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The title should say it all. I'm looking for an equivalent to ${BASH_SOURCE[0]} in zsh.

Note: I keep finding "$0 is equivalent to ${BASH_SOURCE[0]}" around the Internet, but this seems to be false: $0 seems to be the name of the executing command. (It's argv[0], which makes sense.) Echoing $0 in my script (.zshrc) gives zsh for $0, which isn't the same as what ${BASH_SOURCE[0]} is. In fact, ${BASH_SOURCE[0]} seems to work in zsh, except for inside .zshrc files.

What I'm really doing in my .zshrc (that isn't working):

echo ${BASH_SOURCE[0]}
source `dirname $0`/common-shell-rc.sh

The source fails ($0 is zsh) and the echo outputs a blank line.

Edit: apparently, for $0 to work, I need the option FUNCTION_ARGZERO option set. Any way to test if this is set in a script? (so that I can temporarily set it) It is apparently on unless you set nofunction_argzero, and it is on in my shell. Still get nothing for $0. (I think b/c I'm not in a function.)

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You still haven't accepted an answer. – mklement0 May 21 '15 at 4:25

${BASH_SOURCE[0]} equivalent in zsh is ${(%):-%N}, NOT $0(as OP said, the latter failed in .zshrc)

Here % indicates prompt expansion on the value, %N indicates "The name of the script, sourced file, or shell function that zsh is currently executing,

whichever was started most recently. If there is none, this is equivalent to the parameter $0."(from man zshmisc)

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2  
Great - this should work for the OP, but note that the true $BASH_SOURCE equivalent is %x, not %N, as it refers to the enclosing file even when called inside of functions - in other words: use ${(%):-%x} – mklement0 Feb 4 '15 at 22:13
    
Hey, reading the documentation, I don't understand why we need the :- in here, and why ${(%)%N} wouldn't work the same (note: I am aware it doesn't work) – PierreBdR Jul 29 '15 at 12:21

$0 is correct. In a sourced script, this is the name of a script, as it was passed to the . or source built-in (so if the path_dirs option is set, you may need to do a $path lookup to find the actual location of the script).

.zshrc is not sourced, which explains why $0 is not set to .zshrc. You know the file name and location anyway: it's ${ZDOTDIR-~}/.zshrc.

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I'm still not sure this is correct. Create these two files: foo containing source ./foo2 and foo2 containing echo $0. Now run ./foo, and you'll get the output of ./foo, which is not the name of the sourced script. Replace $0 with ${BASH_SOURCE[0]}, re-run with bash, and you'll get ./foo2. – Thanatos Mar 28 '12 at 20:44
    
@Thanatos I get ./foo2 (zsh 4.3.10; this may have changed at some point, but not since 4.0). Compared with your instructions, I added #!/bin/zsh at the top of foo, to run the script under zsh. Are you sure you're running foo under zsh? – Gilles Mar 28 '12 at 20:51
2  
Just to clarify and emphasize... In zsh (and possibly other shells), the value of $0 is the sourced script not the caller script. This is NOT how it works in Bash. So $0 in zsh is the same as ${BASH_SOURCE[0]} in Bash. – toxalot Mar 19 '14 at 22:09
    
Thanks toxalot, that's clear. But then - what is the portable way of doing this, in a shell script that should work in both bash and zsh then? No way? – David Faure Jan 9 '15 at 13:35
    
@DavidFaure The portable way of doing what? Do you want to find the path to the master script, to the sourced script in which the current code is, or what? – Gilles Jan 9 '15 at 13:45

If you are symlinking to .zshrc in a dotfiles directory and want to reference other files in the directory, then try this:

SOURCE=${(%):-%N}
while [ -h "$SOURCE" ]; do
  DIR="$( cd -P "$( dirname "$SOURCE" )" && pwd )"
  SOURCE="$(readlink "$SOURCE")"
  [[ $SOURCE != /* ]] && SOURCE="$DIR/$SOURCE"
done
DOTFILES_DIR="$( cd -P "$( dirname "$SOURCE" )" && pwd )"

(I got the loop script from here.)

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${(%):-%x} is the closest zsh equivalent to bash's $BASH_SOURCE (and ksh's ${.sh.file}) - not $0.

Tip of the hat to Hui Zheng for providing the crucial pointer and background information in his answer.

It returns the (potentially relative) path of the enclosing script,

  • regardless of whether the script is being sourced or not.
    • specifically, it also works inside initialization/profiles files such as ~/.zshrc (unlike $0, which inexplicably returns the shell's path there).
  • regardless of whether called from inside a function defined in the script or not (unlike $0, which returns the function name inside a function).

The only difference to $BASH_SOURCE I've found is in the following obscure scenario - which may even be a bug (observed in zsh 5.0.5): inside a function nested inside another function in a sourced script, ${(%):-%x} does not return the enclosing script path when that nested function is called (again) later, after having been sourced (returns either nothing or 'zsh').

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Maybe you're looking for $_?

# foo.sh
source foo2.sh

and

# foo2.sh
echo $_

yields

# ./foo.sh
foo2.sh
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for best result: ${BASH_SOURCE:-$_} – mpapis Oct 23 '13 at 1:09
1  
It's best-practice to explain why an answer you provide works, or, in cases like this where the answer is <X feature>, to include a basic explanation of that feature. (hell, even copy-pasting a short section of the manpage is never a bad idea!) – ELLIOTTCABLE Dec 26 '14 at 0:03
    
$_ doesn't work in bash for the case where script1.sh sources script2.sh which then does echo $_. It will return script1.sh, i.e. $0 (the main script), while ${BASH_SOURCE[0]} return script2.sh (the subscript that is calling echo $_). So $_ is basically just like $0 AFAICS. – David Faure Jan 9 '15 at 13:37

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