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Currently I'm doing some unit tests which are executed from bash. Unit tests are initialized, executed and cleaned up in a bash script. This script usualy contains an init(), execute() and cleanup() functions. But they are not mandatory. I'd like to test if they are or are not defined.

I did this previously by greping and seding the source, but it seemed wrong. Is there a more elegant way to do this?

Edit: The following sniplet works like a charm:

    type $1 | grep -q 'shell function'
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Thanks. I used this to conditionally define stubbed out versions of functions when loading a shell library. fn_exists foo || foo() { :; } –  Harvey Jul 15 '13 at 10:02

10 Answers 10

up vote 77 down vote accepted

I think you're looking for the 'type' command. It'll tell you whether something is a function, built-in function, external command, or just not defined. Example:

$ type foo
bash: type: foo: not found

$ type ls
ls is aliased to `ls --color=auto'

$ which type

$ type type
type is a shell builtin

$ type -t rvm

$ if [ -n "$(type -t rvm)" ] && [ "$(type -t rvm)" = function ]; then echo rvm is a function; else echo rvm is NOT a function; fi
rvm is a function
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type -t $function is the meal ticket. –  Allan Wind Sep 17 '08 at 18:06
Why didn't you post it as an answer? :-) –  terminus Sep 19 '08 at 20:45
Why not rewrite it? –  terminus Sep 21 '08 at 5:56
Or edit this answer... –  Chris Wesseling Jul 11 '13 at 10:52
type [-t] is nice to tell you what a thing is, but when testing if something is a function, it's slow since you have to pipe to grep or use backticks, both of which spawn a subprocess. –  Lloeki Dec 19 '13 at 8:46
$ g() { return; }
$ declare -f g > /dev/null; echo $?
$ declare -f j > /dev/null; echo $?
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worked awesome for me. Especially as my shell doesn't have the -t flag for type (I was having a lot of trouble with type "$command" ) –  Dennis Hodapp Apr 6 '12 at 22:00
Indeed, it also works in zsh (useful for rc scripts), and doesn't require to grep for the type. –  Lloeki Dec 19 '13 at 8:39
@DennisHodapp no need for type -t, you can rely on the exit status instead. I have long used type program_name > /dev/null 2>&1 && program_name arguments || echo "error" to see whether I would be able to call something. Obviously the type -t and the above method also allows to detect the type, not just whether it's "callable". –  0xC0000022L Feb 11 at 20:08
@0xC0000022L what if program_name is not a function? –  David Winiecki Apr 15 at 22:42
@0xC0000022L I was nitpicking about how using the exit status doesn't let you know if program_name is a function, but now I think you did address that when you said "Obviously the type -t and the above method also allows to detect the type, not just whether it's "callable"." Sorry. –  David Winiecki Apr 16 at 19:06

If declare is 10x faster than test, this would seem the obvious answer.


function_exists() {
    declare -f -F $1 > /dev/null
    return $?

function_exists function_name && echo Exists || echo No such function

The "-F" option to declare causes it to only return the name of the found function, rather than the entire contents.

There shouldn't be any measurable performance penalty for using /dev/null, and if it worries you that much:

fname=`declare -f -F $1`
[ -n "$fname" ]    && echo Declare -f says $fname exists || echo Declare -f says $1 does not exist

Or combine the two, for your own pointless enjoyment. They both work.

fname=`declare -f -F $1`
(( ! errorlevel )) && echo Errorlevel says $1 exists     || echo Errorlevel says $1 does not exist
[ -n "$fname" ]    && echo Declare -f says $fname exists || echo Declare -f says $1 does not exist
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The '-f' option is redundant. –  Rajish Aug 22 '13 at 10:03
The -F option des not exist in zsh (useful for portability) –  Lloeki Dec 19 '13 at 13:35

Borrowing from other solutions and comments, I came up with this:

fn_exists() {
  # appended double quote is an ugly trick to make sure we do get a string -- if $1 is not a known command, type does not output anything
  [ `type -t $1`"" == 'function' ]

Used as ...

if ! fn_exists $FN; then
    echo "Hey, $FN does not exist ! Duh."
    exit 2

It checks if the given argument is a function, and avoids redirections and other grepping.

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Nice, my fav from the group! Don't you want double quotes around the argument too? As in [ $(type -t "$1")"" == 'function' ] –  quickshiftin Nov 26 '13 at 17:10
Thanks @quickshiftin; I don't know if I want those double quotes, but you're probably right, although .. can a function even be declared with a name that'd need to be quoted ? –  Grégory Joseph Dec 6 '13 at 11:43
Good point, it seems like in this case it doesn't matter. –  quickshiftin Dec 6 '13 at 17:15
You're using bash, use [[...]] instead of [...] and get rid of the quote hack. Also backticks fork, which is slow. Use declare -f $1 > /dev/null instead. –  Lloeki Dec 19 '13 at 8:43
Avoiding errors with empty arguments, reducing quotes, and using the '=' posix compliant equality, it can be safely reduced to:: fn_exists() { [ x$(type -t $1) = xfunction ]; } –  qneill Aug 10 at 13:27

Dredging up an old post ... but I recently had use of this and tested both alternatives described with :

test_declare () {
    a () { echo 'a' ;}

    declare -f a > /dev/null

test_type () {
    a () { echo 'a' ;}
    type a | grep -q 'is a function'

echo 'declare'
time for i in $(seq 1 1000); do test_declare; done
echo 'type'
time for i in $(seq 1 100); do test_type; done

this generated :

real    0m0.064s
user    0m0.040s
sys     0m0.020s

real    0m2.769s
user    0m1.620s
sys     0m1.130s

declare is a helluvalot faster !

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Of course, since you're not calling grep in the first one. –  terminus Feb 23 '10 at 19:14
It can be done without grep: test_type_nogrep () { a () { echo 'a' ;}; local b=$(type a); c=${b//is a function/}; [ $? = 0 ] && return 1 || return 0; } –  qneill Aug 10 at 13:21

I particularly liked solution from Grégory Joseph

But I've modified it a little bit to overcome "double quote ugly trick":

function is_executable()
    typeset TYPE_RESULT="`type -t $1`"

    if [ "$TYPE_RESULT" == 'function' ]; then
        return 0
        return 1
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I would improve it to:

    type $1 2>/dev/null | grep -q 'is a function'

And use it like this:

fn_exists test_function
if [ $? -eq 0 ]; then
    echo 'Function exists!'
    echo 'Function does not exist...'
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It is possible to use 'type' without any external commands, but you have to call it twice, so it still ends up about twice as slow as the 'declare' version:

test_function () {
        ! type -f $1 >/dev/null 2>&1 && type -t $1 >/dev/null 2>&1

Plus this doesn't work in POSIX sh, so it's totally worthless except as trivia!

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This tells you if it exists, but not that it's a function

  type $1 >/dev/null 2>&1;
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It boils down to using 'declare' to either check the output or exit code.

Output style:

isFunction() { [[ "$(declare -Ff "$1")" ]]; }


isFunction some_name && echo yes || echo no

However, if memory serves, redirecting to null is faster than output substitution (speaking of, the awful and out-dated `cmd` method should be banished and $(cmd) used instead.) And since declare returns true/false if found/not found, and functions return the exit code of the last command in the function so an explicit return is usually not necessary, and since checking the error code is faster than checking a string value (even a null string):

Exit status style:

isFunction() { declare -Ff "$1" >/dev/null; }

That's probably about as succinct and benign as you can get.

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For maximum succinctness use isFunction() { declare -F "$1"; } >&- –  Neil May 28 '12 at 23:01

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