18

I'm trying to write some code in bash which uses introspection to select the appropriate function to call.

Determining the candidates requires knowing which functions are defined. It's easy to list defined variables in bash using only parameter expansion:

$ prefix_foo="one"
$ prefix_bar="two"
$ echo "${!prefix_*}"
prefix_bar prefix_foo

However, doing this for functions appears to require filtering the output of set -- a much more haphazard approach.

Is there a Right Way?

2
  • Does this answer your question? How do I list the functions defined in my shell? Mar 16 at 19:27
  • @amphetamachine, hmm. Good question whether to close this as a duplicate of the other, or the inverse -- this one was first of the two to be asked, and has more answers (10 vs 8). Do you have a reason to prefer this direction, of the two possible approaches? Mar 16 at 19:41

11 Answers 11

33

How about compgen:

compgen -A function   # compgen is a shell builtin
1
  • 5
    Perfect! Simple, clean, and even allows prefix matching (as in: compgen -A function prefix_) Apr 13 '10 at 13:59
8
$ declare -F
declare -f ::
declare -f _get_longopts
declare -f _longopts_func
declare -f _onexit
...

So, Jed Daniel's alias,

declare -F | cut -d" " -f3

cuts on a space and echos the 3rd field:

$ declare -F | cut -d" " -f3
::
_get_longopts
_longopts_func
_onexit
5

I have an entry in my .bashrc that says:

alias list='declare -F |cut -d" " -f3'

Which allows me to type list and get a list of functions. When I added it, I probably understood what was happening, but I can't remember to save my life at the moment.

Good luck,

--jed

1
  • declare -F |cut -d" " -f3 |egrep -v "^_" Jun 8 '12 at 17:01
2

This has no issues with IFS nor globbing:

readarray -t funcs < <(declare -F)

printf '%s\n' "${funcs[@]##* }"

Of course, that needs bash 4.0.

For bash since 2.04 use (a little trickier but equivalent):

IFS=$'\n' read -d '' -a funcs < <(declare -F)

If you need that the exit code of this option is zero, use this:

IFS=$'\n' read -d '' -a funcs < <( declare -F && printf '\0' )

It will exit unsuccesful (not 0) if either declare or read fail. (Thanks to @CharlesDuffy)

2
  • Good call -- I didn't think about reading the declare -fs into the array and stripping them back out at expansion time. Might make it declare -F && printf '\0' inside the process substitution in the 2.0.4 case -- that way the read will have an exit status of zero (and, as a bonus, any error that somehow stopped declare -F from working would be effectively passed through). Nov 9 '16 at 21:41
  • @CharlesDuffy Thanks, added.
    – ImHere
    Nov 9 '16 at 21:56
1

One (ugly) approach is to grep through the output of set:

set \
  | egrep '^[^[:space:]]+ [(][)][[:space:]]*$' \
  | sed -r -e 's/ [(][)][[:space:]]*$//'

Better approaches would be welcome.

1
  • 1
    In bash, "ugly" is on the left-hand of the sliding scale. Apr 12 '10 at 22:58
1

Use the declare builtin to list currently defined functions:

declare -F
1
  • Helpful (though several other folks already suggested it), but not sufficient in and of itself; the output still needs to be processed into an array to be similar to ${!prefix_*}, and adding cut to the command line isn't as clean as sticking to builtins. Apr 13 '10 at 14:01
1

Pure Bash:

saveIFS="$IFS"
IFS=$'\n'
funcs=($(declare -F))      # create an array
IFS="$saveIFS"
funcs=(${funcs[@]##* })    # keep only what's after the last space

Then, run at the Bash prompt as an example displaying bash-completion functions:

$ for i in ${funcs[@]}; do echo "$i"; done
__ack_filedir
__gvfs_multiple_uris
_a2dismod
. . .
$ echo ${funcs[42]}
_command
1
  • Very nice, though the IFS twiddling on both ends makes things a little ugly. OTOH, the variant that comes off the top of my head to avoid it involve a subshell and string splitting (ie. funcs=( $(IFS=$'\n'; funcs=($(declare -F)); echo "${funcs[@]##* }") )), and which is certainly much more functional (as opposed to aesthetic) ugliness. Apr 13 '10 at 1:28
1

zsh only (not what was asked for, but all the more generic questions have been closed as a duplicate of this):

typeset -f +

From man zshbuiltins:

-f     The  names  refer  to functions rather than parameters.
 +     If `+' appears by itself in a separate word as the last
       option, then the names of all parameters (functions with -f)
       are printed, but  the values  (function  bodies)  are not.

