11

I simply need to know how to make a regex that accepts a number that has up to 2 digits

All I have just now is

^[0-9]{2}$

Which would match a number with exactly 2 digits, but I don't know how to specify "match a number which has up to 2 digits".

Also, if there is a way to make sure that this number isn't 0 then that would be a plus, otherwise I can check that with Bash.

Thanks ! :)

Note that the input variable comes from read -p "make a choice" Number

EDITING MY POST - SHOWING CODE IN CONTEXT :

while true; do
    read -p "Please key in the number of the engineer of your choice, or leave empty to select them all: " Engineer
    if [ -z "$Engineer" ]; then
        echo "No particular user specified, all engineers will be selected."
        UserIdSqlString="Transactions.Creator!=0 "
        break
    else
        if [[ $Engineer =~ ^[0-9]{1,2}$ && $Engineer -ne 0 ]]; then
            echo "If you want a specific engineer type their number otherwise leave blank"  
        else
            echo "yes"
            break
        fi
    fi
done
5
  • Are you using grep or sed or something?
    – Mulan
    Nov 8, 2013 at 16:50
  • I've edited my post. I don't mind involving grep or sed at all :)
    – Bluz
    Nov 8, 2013 at 17:12
  • 1
    @Bluz, you have the if-else backward. if [[ $Engineer =~ ^[0-9]{1,2}$ && $Engineer -ne 0 ]]; returns true when you have a non-zero two digit number set into Engineer so echo "yes" should follow this
    – iruvar
    Nov 8, 2013 at 17:18
  • lol I am a doughnut...shows that I need a coffee break!! Thanks mate! :)
    – Bluz
    Nov 8, 2013 at 17:20
  • Your test still has a problem when Engineer's value is 08 or 09. Please see my comment in 1_CR's answer below. Nov 8, 2013 at 18:15

4 Answers 4

10

the bash [[ conditional expression supports extended regular expressions.

[[ $number =~ ^[0-9]{,2}$ && $number -ne 0 ]]

or as the inimitable @gniourf_gniourf points out in his comments, the following is needed to handle numbers with leading zeroes correctly

[[ $number =~ ^[0-9]{,2}$ ]] && ((number=10#$number))
9
  • mmmhhh....doesn't seem to work :( I can add a zero. Note that the variable comes from read -p . I don't know if that is relevant but I'll edit my question just in case.
    – Bluz
    Nov 8, 2013 at 17:00
  • @Bluz, have you tried if [[ $number =~ ^[0-9]{,2}$ && $number -ne 0 ]]; then echo 'yes'; fi after read -p "make a choice" number?
    – iruvar
    Nov 8, 2013 at 17:04
  • 2
    Be aware that this solution is broken in the case when the value of number is 08 or 09, since in the checking $number -ne 0, bash will try to interpret 08 or 09 as a number in radix 8 (because prefixed by a 0) and this will throw an error. Nov 8, 2013 at 18:11
  • 4
    Maybe [[ $number =~ ^[[:digit:]]{1,2}$ ]] && ((number=10#$number)) would be better: it will assign to number its value in radix 10, even if there are leading zeros, and at the same time check it's not zero. :) Nov 8, 2013 at 18:13
  • 1
    @gniourf_gniourf, looking forward to your book on bash ;-) Incorporated in the answer
    – iruvar
    Nov 8, 2013 at 18:19
6
^([1-9]|[1-9]{1}[0-9]{1})$

matches every number from 1,2,3...99

6

The answer that I found is:

^[0-9]{1,2}$
0
#!/bin/bash
if [ "$1" -gt 0 ] 2>/dev/null ;then 
    echo "$1 is number." 
else 
    echo 'no.' 
fi 

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