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I have managed to create a crontab,

for example, * * * * * php /my/directory/file.php

I want to pass a variable from this crontab to read it inside file.php

how can I do that?

Thanks.

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3 Answers 3

up vote 6 down vote accepted

Bear in mind that running PHP from the shell is completely different from running it in a web server environment. If you haven't done command-line programming before, you may run into some surprises.

That said, the usual way to pass information into a command is by putting it on the command line. If you do this:

 php /my/directory/file.php "some value" "some other value"

Then inside your script, $argv[1] will be set to "some value" and $argv[2] will be set to "some other value". ($argv[0] will be set to "/my/directory/file.php").

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I tried that, it didn't work. do I have to put the second argument between quotations so I can read it there? because I didn't use quotations in the command. –  Hesham Saeed Apr 22 '12 at 1:00
    
Is your PHP built for the command-line? It's a different SAPI, and requires a different PHP binary from the one you use for CGIs. –  Mark Reed Apr 22 '12 at 1:11
    
I use the command shell_exec("command"); to create crontabs –  Hesham Saeed Apr 22 '12 at 1:12
    
I figured it out (no need for quotations), thanks a lot. –  Hesham Saeed Apr 22 '12 at 1:30

When you execute a PHP script from command line, you can access the variable count from $argc and the actual values in the array $argv. A simple example.

Consider test.php

<?php
printf("%d arguments given:\n", $argc);
print_r($argv);

Executing this using php test.php a b c:

4 arguments given:
Array
(
    [0] => test.php
    [1] => a
    [2] => b
    [3] => c
)
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+1 for your explanation. –  Hesham Saeed Apr 22 '12 at 1:31

May I add to the $argv answers that for more sophisticated command-line parameters handling you might want to use getopt() : http://www.php.net/manual/en/function.getopt.php

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