22

Im trying to work with a path and replace the home directory with a tilde in bash, Im hoping to get it done with as little external programs as necessary. Is there a way to do it with just bash. I got

${PWD/#$HOME/\~}

But thats not quite right. It needs to convert:

/home/alice to ~
/home/alice/ to ~/
/home/alice/herp to ~/herp
/home/alicederp to /home/alicederp

As a note of interest, heres how the bash source does it when converting the \w value in the prompt:

/* Return a pretty pathname.  If the first part of the pathname is
   the same as $HOME, then replace that with `~'.  */
char *
polite_directory_format (name)
     char *name;
{
  char *home;
  int l;

  home = get_string_value ("HOME");
  l = home ? strlen (home) : 0;
  if (l > 1 && strncmp (home, name, l) == 0 && (!name[l] || name[l] == '/'))
    {
      strncpy (tdir + 1, name + l, sizeof(tdir) - 2);
      tdir[0] = '~';
      tdir[sizeof(tdir) - 1] = '\0';
      return (tdir);
    }
  else
    return (name);
}
  • This is not bash, more like C code. But replacing a string with almost no context is error prone. you sure you want to proceed that way? – pizza Apr 5 '12 at 21:48
  • 1
    Sorry if this wasn't clear. The C code is an example of how to do it. Its how bash itself does it. bash being a program written in C. Now I want to do the same in the bash language. – Jake Apr 5 '12 at 21:58
  • 1
    Can you tell us what it outputs as it is right now? – wkl Apr 5 '12 at 22:22
  • 1
    Ok, when I said almost no context, there is actually quite a risk to do such a thing. the "~" expansion is only valid in a shell environment. So ~ -> home directory expansion is a shell feechure, if you really try to open a file from other than bash, it will fail. for example fopen("~/.bashrc","r") in C gives 0, not what you might expect. – pizza Apr 5 '12 at 22:33
  • 1
    zsh users: In zsh, this is just print -D $PWD. – Kevin Dec 18 '15 at 21:15
8

See this unix.stackexchange answer:

If you're using bash, then the dirs builtin has the desired behavior:

dirs +0
~/some/random/folder

That probably uses Bash's own C code that you pasted there. :)

And here's how you could use it:

dir=...    # <- Use your own here.

# Switch to the given directory; Run "dirs" and save to variable.
# "cd" in a subshell does not affect the parent shell.
dir_with_tilde=$(cd "$dir" && dirs +0)

Note that this will only work with directory names that already exist.

  • You could do dir_with_tilde="$(cd "${dir}" && dirs +0)" as a one-liner... But, this doesn't work if the directory doesn't exist, since you can't change to a non-existent directory. You might be constructing a path to create and want to log it in a friendly way. – David Ghandehari Nov 29 '17 at 0:53
  • Yeah, this is a better way that I suggested below. Thanks for the tip on the dirs command :) – Fotis Gimian May 30 '18 at 23:58
14

I don't know of a way to do it directly as part of a variable substitution, but you can do it as a command:

[[ "$name" =~ ^"$HOME"(/|$) ]] && name="~${name#$HOME}"

Note that this doesn't do exactly what you asked for: it replaces "/home/alice/" with "~/" rather than "~". This is intentional, since there are places where the trailing slash is significant (e.g. cp -R ~ /backups does something different from cp -R ~/ /backups).

  • 1
    @Steinar: It should do what you want -- the ${name#$HOME} part takes $name and removes $HOME from the front (i.e. "/documents" in your example). Is it possible you had a typo in it? – Gordon Davisson Feb 28 '13 at 15:50
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    @Dennis: Steinar's solution has the same bug that "${PWD/#$HOME/\~}" has -- in OP's example, it'd turn "/home/alicederp" into "~derp". This can be fixed, but at the cost of losing a fair bit of that readability. Also, if you do use it, please double-quote the variable reference (i.e. echo "$name") to limit unexpected parsing. – Gordon Davisson Dec 29 '13 at 6:53
  • if you don't have support for [[ =~ ]] *cough*msys*cough* you can also get it done with tildewd=$(pwd | sed -E "s-^$HOME($|(/.*))-~\2-"). – danwyand Aug 13 '14 at 18:36

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