691

I want my script to be able to take an optional input,

e.g. currently my script is

#!/bin/bash
somecommand foo

but I would like it to say:

#!/bin/bash
somecommand  [ if $1 exists, $1, else, foo ]
5
  • 3
    Bash or POSIX? With Bash, there are more possibilities Feb 17, 2012 at 17:46
  • @Pumbaa80 bash - I have updated the tags.
    – Abe
    Feb 17, 2012 at 17:47
  • 2
    See also unix.stackexchange.com/questions/122845/…
    – Vadzim
    Mar 28, 2016 at 10:12
  • 1
    ...and stackoverflow.com/questions/2013547/…
    – Vadzim
    Mar 28, 2016 at 10:26
  • I want to say that the this subject is not about the optional argument but a positional argument with default value. This terminology gives much confusion. "Optional argument" means it would be ok whether those arguments exist in the command line or not. Feb 16, 2021 at 3:40

9 Answers 9

985

You could use the default-value syntax:

somecommand ${1:-foo}

The above will, as described in Bash Reference Manual - 3.5.3 Shell Parameter Expansion [emphasis mine]:

If parameter is unset or null, the expansion of word is substituted. Otherwise, the value of parameter is substituted.

If you only want to substitute a default value if the parameter is unset (but not if it's null, e.g. not if it's an empty string), use this syntax instead:

somecommand ${1-foo}

Again from Bash Reference Manual - 3.5.3 Shell Parameter Expansion:

Omitting the colon results in a test only for a parameter that is unset. Put another way, if the colon is included, the operator tests for both parameter’s existence and that its value is not null; if the colon is omitted, the operator tests only for existence.

7
  • 71
    Please note the semantic difference between the above command, "return foo if $1 is unset or an empty string", and ${1-foo}, "return foo if $1 is unset".
    – l0b0
    Feb 21, 2012 at 15:12
  • 14
    Can you explain why this works? Specially, what's the function/purpose of the ':' and '-'?
    – jwien001
    Sep 5, 2014 at 21:11
  • 10
    @jwein001: In the answer submitted above, a substitution operator is used to return a default value if the variable is undefined. Specifically, the logic is "If $1 exists and isn't null, return its value; otherwise, return foo." The colon is optional. If it's omitted, change "exists and isn't null" to only "exists." The minus sign specifies to return foo without setting $1 equal to 'foo'. Substitution operators are a subclass of expansion operators. See section 6.1.2.1 of Robbins and Beebe's Classic Shell Scripting [O'Reilly] (shop.oreilly.com/product/9780596005955.do)
    – Jubbles
    Sep 23, 2014 at 20:36
  • 6
    @Jubbles or if you don't want to buy an entire book for a simple reference... tldp.org/LDP/abs/html/parameter-substitution.html Feb 8, 2017 at 14:39
  • 3
    This answer would be even better if it showed how to make the default be the result of running a command, as @hagen does (though that answer is inelegant).
    – sautedman
    Mar 17, 2017 at 17:47
484

You can set a default value for a variable like so:

somecommand.sh

#!/usr/bin/env bash

ARG1=${1:-foo}
ARG2=${2:-'bar is'}
ARG3=${3:-1}
ARG4=${4:-$(date)}

echo "$ARG1"
echo "$ARG2"
echo "$ARG3"
echo "$ARG4"

Here are some examples of how this works:

$ ./somecommand.sh
foo
bar is
1
Thu 19 May 2022 06:58:52 ADT

$ ./somecommand.sh ez
ez
bar is
1
Thu 19 May 2022 06:58:52 ADT

$ ./somecommand.sh able was i
able
was
i
Thu 19 May 2022 06:58:52 ADT

$ ./somecommand.sh "able was i"
able was i
bar is
1
Thu 19 May 2022 06:58:52 ADT

$ ./somecommand.sh "able was i" super
able was i
super
1
Thu 19 May 2022 06:58:52 ADT

$ ./somecommand.sh "" "super duper"
foo
super duper
1
Thu 19 May 2022 06:58:52 ADT

