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How do I show the definition of a function in zsh? type foo doesn't give the definition.

In bash:

bash$ function foo() { echo hello; }

bash$ foo
hello

bash$ type foo
foo is a function
foo () 
{ 
    echo hello
}

In zsh:

zsh$ function foo() { echo hello; }

zsh$ foo
hello

zsh$ type foo
foo is a shell function
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declare -f foo is the better choice even in bash - and it works in zsh too; see my answer for background. –  mklement0 Nov 13 '14 at 14:53

4 Answers 4

up vote 28 down vote accepted

The zsh idiom is whence, the -f flag prints function definitions:

zsh$ whence -f foo
foo () {
    echo hello
}
zsh$

In zsh, type is defined as equivalent to whence -v, so you can continue to use type, but you'll need to use the -f argument:

zsh$ type -f foo
foo () {
    echo hello
}
zsh$

And, finally, in zsh which is defined as equivalent to whence -c - print results in csh-like format, so which foo will yield the same results.

man zshbuiltins for all of this.

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"whence" just returns the name of the function. It does not show the function definition. –  Rob Bednark Jul 13 '12 at 21:38
1  
@RobBednark look more closely: -f is used in the answer, which does print function definitions –  pb2q Jul 13 '12 at 21:39
    
type -f foo also does this; type is equivalent to whence -v. –  Keith Thompson Jul 13 '12 at 21:48
    
I see, "whence -f foo" does give the behavior that I'm looking for. Equivalent to Thor's "which foo". –  Rob Bednark Jul 13 '12 at 21:49
    
@pb2q, nice details for the 3 different ways, as well as the reference. Thanks! –  Rob Bednark Jul 14 '12 at 13:53

I've always just used which for this.

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4  
"which" gives the behavior I'm looking for -- thanks Thor! (Note that "which" is a zsh builtin whereas in bash it calls /usr/bin/which , and /usr/bin/which has different behavior than the zsh builtin function "which") –  Rob Bednark Jul 13 '12 at 21:44
    
Works, but only if no alias of the same name happens to be defined, in which case that is reported (which reports the highest-precedence form of the command). –  mklement0 Nov 13 '14 at 14:28

tl;dr

declare -f foo  # works in zsh and bash

typeset -f foo  # works in zsh, bash, and ksh

type -f / whence -f / which are suboptimal in this case, because their purpose is to report the command form with the highest precedence that happens to be defined by that name (unless you also specify -a, in which case all command forms are reported) - as opposed to specifically reporting on the operand as a function.

The -f option doesn't change that - it only includes shell functions in the lookup.

Aliases and shell keywords have higher precedence than shell functions, so, in the case at hand, if an alias foo were also defined, type -f foo would report the alias definition.

Note that zsh does expand aliases in scripts by default (as does ksh, but not bash), and even if you turn alias expansion off first, type -f / whence -f / which still report aliases first.

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If you're not quite sure what you are looking for, you can type just

functions

and it will show you all the defined functions.

Note that there are sometimes a LOT of them, so you might want to pipe to a pager program:

functions | less

to undefine a function, use

unfunction functionname
share|improve this answer
    
+1; Note that functions is equivalent to typeset -f (except for the -M option), so you can even use the grammatically slightly counter-intuitive command functions foo to get information about a given function. –  mklement0 Nov 13 '14 at 14:58

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