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I'm trying to do something common enough: Parse user input in a shell script. If the user provided a valid integer, the script does one thing, and if not valid, it does something else. Trouble is, I haven't found an easy (and reasonably elegant) way of doing this - I don't want to have to pick it apart char by char.

I know this must be easy but I don't know how. I could do it in a dozen languages, but not BASH!

In my research I found this:

http://stackoverflow.com/questions/136146/regular-expression-to-test-whether-a-string-consists-of-a-valid-real-number-in-ba

And there's an answer therein that talks about regex, but so far as I know, that's a function available in C (among others). Still, it had what looked like a great answer so I tried it with grep, but grep didn't know what to do with it. I tried -P which on my box means to treat it as a PERL regexp - nada. Dash E (-E) didn't work either. And neither did -F.

Just to be clear, I'm trying something like this, looking for any output - from there, I'll hack up the script to take advantage of whatever I get. (IOW, I was expecting that a non-conforming input returns nothing while a valid line gets repeated.)

snafu=$(echo "$2" | grep -E "/^[-+]?(?:\.[0-9]+|(?:0|[1-9][0-9]*)(?:\.[0-9]*)?)$/")
if [ -z "$snafu" ] ;
then
   echo "Not an integer - nothing back from the grep"
else
   echo "Integer."
fi

Would someone please illustrate how this is most easily done?

Frankly, this is a short-coming of TEST, in my opinion. It should have a flag like this

if [ -I "string" ] ;
then
   echo "String is a valid integer."
else
   echo "String is not a valid integer."
fi

Thanks.

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3  
FYI: [ is old compatible test; [[ is Bash's new thing, with more operations and different quoting rules. If you've already decided to stick with Bash, go for [[ (it's really much nicer); if you need portability to other shells, avoid [[ completely. –  ephemient Feb 5 '10 at 21:29
    

9 Answers 9

up vote 35 down vote accepted
[[ $var =~ ^-?[0-9]+$ ]]
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2  
Thanks Ignacio, I'll try it in a second. Would you mind explaining it so I can learn a little? I gather it reads, "At the start of the string (^), a minus sign (-) is optional (?), followed by any number of characters between zero and 9, inclusive" ... and what then might the +$ mean? Thanks. –  Richard T Feb 5 '10 at 21:09
5  
The + means "1 or more of the preceding", and the $ indicates the end of the input pattern. So the regex matches an optional - followed by one or more decimal digits. –  Ignacio Vazquez-Abrams Feb 5 '10 at 21:14

For portability to pre-Bash 3.1 (when the =~ test was introduced), use expr.

if expr "$string" : '-\?[0-9]\+$' >/dev/null
then
  echo "String is a valid integer."
else
  echo "String is not a valid integer."
fi

expr STRING : REGEX searches for REGEX anchored at the start of STRING, echoing the first group (or length of match, if none) and returning success/failure. This is old regex syntax, hence the excess \. -\? means "maybe -", [0-9]\+ means "one or more digits", and $ means "end of string".

Bash also supports extended globs, though I don't recall from which version onwards.

shopt -s extglob
case "$string" of
    @(-|)[0-9]*([0-9]))
        echo "String is a valid integer." ;;
    *)
        echo "String is not a valid integer." ;;
esac

# equivalently, [[ $string = @(-|)[0-9]*([0-9])) ]]

@(-|) means "- or nothing", [0-9] means "digit", and *([0-9]) means "zero or more digits".

share|improve this answer
    
Thank you ephemient, much obliged. I had never seen the =~ syntax before - and still have no idea what it's supposed to mean - approximately equal?! ...I've never been excited to program in BASH but it is necessary some times! –  Richard T Feb 5 '10 at 21:18
    
In awk, ~ was the "regex match" operator. In Perl (as copied from C), ~ was already used for "bit complement", so they used =~. This later notation got copied to several other languages. (Perl 5.10 and Perl 6 like ~~ more, but that has no impact here.) I suppose you could look at it as some sort of approximate equality... –  ephemient Feb 5 '10 at 21:21
    
Excellent post AND edit! I really appreciate explaining what it means. I wish I could mark both yours and Ignacio's posts as THE correct answer. -frown- You guys are both great. But as you have double the reputation he does, I'm giving it to Ignacio - hope you understand! -smile- –  Richard T Feb 5 '10 at 21:23

Wow... there are some many good solutions here !! Of all the solutions above, I agree with "nortally" that using the -eq one liner is the coolest.

I am running GNU bash, version 4.1.5 (Debian). I have also checked this on ksh (SunSO 5.10).

Here is my version of checking if $1 is an integer or not:

if [ "$1" -eq "$1" ] 2>/dev/null
then
    echo "$1 is an integer !!"
else
    echo "ERROR: first paramter must be an integer."
    echo $USAGE
    exit 1
fi

This also carters for -ve number which some of the above solutions will have a fault negative result and it will allow a prefix of "+" e.g. +30 which obviously is an integer.

Results:

$ int_check.sh 123
123 is an integer !!

$ int_check.sh 123+
ERROR: first paramter must be an integer.

$ int_check.sh -123
-123 is an integer !!

