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I'm running Ruby on Windows though I don't know if that should make a difference. All I want to do is get the current working directory's absolute path. Is this possible from irb? Apparently from a script it's possible using File.expand_path(FILE)

But from irb I tried the following and got a "Permission denied" error:

File.new(Dir.new(".").path).expand
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The question is not actually clear: Do you want a) the current working directory (which is Dir.pwd) or do you want the directory where the currently running script is located (which is File.dirname(__FILE__))? Imagine calling a script from anywhere else (like ruby testdirectory/testscript.rb) here, the two will be different! –  amenthes Mar 22 at 21:13

4 Answers 4

up vote 218 down vote accepted

Dir.pwd seems to do the trick.

http://ruby-doc.org/core/Dir.html#method-c-pwd

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File.expand_path File.dirname(__FILE__) will return the directory relative to the file this command is called from.

But Dir.pwd returns the working directory (results identical to executing pwd in your terminal)

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Dir.pwd is equivalent to pwd -P. exec('pwd -L') will get the equivalent of pwd in the terminal (pwd is normally a bash builtin, and doesn't resolve symbolic links). –  Barry Kelly Jan 26 '14 at 3:27
1  
please take also a look to the often forgotten Pathname class: ruby-doc.org/stdlib-2.1.1/libdoc/pathname/rdoc/Pathname.html –  awenkhh Jun 27 '14 at 19:26
    
There is a problem, Dir.pwd will print the working directory of where the script is ran - which may not be what you want. –  Brandon Oct 13 '14 at 20:24

This will give you the working directory of the current file.

File.dirname(__FILE__)

Example:

current_file: "/Users/nemrow/SITM/folder1/folder2/amazon.rb"

result: "/Users/nemrow/SITM/folder1/folder2"

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Please note that the working directory must not be the same as the actual file. So Dir.pwd and your suggestion might potentially differ. –  Besi Feb 2 at 13:41

Since Ruby 2.0, you can also use

__dir__

do get the file's directory. So this is basically the same as

File.dirname(__FILE__)
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