33

I was looking for a way to enumerate all copies of an executable that are shadowed by the first one in my PATH. The best I could come up with is a function:

find_all_exec() { 
    for i in ${PATH//:/ }; do
        find "$i/$1" 2> /dev/null
    done
}

$ find_all_exec python
/usr/local/bin/python
/usr/bin/python

This gets me what I want (though it doesn't handle bash aliases/functions as type does). I was curious if there's a more built in way?

1

3 Answers 3

58

Try this command:

which -a python
4
  • 1
    Thanks. Exactly what I was looking for. Guess I should RTFM a bit more.
    – weaver
    Commented Aug 1, 2013 at 16:56
  • 4
    what shell is that built into? Not bash version 4.2.45(1)-release: type which -> which is /usr/bin/which. For bash: type -a python Commented Aug 1, 2013 at 17:12
  • 1
    good point @glennjackman actually which isn't a builtin command, but as you know usually it's provided along with bash. Anyway, type -a provides me a different output from what I expect, showing me just an occurrence of an executable existing in tho different paths. Do you know why? Commented Aug 2, 2013 at 9:54
  • I figured that making it the default behaviour might break some scripts I use, so I aliased it in my ~/.bashrc as alias whichall='which -a $*'
    – ccpizza
    Commented Mar 6, 2016 at 10:26
7
type -a *

For example,

type -a python

gives

python is /Users/user1/anaconda3/bin/python
python is /usr/local/bin/python
python is /usr/bin/python
python is /Applications/CASA.app/Contents/MacOS/python
2

I think this should work:

IFS=:
for dir in $PATH; do
    if [ -x "$dir/$1" ]
    then echo "$dir/$1"
    fi
done

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