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I'm wondering if there is a best way or best practice to get the full path of application in Node.js. Example: I have a a module in sub folder /apps/myapp/data/models/mymodel.js, and I would like to get the full path of the app (not full path of the file), which will return me /apps/myapp, how do I do that? I know _dirname or _file is only relative to the file itself but not the full path of the app.

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I found my own answer: path.dirname(process.mainModule.filename) –  Nam Nguyen Sep 6 '13 at 4:44

2 Answers 2

up vote 7 down vote accepted

There's probably a better solution, BUT this should work:

var path = require('path');

// find the first module to be loaded
var topModule = module;

while(topModule.parent)
  topModule = topModule.parent;

var appDir = path.dirname(topModule.filename);
console.log(appDir);

EDIT: Andreas proposed a better solution in the comments:

path.dirname(require.main.filename)

EDIT: another solution by Nam Nguyen

path.dirname(process.mainModule.filename)
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woo.. I did not expect that complicated but I will try that and thanks. –  Nam Nguyen Sep 4 '13 at 18:03
    
path.dirname(require.main.filename) should do the exact same thing. Note that this (as well as OP's) solution will fail if you run the app through another app (pm2, forever or mocha being common cases). –  Andreas Hultgren Sep 4 '13 at 18:41
    
If you want to turn this into a function, and put it in a single place (say common.js), there will be a problem: you need to know the location of common.js (relative to the current file) so that you can use require('common.js'). Actually __dirname will never solve the problem nicely. I think in nodejs apps, files are supposed to know where they are, and there's simply no need for the root path. –  Khanh Nguyen Sep 4 '13 at 18:42
    
yeup, console.log(require('path').dirname(require.main.filename)); works. Thanks ALL! –  Nam Nguyen Sep 5 '13 at 4:54
    
I also found out another solution: require('path').dirname(process.mainModule.filename) –  Nam Nguyen Sep 6 '13 at 4:41

This worked for me.. With supervisor running the app from a different dir.

require('path').dirname(Object.keys(require.cache)[0])

example.. files: /desktop/ya/node.js

  require('./ya2/submodule')();

/desktop/ya/ya2/submodule.js

module.exports = function(){
    console.log(require('path').dirname(Object.keys(require.cache)[0]))
}

$ node node.js  
       => /desktop/ya

$ (from /desktop) supervisor ya/node.js
       => /desktop/ya
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yeup, works as expected. Thanks @John Williams –  Nam Nguyen Sep 5 '13 at 4:55
    
I also found another solution: require('path').dirname(process.mainModule.filename) –  Nam Nguyen Sep 6 '13 at 4:41

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