$ int_check.sh +30
+30 is an integer !!

$ int_check.sh -123c
ERROR: first paramter must be an integer.

$ int_check.sh 123c
ERROR: first paramter must be an integer.

$ int_check.sh c123
ERROR: first paramter must be an integer.

The solution provided by Ignacio Vazquez-Abrams was also very neat (if you like regex) after it was explained. However, it will not cater for positive number with the + prefix, but it can easily be fixed as below:

[[ $var =~ ^[-+]?[0-9]+$ ]]
share|improve this answer
    
Nice! Pretty similar to this, though. –  devnull Oct 1 '13 at 13:47
    
Yes. It is similar. However, I was looking for a one liner solution for the "if" statement. I thought that I don't really need to call a function for this. Also, I can see that the redirection of the stderr to stdout in the function. When I tried, the stderr message "integer expression expected" was displayed which was not desirable for me. –  Peter Ho Oct 1 '13 at 14:33
    
+1 for the alternative. –  devnull Oct 1 '13 at 14:36

Latecomer to the party here. I'm extremely surprised none of the answers mention the simplest, fastest, most portable solution; the case statement.

case ${variable#[-+]} in
  *[!0-9]* ) echo Not a number ;;
  * ) echo Valid number ;;
esac

The trimming of any sign before the comparison feels like a bit of a hack, but that makes the expression for the case statement so much simpler.

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2  
I wish I could upvote this once every time I come back to this question because of dupes. It grinds my gears that a simple yet POSIX-compliant solution is buried in the bottom. –  Adrian Frühwirth Apr 24 at 9:10

For me, the simplest solution was to use the variable inside a (()) expression, as so:

if ((VAR > 0))
then
  echo "$VAR is a positive integer."
fi

Of course, this solution is only valid if a value of zero doesn't make sense for your application. That happened to be true in my case, and this is much simpler than the other solutions.

share|improve this answer
    
You can even go simpler with if (( var )); then echo "$var is an int."; fi –  Aaron R. Apr 2 at 22:22
2  
But that will also return true for negative integers, @aaronr, not what the OP was looking for. –  Trebor Rude Apr 2 at 22:28

Here's yet another take on it (only using the test builtin command and its return code):

function is_int() { return $(test "$@" -eq "$@" > /dev/null 2>&1); } 

input="-123"

if $(is_int "${input}");
then
   echo "Input: ${input}"
   echo "Integer: $[${input}]"
else
   echo "Not an integer: ${input}"
fi
share|improve this answer
    
Yes, this is also a valid approach. –  Richard T Feb 7 '10 at 17:11
1  
It's not necessary to use $() with if. This works: if is_int "$input". Also, the $[] form is deprecated. Use $(()) instead. Inside either, the dollar sign can be omitted: echo "Integer: $((input))" Curly braces aren't necessary anywhere in your script. –  Dennis Williamson Sep 5 '13 at 19:13

You can strip non-digits and do a comparison. Here's a demo script:

for num in "44" "-44" "44-" "4-4" "a4" "4a" ".4" "4.4" "-4.4" "09"
do
    match=${num//[^[:digit:]]}    # strip non-digits
    match=${match#0*}             # strip leading zeros
    echo -en "$num\t$match\t"
    case $num in
        $match|-$match)    echo "Integer";;
                     *)    echo "Not integer";;
    esac
done

This is what the test output looks like:

44      44      Integer
-44     44      Integer
44-     44      Not integer
4-4     44      Not integer
a4      4       Not integer
4a      4       Not integer
.4      4       Not integer
4.4     44      Not integer
-4.4    44      Not integer
09      9       Not integer
share|improve this answer
    
Hi Dennis, Thank you for introducing me to the syntax to the right of match= above. I haven't ever noticed that type syntax before. I recognize some of the syntax from tr (a utility I haven't quite mastered, but fumble my way through sometimes); where can I read up on such syntax? (ie, what's this type of thing called?) Thanks. –  Richard T Feb 6 '10 at 16:00
    
You can look in the Bash man page in the section called "Parameter Expansion" for information about ${var//string} and ${var#string} and in the section called "Pattern Matching" for [^[:digit:]]` (which is also covered in man 7 regex). –  Dennis Williamson Feb 6 '10 at 19:33
1  
match=${match#0*} does not strip leading zeroes, it strips at most one zero. Using expansion this can only be achieved using extglob via match=${match##+(0)}. –  Adrian Frühwirth Apr 24 at 9:15

I like the solution using the -eq test, because it's basically a one-liner. My own solution was to use brace expansion to throw away all the numerals and see if there was anything left. (I'm still using 3.0, haven't used [[ or expr before, but glad to meet them.)

if [ "${INPUT_STRING//[0-9]*}" = "" ]; then
  # yes, natural number
else
  # no, has non-numeral chars
fi

share|improve this answer

or with sed:

   test -z $(echo "2000" | sed s/[0-9]//g) && echo "integer" || echo "no integer"
   # integer

   test -z $(echo "ab12" | sed s/[0-9]//g) && echo "integer" || echo "no integer"
   # no integer
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