108

Assume that the scheme for a uri is "file". Also assume that the path starts with '.'

An example path is './.bashrc'. How would the fulluri look? 'file://./.bashrc' appears odd to me.

4
  • 3
    According to Wikipedia en.wikipedia.org/wiki/Uniform_resource_identifier apparently you can just omit the scheme and have "./.bashrc" as the uri when you are referring relatively. However, this is just a guess and I'm not sure if it is actually how it works.
    – Tony
    Commented Dec 17, 2011 at 20:28
  • 2
    @Tony - Thanks, that works fine for making relative references in .docx files - just unzip, find the "file:///long-absolute-path/relative-path" references, and replace with "relative-path"
    – tucuxi
    Commented Nov 30, 2012 at 12:07
  • 1
    Strictly omitting the prefix does not always work, as URIs can have special characters encoded with percent signs (e.g. %20 = space); depending on the application you will likely need to replace the escaped characters with their actual representation.
    – sleblanc
    Commented May 30, 2016 at 20:03
  • Chromium will soon lose file:// support. bugs.chromium.org/p/chromium/issues/detail?id=1299624
    – 9pfs
    Commented Feb 21, 2022 at 23:11

8 Answers 8

104

In short, a file URL takes the form of:

file://localhost/absolute/path/to/file [ok]

or you can omit the host (but not the slash):

file:///absolute/path/to/file [ok]

but not this:

file://file_at_current_dir [no way]

nor this:

file://./file_at_current_dir [no way]

I just confirmed that via Python's urllib2.urlopen()

More detail from http://en.wikipedia.org/wiki/File_URI_scheme:

"file:///foo.txt" is okay, while "file://foo.txt" is not,
although some interpreters manage to handle the latter
7
  • Is it not also possible to use file:/absolute/path or file:relative (even though this won't work) as you could remove authority for file protocol. Commented Jun 5, 2016 at 9:58
  • 12
    @RayLuo Still doesn't answer question of how to create a URI using relative file syntax of "." ?
    – cogmission
    Commented Sep 12, 2018 at 16:59
  • 4
    @cogmission Don't you get the 4th example in my answer? It clearly mentioned there is no way to use "." in URI. Well, you could, it just doesn't make any sense, and won't achieve what you might expect otherwise. You can also refer to the 2nd-highest upvoted answer right in this page. It is longer for you to read and figure out, though.
    – RayLuo
    Commented Sep 12, 2018 at 20:53
  • 1
    §4.2 of RFC3986 says relative references are fine. Canonical process for resolving the reference within a given context ("base URI"). The first "no way" is ignoring the structure of a URI, and is in no way referring to the path. The second is a file named file_at_current_dir at the root of the filesystem. I use Python in this example to really highlight the fact that there is no current directory when building strings.
    – amcgregor
    Commented Sep 25, 2019 at 14:52
  • @amcgregor As you quoted, the relative reference in RFC3986 works only within a given context i.e. the "base URI". That condition can be satisfied if it is inside an web page, which uses http:// or https:// scheme. But in a file:// scheme that the OP asks, it semantically depends on where the calling program's CWD is, even if that calling program manages to interpret that URI. In practice, where will you use that file:// uri anyway? If it is a CLI tool, you can completely avoid file:// and just fall back to old school local path. If it is in a browser, we can't assume its CWD either.
    – RayLuo
    Commented Sep 25, 2019 at 20:08
27

It's impossible to use full file: URI with '.' or '..' segments in path without root part of that path. Whether you use 'file://./.bashrc' or 'file:///./.bashrc' these paths will have no sense. If you want to use a relative link, use it without protocol/authority part:

<a href="./.bashrc">link</a>

If you want to use full URI, you must tell a root relative to which your relative path is:

<a href="file:///home/kindrik/./.bashrc">link</a>

According to RFC 3986

The path segments "." and "..", also known as dot-segments, are
defined for relative reference within the path name hierarchy.  They
are intended for use at the beginning of a relative-path reference
(Section 4.2) to indicate relative position within the hierarchical
tree of names.  This is similar to their role within some operating
systems' file directory structures to indicate the current directory
and parent directory, respectively.  However, unlike in a file
system, these dot-segments are only interpreted within the URI path
hierarchy and are removed as part of the resolution process (Section
5.2).

The complete path segments "." and ".." are intended only for use
within relative references (Section 4.1) and are removed as part of
the reference resolution process (Section 5.2).  However, some
deployed implementations incorrectly assume that reference resolution
is not necessary when the reference is already a URI and thus fail to
remove dot-segments when they occur in non-relative paths.  URI
normalizers should remove dot-segments by applying the
remove_dot_segments algorithm to the path, as described in Section 5.2.4.

The complete path segments "." and ".." are intended only for use
within relative references (Section 4.1) and are removed as part of
the reference resolution process (Section 5.2) 

RFC 3986 describes even an algorithm of removing these "." and ".." from URI.

0
24

In a terminal you could type "file://$PWD/.bashrc" using "$PWD" to refer to the current directory.

