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I just can't figure out how do I make sure an argument passed to my script is a number or not.

All I want to do is something like this:

test *isnumber* $1 && VAR=$1 || echo "need a number"

Any help?

UPDATE: I managed (whit Charles' help) to do it, but I'm not yet sure it's the best way to do that (even though it worked on my tests). This is how it ended up:

[[ $1 =~ "^[0-9]+$" ]] && echo "number" && exit 0 || echo "not a number" && exit 1
share|improve this question
3  
As an aside -- the test && echo "foo" && exit 0 || echo "bar" && exit 1 approach you're using may have some unintended side effects -- if the echo fails (perhaps output is to a closed FD), the exit 0 will be skipped, and the code will then try to echo "bar". If it fails at that too, the && condition will fail, and it won't even execute exit 1! Using actual if statements rather than &&/|| is less prone to unexpected side effects. –  Charles Duffy Aug 24 '11 at 14:12
    
@CharlesDuffy That's the kind of really clever thinking that most people only get to when they have to track down hairy bugs...! I didn't ever think echo could return failure. –  Camilo Martin Jun 25 at 17:37

23 Answers 23

up vote 187 down vote accepted

One approach is to use a regular expression, like so:

re='^[0-9]+$'
if ! [[ $yournumber =~ $re ]] ; then
   echo "error: Not a number" >&2; exit 1
fi

If the value is not necessarily an integer, consider amending the regex appropriately; for instance:

^[0-9]+([.][0-9]+)?$

...or, to handle negative numbers:

^-?[0-9]+([.][0-9]+)?$
share|improve this answer
5  
+1 for this approach, but take care with decimals, doing this test with, by example, "1.0" or "1,0" prints "error: Not a number". –  sourcerebels Apr 30 '09 at 14:30
8  
I find the ''exec >&2; echo ...'' rather silly. Just ''echo ... >&2'' –  lhunath May 2 '09 at 10:08
2  
@Ben do you really want to handle more than one minus sign? I'd make it ^-? rather than ^-* unless you're actually doing the work to handle multiple inversions correctly. –  Charles Duffy Jun 26 '11 at 22:57
2  
What does exec >&2 do? –  Sandra Schlichting Oct 17 '12 at 14:25
3  
@SandraSchlichting Makes all future output go to stderr. Not really a point to it here, where there's only one echo, but it's a habit I tend to get into for cases where error messages span multiple lines. –  Charles Duffy Oct 17 '12 at 14:28

Without bashisms (works even in the System V sh),

case $string in
    ''|*[!0-9]*) echo bad ;;
    *) echo good ;;
esac

This rejects empty strings and strings containing non-digits, accepting everything else.

Negative or floating-point numbers need some additional work. An idea is to exclude - / . in the first "bad" pattern and add more "bad" patterns containing the inappropriate uses of them (?*-* / *.*.*)

share|improve this answer
5  
+1 -- this is idiomatic, portable way back to the original Bourne shell, and has built-in support for glob-style wildcards. If you come from another programming language, it looks eerie, but it's much more elegant than coping with the brittleness of various quoting issues and endless backwards/sideways compatibility problems with if test ... –  tripleee Sep 4 '11 at 13:21
    
You can change the first line to ${string#-} (which doesn't work in antique Bourne shells, but works in any POSIX shell) to accept negative integers. –  Gilles Jan 3 '12 at 17:17
    
Also, this is easy to extend to floats -- just add '.' | *.*.* to the disallowed patterns, and add dot to the allowed characters. Similarly, you can allow an optional sign before, although then I would prefer case ${string#[-+]} to simply ignore the sign. –  tripleee Jun 7 at 12:10
    
Using ksh88, and this works very well for me! –  bgStack Jul 8 at 13:07

I use this:

"$var" -eq "$var"

as in:

#!/bin/bash

var=a

if [ "$var" -eq "$var" ] 2>/dev/null; then
  echo number
else
  echo not a number
fi

Redirection of standard error is there to hide the "integer expression expected" message that bash prints out in case we do not have a number.

