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I'm trying to understand the HipHop documentation, but it's not very clear. I have a PHP script I want to compile into an executable with HipHop.

How do I pass arguments to this PHP executable by command line? And how is this received by the PHP script ($_GET['arg']?)

I want to do something like this: my_compiled_script --variablename="This is the value"

Which is then received by the script as: $_GET['variablename']

So how does that work?

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Unless Hiphop only builds executables with built-in webserver, you might get cmdline args in $_SERVER["argv"] as in regular PHP. Otherwise set QUERY_STRING= in the shell to poison $_GET –  mario Nov 5 '11 at 7:00

1 Answer 1

up vote 0 down vote accepted

Figured it out with some testing.

As mario said above, the arguments come in exactly the same format as when running PHP: they start at $argv[1] ($argv[0] is empty).

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I think you mean argv[0] –  regality Nov 8 '11 at 6:52
    
I do, thanks. Edited. –  Alasdair Nov 8 '11 at 6:57

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