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PHP - how to best determine if the current invocation is from CLI or web server?

I created a daily CRON job on my hosting server, which runs on UNIX, of course.

I put the following command in:

/usr/bin/php /home/myusername/public_html/foo/foo.php

And then, as expected, it executed this foo.php on a daily basis.

But this foo.php contains important information, and I don't want random people (not to be rude) going to http://www.mywebsite.com/foo/foo.php and executing the script.

So what can I do to differentiate between the CRON job, and a human user in PHP?

I've recently seen that when the CRON job is executed, no IP address is given ($_SERVER['REMOTE_ADDR'] is empty). But I'm not sure if that's a fluke.

I tried searching for this topic on Google, with no avail.

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marked as duplicate by Michael Berkowski, dev-null-dweller, hakre, Lev Levitsky, Graviton Jan 14 '13 at 3:48

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2 Answers 2

up vote 2 down vote accepted

I've used this in the past

if (php_sapi_name() != "cli") {
    throw new Exception("someone tried to run this script outside of cli");
}

The php_sapi_name() function can tell you who's running the script. Here's the doc page: php_sapi_name

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You could just put the cron script outside of the web root, say in /home/myusername/cron.

Alternatively, if this is not an option due to FTP restrictions, you can add a parameter to the cron script:

/usr/bin/php /home/myusername/....../foo.php cron

Then check:

if( $_SERVER['argv'][0] != "cron") die("This is a cron script, you cannot access it.");
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