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In a Node.js module I'm writing I would like to open a file--i.e, with fs.readFile()--that is contained in the same directory as my module. By which I mean it is in the same directory as the ./node_modules/<module_name>/index.js file.

It looks like all relative path operations which are performed by the fs module take place relative to the directory in which Node.js is started. As such, I think I need to know how to get the path of the current Node.js module which is executing.

Thanks.

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You can use __dirname and __filename to get information about the location of the module. –  Pindatjuh Apr 14 '11 at 14:12

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up vote 16 down vote accepted

As david van brink mentioned in the comments, the correct solution is to use __dirname. This global variable will return the path of module/application.

For example:

require(__dirname + '/models');

Just to save someone from a headache.

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Why not path.join? –  polkovnikov.ph Jun 19 at 11:38

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