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I'm trying to get a reference to the script passed to the ruby interpreter. For example, if I'm running ruby foo.rb I want to get a reference to the foo.rb file.

I think in Python this would be accessible through sys.argv[0]. One could call __FILE__ however this is not solution I'm looking for, since __FILE__ yields the file inside which the currently execute code lies in.

Is there any way to do that?

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2 Answers 2

up vote 25 down vote accepted

I found $0 is the name of the file used to start the program. Easy enough.

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6  
alse $PROGRAM_NAME –  Victor Deryagin Dec 20 '11 at 14:58

Use methods in the File class to manipulate FILE

Inside test.rb, I have

puts __FILE__
puts File.dirname(__FILE__)
puts File.basename(__FILE__)

When you run,

ruby a/b/test.rb

You get

a/b/test.rb
a/b
test.rb
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will not work softwareapprenticeship.wordpress.com/2009/05/20/… –  Bohdan Dec 20 '11 at 15:09
    
As said _ _ FILE _ _ gets the current file of the executing script. That is it for code in test.rb it will always return test.rb, for code in something_else.rb it will always return something_else.rb. My question was to return the script initially run by ruby interpreter. –  Victor Blaga Dec 20 '11 at 15:12
    
This is the answer I was looking for. When running files from irb, I do not want $0 to tell me that the program name is irb, but I want to know which script file is being executed. –  Boris Stitnicky Apr 16 '14 at 2:49

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