo=bar%20foo bar=foo%20bar > /dev/null 2>/dev/null &");

// executedScript.php
// The if-statement avoids crashing when calling the script from the web
if (isset($argv)) {
    parse_str(implode('&', array_slice($argv, 1)), $_GET);
}

This will make you able to access the variables as usual:

echo $_GET["foo"] // outputs "bar foo"
echo $_GET["bar"] // outputs "foo bar"
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.