I need to check the existence of an input argument. I have the following script

if [ "$1" -gt "-1" ]
  then echo hi
fi

I get

[: : integer expression expected

How do I check the input argument1 first to see if it exists?

up vote 1680 down vote accepted

It is:

if [ $# -eq 0 ]
  then
    echo "No arguments supplied"
fi

The $# variable will tell you the number of input arguments the script was passed.

Or you can check if an argument is an empty string or not like:

if [ -z "$1" ]
  then
    echo "No argument supplied"
fi

The -z switch will test if the expansion of "$1" is a null string or not. If it is a null string then the body is executed.

  • 43
    I like to do it this way, in terse syntax and still POSIX acceptable. [ -z "$1" ] && echo "No argument supplied" I prefer one-liners, as they are easier for me; and it's also faster to check exit value, compared to using if – J. M. Becker Jun 2 '12 at 20:38
  • 126
    You probably want to add an exit 1 at the end of your echos inside the if block when the argument is required for the script to function. Obvious, but worth noting for completeness. – msanford Feb 5 '13 at 16:37
  • 9
    It is possible, though rarely useful, for the first argument to be initialized but empty; programname "" secondarg third. The $# check unambiguously checks the number of arguments. – tripleee May 6 '13 at 4:40
  • 17
    For a noob, especially someone who comes from a non-scripting background, it is also important to mention some peculiarities about these things. You could have also mentioned that we need a space after the opening and the closing brace. Otherwise things do not work. I am myself a scripting noob (I come from C background) and found it the hard way. It was only when I decided to copy the entire thing "as is" that things worked for me. It was then I realized I had to leave a space after the opening brace and before the closing one. – HighOnMeat Sep 13 '13 at 7:17
  • 60
    and for optional args if [ ! -z "$1" ]; then ... – gcb Feb 26 '14 at 23:18

It is better to demonstrate this way

if [[ $# -eq 0 ]] ; then
    echo 'some message'
    exit 1
fi

You normally need to exit if you have too few arguments.

  • 3
    This is the duplicate of the accepted answer, so I believe it should be removed. – kenorb Sep 10 '15 at 22:50
  • 55
    No it isn't: this has exit 1 which you usually want, and uses the [[ ]] test which (iirc) is usually more reasonable. So for people blindly copy-pasting code this is the better answer. – dshepherd Nov 26 '15 at 11:22
  • 25
    To know more about the difference between [ ] and [[ ]] see stackoverflow.com/questions/3427872/… – Sebastián Grignoli Feb 3 '16 at 19:31
  • 2
    I think the pointer to [[ ]] and the exit 1 are helpful. – Steven Chanin Aug 30 '16 at 16:44

If you're only interested in detecting if a particular argument is missing, parameter substitution is great:

#!/bin/bash
# usage-message.sh

: ${1?"Usage: $0 ARGUMENT"}
#  Script exits here if command-line parameter absent,
#+ with following error message.
#    usage-message.sh: 1: Usage: usage-message.sh ARGUMENT

In some cases you need to check whether the user passed an argument to the script and if not, fall back to a default value. Like in the script below:

scale=${2:-1}
emulator @$1 -scale $scale

Here if the user hasn't passed scale as a 2nd parameter, I launch Android emulator with -scale 1 by default. ${varname:-word} is an expansion operator. There are other expansion operators as well:

  • ${varname:=word} which sets the undefined varname instead of returning the word value;
  • ${varname:?message} which either returns varname if it's defined and is not null or prints the message and aborts the script (like the first example);
  • ${varname:+word} which returns word only if varname is defined and is not null; returns null otherwise.
  • 1
    The example above seems to use ${varname?message}. Is the extra : a typo, or does it change behavior? – Eki Mar 2 '17 at 16:52
  • 1
    Eki, the ":" is a builtin command and shorthand for /bin/true in this example. It represents a do-nothing command that basically ignores the arguments it is provided. It is essential in this test in order to keep the interpreter from trying to execute the contents of "$varname" (which you certainly do NOT want to happen). Also worth noting; you can test as many variables with this method as you wish. And all with specific error messages. i.e. : ${1?"First argument is null"} ${2?"Please provide more than 1 argument"} – user.friendly Aug 16 '17 at 3:29