4
  • This works fine for relative paths as well, "file://$PWD/../parentchilddir/somefile.txt"
    – nilsmagnus
    Commented Aug 2, 2017 at 11:33
  • 2
    As @kai-dj mentioned in a different answer, if $PWD contains whitespaces like C:/Users/Joshua Pinter/ then the path will not be valid. Needs to be escaped somehow. Commented May 20, 2018 at 15:56
  • You could use variable string substitution, space for escaped space, e.g. file://${PWD// /\\ }/relative/path Commented Nov 15, 2018 at 18:16
  • 1
    Minor note, backslash escaping is not the correct form. This is a URI. Use percent encoding with the note that space characters themselves can be optimized down to a +. This has the additional note that URI permit UTF-8, so many Unicode characters (such as accented letters, emoji, symbols like §, etc.) actually require no encoding at all. Also of note: unencoded URI will be encoded automatically by user agents, so use as a string (containing spaces) may be a-OK. (Spaces are problems for shell expansion / process argument list building.)
    – amcgregor
    Commented Sep 25, 2019 at 14:28
23

You should not put double slash after file:. Correct form is

'file:.bashrc'

See RFC 3986, path-rootless definition

3
  • 10
    Please refer to that same RFC, definition of Syntax Components, §3, and §3.2 Authority (describing its relative composition, which involves //), then make note of §2 of the RFC defining the file: scheme which only permits path-absolute. Relative file: URI do not technically exist, even if certain systems allow them by convention.
    – amcgregor
    Commented May 30, 2019 at 13:08
  • 1
    This made the PyLD JSON-LD resolution engine happy when trying to silence this super annoying error: Invalid JSON-LD syntax; @context @id value must be an absolute IRI, a blank node identifier, or a keyword. . I just want a relative ID, let me do that! Commented Aug 17, 2020 at 19:39
  • I tried that in a requirements.txt file, and the error that comes back is that ERROR: Invalid requirement: 'apsw @ file:.installPreqs/apsw-3.37.0-cp39-cp39-win_amd64.whl' (from line 2 of requirements.txt). It doesn't work as file:./install ... either.
    – J. Gwinner
    Commented Apr 19, 2022 at 3:56
6

I don't know your use case.

I have a similar need in my node code, so when I need a file url relative to my working directory I create a url like so ...

const url = "file://" + process.cwd() + "/" + ".bashrc";
5

URIs are always absolute (unless they're relative URIs, which is a different beast without a schema). That comes from them being a server-client technology where referencing the server's working directory doesn't make sense. Then again, referencing the file system doesn't make sense in a server-client context either 🤷. Nevertheless, RFC 8089 permits only absolute paths:

The path component represents the absolute path to the file in the file system.

However, if I were to postulate a non-standard extension, I would choose the following syntax:

file:file.txt
file:./file.txt

The explanation is that RFC 8089 specifies non-local paths file://<FQDN of host>/path and local paths file:/path, file://localhost/path, and file:///path. Since we're almost certainly trying to specify a local relative path (ie, accessible by "local file system APIs"), and because a . is not a FQDN or even a hostname, the simple file: scheme + scheme-sepecific-part URI syntax makes the most sense.

1
  • Awesome, file:./file.txt for relative path is a fix that works for generic url! Commented Mar 31, 2022 at 9:33
2

In a unix shell script I managed to go with this:

file://`pwd`/relative-path

In your particular case:

file://`pwd`/.bashrc
2
  • What about in VIM?
    – 71GA
    Commented Feb 12, 2021 at 23:12
  • @71GA, no idea :/ I don't know vim good enough to answer your question.
    – 1234ru
    Commented Feb 14, 2021 at 3:04
1

There is a workaround that might help.

If at development time you can only specify a relative path to the file but need a URL (that requires to know the absolute path) use code like this (Java):

new File("relative/path/to/file").toURI().toURL();

With that you get a URL still pointing to the file in a relative path. It still shows in the URL but it can be opened. If you want to get rid of components like ".." use the canoncial path inbetween. Here is an example that works for me:

public static void main(String[] args) throws MalformedURLException, IOException {
  File f = new File("../SimResolver/pom.xml");
  System.out.println(f);
  System.out.println(f.getAbsolutePath());
  System.out.println(f.getCanonicalPath());
  System.out.println(f.toURI());     
  System.out.println(f.toURI().toURL());
  System.out.println(f.getCanonicalFile().toURI());     
  System.out.println(f.getCanonicalFile().toURI().toURL());
  
  InputStream in = f.toURI().toURL().openStream();
  byte[] buffer = new byte[8192];

  int read = in.read(buffer);
  while (read >= 0) {
    System.out.write(buffer, 0, read);
    read = in.read(buffer);
  }
}
2
  • This doesn't work... It will produce a broken URL including the ".."
    – M.Huetter
    Commented Nov 30, 2023 at 14:49
  • It includes the ".." but is not broken. If you are worried about the "..", use the .getCanonicalPath() method.
    – queeg
    Commented Nov 30, 2023 at 16:16

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