Example:

martin@martin ~ % cat test.zsh 
#!/bin/zsh

foobar()
{
  echo foobar
}

barfoo()
{
  echo barfoo
}

typeset -f +

Output:

martin@martin ~ % ./test.zsh
barfoo
foobar
0

Perhaps my solution for this thread will work for you. Google for "get a list of function names in a shell script site:stackoverflow.com"

get a list of function names in a shell script

2
  • Actually, I think trevvor's solution in this thread is far better than any of those attached to that other question. Apr 16 '10 at 12:35
  • To be a little more clear on why the questions are different: This question is about going through the list of currently defined functions, not the list of functions defined in a specific script. Functions may be added by sourcing other scripts, or before the current script is invoked, so grepping does not help. The tool I wrote this code for is a library, so it can't make any assumptions about code structure, flow or organization. Apr 16 '10 at 12:41
0

This collects a list of function names matching any of a list of patterns:

functions=$(for c in $patterns; do compgen -A function | grep "^$c\$")

The grep limits the output to only exact matches for the patterns.

Check out the bash command type as a better alternative to the following. Thanks to Charles Duffy for the clue.

The following uses that to answer the title question for humans rather than shell scripts: it adds a list of function names matching the given patterns, to the regular which list of shell scripts, to answer, "What code runs when I type a command?"

which() {
  for c in "$@"; do
    compgen -A function |grep "^$c\$" | while read line; do
      echo "shell function $line" 1>&2
     done
    /usr/bin/which "$c"
   done
 }

So,

(xkcd)Sandy$ which deactivate
shell function deactivate
(xkcd)Sandy$ which ls
/bin/ls
(xkcd)Sandy$ which .\*run_hook
shell function virtualenvwrapper_run_hook

This is arguably a violation of the Unix "do one thing" philosophy, but I've more than once been desperate because which wasn't finding a command that some package was supposed to contain, me forgetting about shell functions, so I've put this in my .profile.

5
  • Can you explain what it is doing?
    – Bernhard
    Feb 6 '14 at 16:11
  • That looks rather like it's built to answer a different question -- using which plays no role in listing defined functions at all. Mar 4 '14 at 16:57
  • @Bernhard, hopefully it's a little clearer now. @CharlesDuffy, Yes. I am not using the existing which to list defined functions, I'm adding a defined function list to which. I've edited the post to say why.
    – FutureNerd
    Mar 21 '14 at 3:57
  • @FutureNerd, if the goal is to answer "what happens when I run this command?", then how does this differ from what type does out-of-the-box? (Also, type handles things such as builtins, shell syntax, and the like that this does not). Aug 15 '14 at 14:32
  • @Charles, thanks for the clue! How this differs is that this works if I forget "type" and type "which". Maybe I'll define "which" as an alias for "type", heh.
    – FutureNerd
    Aug 28 '14 at 19:32
0
#!/bin/bash
# list-defined-functions.sh
# Lists functions defined in this script.
# 
# Using `compgen -A function`,
# We can save the list of functions defined before running out script,
# the compare that to a new list at the end,
# resulting in the list of newly added functions.
# 
# Usage:
#   bash list-defined-functions.sh      # Run in new shell with no predefined functions
#   list-defined-functions.sh           # Run in current shell with plenty of predefined functions
#

# Example predefined function
foo() { echo 'y'; }

# Retain original function list
# If this script is run a second time, keep the list from last time
[[ $original_function_list ]] || original_function_list=$(compgen -A function)

# Create some new functions...
myfunc() { echo "myfunc is the best func"; }
function another_func() { echo "another_func is better"; }
function superfunction { echo "hey another way to define functions"; }
# ...

# function goo() { echo ok; }

[[ $new_function_list ]] || new_function_list=$(comm -13 \
    <(echo $original_function_list) \
    <(compgen -A function))

echo "Original functions were:"
echo "$original_function_list"
echo 
echo "New Functions defined in this script:"
echo "$new_function_list"
7
  • Why the echo? <(compgen -A function) would be more efficient. Might also put the work of the grep into the awk line: awk '/>/ {print $2}', removing the redundency there. Actually -- better to ditch diff altogether; it's vastly less efficient than comm when all you want to do is set comparisons. Aug 29 '14 at 14:43
  • (Beyond that -- nifty! The question this answers isn't the one that I asked, but it's still moderately useful to have around in case someone else stumbles upon this question looking for something different). Aug 29 '14 at 14:46
  • Thanks Charles! I've learned so much about Bash over the last week. Workin' on a boilerplate type thing at the moment to try and learn cool stuff. gist.github.com/deanrather/5719199 Aug 29 '14 at 15:31
  • 1
    ...compare foo='*'; echo $foo to foo='*'; echo "$foo". Aug 29 '14 at 15:51
  • 1
    You don't need to make it read-only, you only need to check whether it's set. [[ $original_function_list ]] || original_function_list=$(...) Aug 29 '14 at 16:29

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