Try:

 #!/bin/bash
 if [ "$#" -eq  "0" ]
   then
     echo "No arguments supplied"
 else
     echo "Hello world"
 fi
  • 2
    Why do you need double-quotes for $# and 0? – user13107 Dec 12 '14 at 3:00
  • 1
    No problem if we use without double-quotes as like $# and 0 – Ranjithkumar T Dec 15 '14 at 7:15
  • on windows, mingw this is the only way to go. – Lajos Meszaros Jun 11 '15 at 14:56
  • 1
    This answer provides great starting point for a script I just made. Thanks for showing the else, too. – Chris K Jul 30 '15 at 22:46
  • 1
    @user13107 double quoted variables in bash prevent globbing (i.e. expanding filenames like foo*) and word splitting (i.e. splitting the contents if the value contains whitespace). In this case it's not necessary to quote $# because both of those cases do not apply. Quoting the 0 is also not necessary, but some people prefer to quote values since they are really strings and that makes it more explicit. – Dennis Jan 31 '16 at 20:21

Another way to detect if arguments were passed to the script:

((!$#)) && echo No arguments supplied!

Note that (( expr )) causes the expression to be evaluated as per rules of Shell Arithmetic.

In order to exit in the absence of any arguments, one can say:

((!$#)) && echo No arguments supplied! && exit 1

Another (analogous) way to say the above would be:

let $# || echo No arguments supplied

let $# || { echo No arguments supplied; exit 1; }  # Exit if no arguments!

help let says:

let: let arg [arg ...]

  Evaluate arithmetic expressions.

  ...

  Exit Status:
  If the last ARG evaluates to 0, let returns 1; let returns 0 otherwise.
  • 1
    -1 this might be the worst method if validating existence of an argument.. plus it can trigger history substitution and potentially do bad things. – user.friendly Aug 16 '17 at 3:42
  • 1
    instead of exit which kills my zsh process, I use return which does not kill it – Timo Dec 19 '17 at 11:53

I often use this snippet for simple scripts:

#!/bin/bash

if [ -z "$1" ]; then
    echo -e "\nPlease call '$0 <argument>' to run this command!\n"
    exit 1
fi

As a small reminder, the numeric test operators in Bash only work on integers (-eq, -lt, -ge, etc.)

I like to ensure my $vars are ints by

var=$(( var + 0 ))

before I test them, just to defend against the "[: integer arg required" error.

  • 1
    Neat trick, but please note: due to bash's inability to handle floats in arithmetic, this method can cause a syntax error and return non-zero which would be a hindrance where errexit is enabled. var=$(printf "%.0f" "$var") can handle floats but suffers from the non-zero exit when given a string. If you don't mind an awk, this method I use seems to be the most robust for enforcing an integer: var=$(<<<"$var" awk '{printf "%.0f", $0}'). If var is unset, it defaults to "0". If var is a float, it is rounded to the nearest integer. Negative values are also fine to use. – user.friendly Aug 16 '17 at 3:56

If you'd like to check if the argument exists, you can check if the # of arguments is greater than or equal to your target argument number.

The following script demonstrates how this works

test.sh

#!/usr/bin/env bash

if [ $# -ge 3 ]
then
  echo script has at least 3 arguments
fi

produces the following output

$ ./test.sh
~
$ ./test.sh 1
~
$ ./test.sh 1 2
~
$ ./test.sh 1 2 3
script has at least 3 arguments
$ ./test.sh 1 2 3 4
script has at least 3 arguments

Only because there's a more base point to point out I'll add that you can simply test your string is null:

if [ "$1" ]; then
  echo yes
else
  echo no
fi

Likewise if you're expecting arg count just test your last:

if [ "$3" ]; then
  echo has args correct or not
else
  echo fixme
fi

and so on with any arg or var

protected by codeforester Aug 3 at 19:20

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