EDIT: This approach do not behave correctly with numbers with decimal point. My fault.

share|improve this answer
5  
I'd still recommend this (but with the variables quoted to allow for empty strings), since the result is guaranteed to be usable as a number in Bash, no matter what. –  l0b0 Dec 24 '10 at 8:43
6  
Take care to use single brackets; [[ a -eq a ]] evaluates to true (both arguments get converted to zero) –  Tgr Aug 28 '12 at 9:30
    
This is indeed very neat and works in bash (which was requested) and most other shells, but sadly not in ksh. If you want to be portable, use jilles' solution. –  Adrian Frühwirth May 4 '13 at 14:12
2  
Very nice! Note this this only works for an integer, not any number. I needed to check for a single argument which must be an integer, so this worked well: if ! [ $# -eq 1 -o "$1" -eq "$1" ] 2>/dev/null; then –  haridsv Aug 2 '13 at 13:07
    
This is brilliant. Thank you. –  Kyle Strand Sep 4 '13 at 18:45

I'm surprised at the solutions directly parsing number formats in shell. shell is not well suited to this, being a DSL for controlling files and processes. There are ample number parsers a little lower down, for example:

isnumber() { test "$1" && printf '%f' "$1" >/dev/null 2>&1; }

Change '%f' to whatever particular format you require.

share|improve this answer
1  
isnumber(){ printf '%f' "$1" &>/dev/null && echo "this is a number" || echo "not a number"; } –  sputnick Sep 28 '12 at 18:33
    
Nice solution. printf really works well, even errors with something appropriate-ish. –  dpb Feb 26 '13 at 21:57
2  
@sputnick your version breaks the inherent (and useful) return value semantics of the original function. So, instead, simply leave the function as-is, and use it: isnumber 23 && echo "this is a number" || echo "not a number" –  michael_n Jul 18 '13 at 23:54
2  
Shouldn't this have also 2>/dev/null, so that isnumber "foo" does not pollute stderr? –  gioele Jun 6 at 6:10
    
To call modern shells like bash "a DSL for controlling files and processes" is ignoring that they're used for much more than that - some distros have built entire package managers and web interfaces on it (as ugly as that might be). Batch files fit your description though, as even setting a variable there is difficult. –  Camilo Martin Jun 26 at 10:57

This tests if a number is a non negative integer and is both shell independent (i.e. without bashisms) and uses only shell built-ins:

[ -z "${num##[0-9]*}" ] && echo "is a number" || echo "is not a number";

BUT IS WRONG.
As jilles commented and suggested in his answer this is the correct way to do it using shell-patterns.

[ ! -z "${num##*[!0-9]*}" ] && echo "is a number" || echo "is not a number";
share|improve this answer
3  
This does not work properly, it accepts any string starting with a digit. Note that WORD in ${VAR##WORD} and similar is a shell pattern, not a regular expression. –  jilles Oct 16 '10 at 22:46
1  
Thank you very much! Answer updated. –  mrucci Oct 17 '10 at 23:15

I would try this:

printf "%g" "$var" &> /dev/null
if [[ $? == 0 ]] ; then
    echo "$var is a number."
else
    echo "$var is not a number."
fi

Note: this recognizes nan and inf as number.

share|improve this answer
1  
either duplicate of, or perhaps better suited as a comment to, pixelbeat's answer (using %f is probably better anyway) –  michael_n Jul 19 '13 at 0:01
    
Instead of checking the previous status code, why not just put it in the if itself? That's what if does... if printf "%g" "$var" &> /dev/null; then ... –  Camilo Martin Jun 26 at 11:00

Old question, but I just wanted to tack on my solution. This one doesn't require any strange shell tricks, or rely on something that hasn't been around forever.

if [ -n "`echo $var | sed 's/[0-9]//g'`" ]; then
    echo 'is not numeric'
else
    echo 'is numeric'
fi

Basically it just removes all digits from the input, and if you're left with a non-zero-length string then it wasn't a number.

share|improve this answer

http://tldp.org/LDP/Bash-Beginners-Guide/html/sect_04_03.html

You can also use bash's character classes.

if [[ $VAR = *[[:digit:]]* ]]; then
 echo "$VAR is numeric"
else
 echo "$VAR is not numeric"
fi

Numerics will include space, the decimal point, and "e" or "E" for floating point.

But, if you specify a C-style hex number, i.e. "0xffff" or "0XFFFF", [[:digit:]] returns true. A bit of a trap here, bash allows you do to something like "0xAZ00" and still count it as a digit (isn't this from some weird quirk of GCC compilers that let you use 0x notation for bases other than 16???)

You might want to test for "0x" or "0X" before testing if it's a numeric if your input is completely untrusted, unless you want to accept hex numbers. That would be accomplished by:

if [[ ${VARIABLE:1:2} = "0x" ]] || [[ ${VARIABLE:1:2} = "0X" ]]; then echo "$VAR is not numeric"; fi
share|improve this answer
5  
[[ $VAR = *[[:digit:]]* ]] will return true if the variable contains a number, not if it is an integer. –  glenn jackman Oct 26 '12 at 14:48

I was looking at the answers and... realized that nobody thout about FLOAT numbers (with dot)!

