How do I write this to go back up the parent 2 levels to find a file?
fs.readFile(__dirname + 'foo.bar');
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12 Answers
Try this:
fs.readFile(__dirname + '/../../foo.bar');
Note the forward slash at the beginning of the relative path.
answered Aug 16, 2011 at 18:22
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28I had been trying that with no luck but I just did
fs.readFile(__dirname + '/../../foo.bar');and it worked.– fancyAug 16, 2011 at 18:30 -
6I am assuming then that
__dirnamewas somthing like'/foo/bar'rather than'/foo/bar/'. Aug 16, 2011 at 18:31 -
4The very first '/' in your path: '/../../foo.bar' is crucial. I had '../../foo.bar' which was causing my issue. Dec 3, 2016 at 15:02
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1
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@eyurdakul If I understand it corrently:
__dirnamemay look like/path/to/your/dir, if you say__dirname + ".."it is/path/to/your/dir.., which is a nonexistent directory, rather than/path/to/your. The slash is important.– joulevApr 4, 2020 at 3:51
Use path.join http://nodejs.org/docs/v0.4.10/api/path.html#path.join
var path = require("path"),
fs = require("fs");
fs.readFile(path.join(__dirname, '..', '..', 'foo.bar'));
path.join() will handle leading/trailing slashes for you and just do the right thing and you don't have to try to remember when trailing slashes exist and when they dont.
answered Aug 16, 2011 at 18:58
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5this answer with
path.joinis the correct way, the accepted answer should not be followed, it even triggerseslintonairbnb-base preset, the rule no-path-concat in particular– reveltOct 15, 2017 at 22:03 -
100th upvote. My
__dirnamewashost/src/folderand I neededhost/folderand this worked for me, not the OP answer.– carkodJan 24, 2018 at 14:58 -
9you can take it one step further and do
path.join(__dirname, '..', '..', 'foo.bar')Aug 26, 2018 at 20:26
I know it is a bit picky, but all the answers so far are not quite right.
The point of path.join() is to eliminate the need for the caller to know which directory separator to use (making code platform agnostic).
Technically the correct answer would be something like:
var path = require("path");
fs.readFile(path.join(__dirname, '..', '..', 'foo.bar'));
I would have added this as a comment to Alex Wayne's answer but not enough rep yet!
EDIT: as per user1767586's observation
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4'foo.bar" should be 'foo.bar'. I tried to make an edit but edits need to be 6 characters minimum (stupid rule if you ask me, prevents us from editing small typos like this). Dec 29, 2014 at 20:21
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1I suspect that this is the best answer. Some of the other answers might work for a given individual on a given operating system, but the presence of a specific kind of file hierarchy separator (i.e. the slash) in those other answers makes me wonder how universal they are. e.g. I'm trying to write an Electron app in a platform agnostic manner and, while I haven't exhaustively proved it, I suspect this is the safest way. Thanks. Apr 20, 2018 at 23:32
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This is actually unnecessary, as path.join() internally uses path.normalize() (which transforms all path separators to the current/intended OS format) on the resulting joined path before returning. It can't hurt, though.– ionoSep 29, 2018 at 6:21
The easiest way would be to use path.resolve:
path.resolve(__dirname, '..', '..');
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indeed the correct solution as you don't need to resolve the folder by joining
../to the path Dec 11, 2017 at 20:22 -
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1
Looks like you'll need the path module. (path.normalize in particular)
var path = require("path"),
fs = require("fs");
fs.readFile(path.normalize(__dirname + "/../../foo.bar"));
answered Aug 16, 2011 at 18:40
If another module calls yours and you'd still like to know the location of the main file being run you can use a modification of @Jason's code:
var path = require('path'),
__parentDir = path.dirname(process.mainModule.filename);
fs.readFile(__parentDir + '/foo.bar');
That way you'll get the location of the script actually being run.
If you not positive on where the parent is, this will get you the path;
var path = require('path'),
__parentDir = path.dirname(module.parent.filename);
fs.readFile(__parentDir + '/foo.bar');
You can use
path.join(__dirname, '../..');
this will also work:
fs.readFile(`${__dirname}/../../foo.bar`);
answered Dec 26, 2018 at 6:12
i'm running electron app and i can get the parent folder by path.resolve()
parent 1 level:path.resolve(__dirname, '..') + '/'
parent 2 levels:path.resolve(__dirname, '..', '..') + '/'
This works fine
path.join(__dirname + '/../client/index.html')
const path = require('path')
const fs = require('fs')
fs.readFile(path.join(__dirname + '/../client/index.html'))
You can locate the file under parent folder in different ways,
const path = require('path');
const fs = require('fs');
// reads foo.bar file which is located in immediate parent folder.
fs.readFile(path.join(__dirname, '..', 'foo.bar');
// Method 1: reads foo.bar file which is located in 2 level back of the current folder.
path.join(__dirname, '..','..');
// Method 2: reads foo.bar file which is located in 2 level back of the current folder.
fs.readFile(path.normalize(__dirname + "/../../foo.bar"));
// Method 3: reads foo.bar file which is located in 2 level back of the current folder.
fs.readFile(__dirname + '/../../foo.bar');
// Method 4: reads foo.bar file which is located in 2 level back of the current folder.
fs.readFile(path.resolve(__dirname, '..', '..','foo.bar'));
