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I have an express project where I have a directory structure like so,

  • my-app
    • routes
      • index.js
    • views
    • public
    • components
      • toolbar
    • test
      • components
      • toolbar

Now let's say from my routes I want to require the component toolbar I do it like this

toolbar = require(__dirname + '/../components/toolbar')

Now when I run my test for routes I need to require routes. When I do this I get an error at runtime that toolbar file could not be found.

Is there some global available like say __express_home that I could use in my require so that I would not run into this issue? I would then use it as so,

toolbar = require(__express_home + '/components/toolbar')

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2 Answers 2

up vote 2 down vote accepted

You can just do:

toolbar = require('../components/toolbar')

Here is an example from express's github repo.

var express = require('../..')
  , app = express()
  , site = require('./site')
  , post = require('./post')
  , user = require('./user');
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That would not (does not) work because components is not in the routes directory. It is at one level above. –  Moiz Raja Oct 15 '12 at 23:12
    
Thanks. That works. –  Moiz Raja Oct 15 '12 at 23:25

just use a relative path from wherever you are require() it.

./routes/index.js ./config.js

from ./routes/index.js

var cfg = require('../config');
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