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From the node manual I see that I can get the directory of a file with __dirname, but from the REPL this seems to be undefined. Is this a misunderstanding on my side or where is the error?

$ node
> console.log(__dirname)
ReferenceError: __dirname is not defined
    at repl:1:14
    at REPLServer.eval (repl.js:80:21)
    at Interface.<anonymous> (repl.js:182:12)
    at Interface.emit (events.js:67:17)
    at Interface._onLine (readline.js:162:10)
    at Interface._line (readline.js:426:8)
    at Interface._ttyWrite (readline.js:603:14)
    at ReadStream.<anonymous> (readline.js:82:12)
    at ReadStream.emit (events.js:88:20)
    at ReadStream._emitKey (tty.js:320:10)
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up vote 56 down vote accepted

__dirname is only defined in scripts. It's not available in REPL.

try make a script a.js

console.log(__dirname);

and run it:

node a.js

you will see __dirname printed.

Added background explanation: __dirname means 'The directory of this script'. In REPL, you don't have a script. Hence, __dirname would not have any real meaning.

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4  
Also you can't use some of the Global variables inside RequireJS modules. If you use RequireJS on the server side, see stackoverflow.com/questions/9027429/…. – Eye Nov 5 '12 at 8:25
    
Yeah, that should really be added to the answer Eye, because that's what got me. – Tomáš Zato Oct 12 '15 at 17:14
    
Not adding that in to the REPL's load script is obnoxious. I can't think of any reason it wouldn't be there... – jcollum Nov 18 '15 at 21:16

Seems like you could also do this:

__dirname=fs.realpathSync('.');

of course, dont forget fs=require('fs')

(it's not really global in node scripts exactly, its just defined on the module level)

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Building on the existing answers here, you could define this in your REPL:

__dirname = path.resolve(path.dirname());
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if you use nesh you can define this as part of your load script; it's nifty – jcollum Nov 18 '15 at 21:15

As @qiao said, you can't use __dirname in the node repl. However, if you need need this value in the console, you can use path.resolve() or path.dirname(). Although, path.dirname() will just give you a "." so, probably not that helpful. Be sure to require('path').

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