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I have the following line in a shell script:

/usr/local/bin/php /home/script_to_run.php;

This works fine with our setup, until I add an argument like so:

/usr/local/bin/php /home/script_to_run.php?needed_variable=1;

At which point, I get the "Could not open input file" error.

Ideas on how to get this to work?

Thanks!

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1 Answer

up vote 2 down vote accepted

There is no query string in the command line; you need to use arguments instead:

/usr/local/bin/php /home/script_to_run.php 1;

You then access the value with the $argv variable:

$value = $argv[1];

For more advanced command line argument parsing, take a look at getopt.

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