Using grep is great too.
-E means extended regexp
-q means quite (doesn't echo)
-qE is the combination of both.

To test directly in the command line:

$ echo "32" | grep -E ^\-?[0-9]?\.?[0-9]+$  
# answer is: 32

$ echo "3a2" | grep -E ^\-?[0-9]?\.?[0-9]+$  
# answer is empty (false)

$ echo ".5" | grep -E ^\-?[0-9]?\.?[0-9]+$  
# answer .5

$ echo "3.2" | grep -E ^\-?[0-9]?\.?[0-9]+$  
# answer is 3.2

Using in a bash script:

if echo "$1" | grep -qE ^\-?[0-9]?\.?[0-9]+$; then
   # it IS numeric
else
   # it is NOT numeric.
fi

To match JUST integers, use this:

if echo "$1" | grep -qE ^\-?[0-9]+$; then
   # it IS numeric
else
   # it is NOT numeric.
fi
share|improve this answer
[[ $1 =~ ^[-0-9]+$ ]] && echo "number"

Don't forget - to include negatives!

share|improve this answer
    
What is the minimum version of bash? I just get bash: conditional binary operator expected bash: syntax error near unexpected token `=~' –  Paul Hargreaves Nov 28 '11 at 20:11
    
@PaulHargreaves =~ existed at least as far back as bash 3.0. –  Gilles Aug 22 at 22:45

Nobody suggested bash's extended pattern matching:

shopt -s extglob
[[ $1 == ?(-)+([0-9]) ]] && echo "$1 is an integer"
share|improve this answer

I use expr. It returns a non-zero if you try to add a zero to a non-numeric value:

if expr $number + 0 > /dev/null 2>&1
then
    echo "$number is a number"
else
    echo "$number isn't a number"
fi

It might be possible to use bc if you need non-integers, but I don't believe bc has quite the same behavior. Adding zero to a non-number gets you zero and it returns a value of zero too. Maybe you can combine bc and expr. Use bc to add zero to $number. If the answer is 0, then try expr to verify that $number isn't zero.

share|improve this answer

Just a follow up to @mary. But because I don't have enough rep, couldn't post this as a comment to that post. Anyways, here is what I used:

isnum() { awk -v a=$1 'BEGIN {print (a == a + 0)}'; }

The function will return "1" if the argument is a number, otherwise will return "0". This works for integers as well as floats. Usage is something like:

n=-2.05e+07
res=`isnum "$n"`
if [ "$res" == "1" ]; then
     echo "$n is a number"
else
     echo "$n is not a number"
fi
share|improve this answer

I use the following (for integers):

## ##### constants
##
## __TRUE - true (0)
## __FALSE - false (1)
##
typeset -r __TRUE=0
typeset -r __FALSE=1

## --------------------------------------
## isNumber
## check if a value is an integer 
## usage: isNumber testValue 
## returns: ${__TRUE} - testValue is a number else not
##
function isNumber {
  typeset TESTVAR="$(echo "$1" | sed 's/[0-9]*//g' )"
  [ "${TESTVAR}"x = ""x ] && return ${__TRUE} || return ${__FALSE}
}

isNumber $1 
if [ $? -eq ${__TRUE} ] ; then
  print "is a number"
fi
share|improve this answer
    
Almost correct (you're accepting the empty string) but gratutiously complicated to the point of obfuscation. –  Gilles Jan 3 '12 at 17:16

Quick & Dirty: I know it's not the most elegant way, but I usually just added a zero to it and test the result. like so:

function isInteger {
  [ $(($1+0)) != 0 ] && echo "$1 is a number" || echo "$1 is not a number"
 }

x=1;      isInteger $x
x="1";    isInteger $x
x="joe";  isInteger $x
x=0x16 ;  isInteger $x
x=-32674; isInteger $x   

$(($1+0)) will return 0 or bomb if $1 is NOT an integer. for Example:

function zipIt  { # quick zip - unless the 1st parameter is a number
  ERROR="not a valid number. " 
  if [ $(($1+0)) != 0 ] ; then  # isInteger($1) 
      echo " backing up files changed in the last $1 days."
      OUT="zipIt-$1-day.tgz" 
      find . -mtime -$1 -type f -print0 | xargs -0 tar cvzf $OUT 
      return 1
  fi
    showError $ERROR
}

NOTE: I guess I never thought to check for floats or mixed types that will make the entire script bomb... in my case, I didn't want it go any further. I'm gonna play around with mrucci's solution and Duffy's regex - they seem the most robust within the bash framework...