$ ./somecommand.sh "" "super duper" hi you
foo
super duper
hi
you
6
  • 4
    Ah, ok. The - confused me (is it negated?). Mar 28, 2018 at 20:58
  • 13
    Nope - that's just a weird way bash has of doing the assignment. I'll add some more examples to clarify this a bit... thanks!
    – Brad Parks
    Mar 29, 2018 at 11:09
  • It looks this is the limit of bash argument. Using python terminology, this is not optional, it is positional. It is just a positional argument with default values. Is there no really optional argument in bash? Feb 17 at 8:20
  • you may be able to use getopts to get what you want - Here's 2 stackoverflow answers that go into greater detail: dfeault values and inside a function
    – Brad Parks
    Feb 17 at 12:47
  • Note also, that to confuse even more (with JSON/python dicts) no space is permitted anywhere, e.g. after the colon and/or after/before the dash... where is the principle of least astonishment here?:)
    – mirekphd
    May 19 at 8:39
65
if [ ! -z $1 ] 
then 
    : # $1 was given
else
    : # $1 was not given
fi
5
  • 2
    Technically, if you pass in an empty string '' that might count as a parameter, but your check will miss it. In that case $# would say how many parameters were given
    – vmpstr
    Feb 17, 2012 at 17:40
  • 28
    -n is the same as ! -z.
    – l0b0
    Feb 21, 2012 at 15:15
  • I get different results using -n and ! -z so I would say that is not the case here.
    – Eliezer
    Dec 19, 2019 at 21:31
  • 5
    because you failed to quote the variable, [ -n $1 ] will always be true. If you use bash, [[ -n $1 ]] will behave as you expect, otherwise you must quote [ -n "$1" ] Mar 19, 2020 at 12:33
  • 2
    For ones like me: forget the ":" in the code, it's not required, replace it with your real commands! Nov 12, 2021 at 13:52
30

You can check the number of arguments with $#

#!/bin/bash
if [ $# -ge 1 ]
then
    $1
else
    foo
fi
0
12

please don't forget, if its variable $1 .. $n you need write to a regular variable to use the substitution

#!/bin/bash
NOW=$1
echo  ${NOW:-$(date +"%Y-%m-%d")}
2
  • 2
    Brad's answer above proves that argument variables can also be substituted without intermediate vars.
    – Vadzim
    Mar 28, 2016 at 10:05
  • 2
    +1 for noting the way to use a command like date as the default instead of a fixed value. This is also possible: DAY=${1:-$(date +%F -d "yesterday")}
    – Garren S
    Jan 6, 2017 at 21:07
6

This allows default value for optional 1st arg, and preserves multiple args.

 > cat mosh.sh
   set -- ${1:-xyz} ${@:2:$#} ; echo $*    
 > mosh.sh
   xyz
 > mosh.sh  1 2 3
   1 2 3 
5

For optional multiple arguments, by analogy with the ls command which can take one or more files or by default lists everything in the current directory:

if [ $# -ge 1 ]
then
    files="$@"
else
    files=*
fi
for f in $files
do
    echo "found $f"
done

Does not work correctly for files with spaces in the path, alas. Have not figured out how to make that work yet.

4

It's possible to use variable substitution to substitute a fixed value or a command (like date) for an argument. The answers so far have focused on fixed values, but this is what I used to make date an optional argument:

~$ sh co.sh
2017-01-05

~$ sh co.sh 2017-01-04
2017-01-04

~$ cat co.sh

DAY=${1:-$(date +%F -d "yesterday")}
echo $DAY
0

When you use ${1: } you can catch the first parameter(1) passed to your function or(:) you can catch a blank space like a default value.

For example. To be able to use Laravel artisan, I put this into my .bash_aliases file:

artisan() {
    docker exec -it **container_name** php artisan ${1: } ${2: } ${3: } ${4: } ${5: } ${6: } ${7: }
}  

and now, I can just type in command line:

  • artisan -- and all parameters(${1: } ${2: } ${3: } ${4: } ${5: } ${6: } ${7: }) will be just blank spaces
  • artisan cache:clear -- and the first parameter ( ${1: } ) will be cache:clear and all the others will be just blank spaces

So, in this case I can pass 7 parameters optionally.

I hope it can help someone.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.