share|improve this answer
2  
This accepts arithmetic expressions like 1+1, but rejects some positive integers with leading 0s (because 08 is an invalid octal constant). –  Gilles Jan 3 '12 at 17:20

You could use "let" too like this :

[ ~]$ var=1
[ ~]$ let $var && echo "It's a number" || echo "It's not a number"
It\'s a number
[ ~]$ var=01
[ ~]$ let $var && echo "It's a number" || echo "It's not a number"
It\'s a number
[ ~]$ var=toto
[ ~]$ let $var && echo "It's a number" || echo "It's not a number"
It\'s not a number
[ ~]$ 

But I prefer use the "=~" Bash 3+ operator like some answers in this thread.

share|improve this answer

I tried ultrasawblade's recipe as it seemed the most practical to me, and couldn't make it work. In the end i devised another way though, based as others in parameter substitution, this time with regex replacement:

[[ "${var//*([[:digit:]])}" ]]; && echo "$var is not numeric" || echo "$var is numeric"

It removes every :digit: class character in $var and checks if we are left with an empty string, meaning that the original was only numbers.

What i like about this one is its small footprint and flexibility. In this form it only works for non-delimited, base 10 integers, though surely you can use pattern matching to suit it to other needs.

share|improve this answer
    
Reading mrucci's solution, it looks almost the same as mine, but using regular string replacement instead of "sed style". Both use the same rules for pattern matching and are, AFAIK, interchangeable solutions. –  ata Oct 16 '10 at 22:41

I found quite a short version:

function isnum()
{
    return `echo "$1" | awk -F"\n" '{print ($0 != $0+0)}'`
}
share|improve this answer
    
um.. doesn't this just return 0 if the string is not a number? Does that means it doesn't work if your string is "0"? –  naught101 May 30 '12 at 4:43
    
@naught101 Quite right :) –  itsbruce Oct 26 '12 at 12:21
  • variable to check

    number=12345 or number=-23234 or number=23.167 or number=-345.234

  • check numeric or non-numeric

    echo $number | grep -E '^-?[0-9]*\.?[0-9]*$' > /dev/null

  • decide on further actions based on the exit status of the above

    if [ $? -eq 0 ]; then echo "Numeric"; else echo "Non-Numeric"; fi

share|improve this answer

To catch negative numbers:

if [[ $1 == ?(-)+([0-9.]) ]]
    then
    echo number
else
    echo not a number
fi
share|improve this answer

The accepted answer does not work here, I am on MacOS. The following code works:

if [ $(echo "$number" | grep -c '^[0-9]\+$') = 0 ]; then 
    echo "it is a number"
else
    echo "not a number"
fi
share|improve this answer

This is a little rough around the edges but a little more novice friendly.

if [ $number -ge 0 ]
then
echo "Continue with code block"
else
echo "We matched 0 or $number is not a number"
fi

This will cause an error and print "Illegal number:" if $number is not a number but it will not break out of the script. Oddly there is not a test option I could find to just test for an integer. The logic here will match any number that is greater than or equal to 0.

share|improve this answer
    
Your test misses 0, not to mention negative numbers. –  Gilles Jan 3 '12 at 17:14
    
also, this requires [[ ]], instead of [ ], otherwise it fails on non-integer strings. –  naught101 May 30 '12 at 4:55
    
A string like a also passes this test. I want to downvote... –  Steven Lu Mar 29 '13 at 18:37

Below is a Script written by me and used for a script integration with Nagios and it is working properly till now

#!/bin/bash
# Script to test variable is numeric or not
# Shirish Shukla
# Pass arg1 as number
a1=$1
a=$(echo $a1|awk '{if($1 > 0) print $1; else print $1"*-1"}')
b=$(echo "scale=2;$a/$a + 1" | bc -l 2>/dev/null)
if [[ $b > 1 ]]
then
    echo "$1 is Numeric"
else
    echo "$1 is Non Numeric"
fi

EG:

# sh isnumsks.sh   "-22.22"
-22.22 is Numeric

# sh isnumsks.sh   "22.22"
22.22 is Numeric

# sh isnumsks.sh   "shirish22.22"
shirish22.22 is Non  Numeric
share|improve this answer
6  
This is complex and broken. You need double quotes in echo "$a1", otherwise wildcards in the string are expanded and the outcome depends on what files are in the current directory (try isnumsks.sh "*", then try again after creating a file called 42). You're only looking at the first whitespace-delimited word, so 42 psych is misclassified as numeric. All kinds of input that are not numeric but valid bc syntax will screw this up, e.g. 2012-01-03. –  Gilles Jan 3 '12 at 17:07

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