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I'm trying to match a version number from a string in the format 4.6, or 2.8. I have the following which I will eventually use in a function in my .bashrc file to find the OS version:

function test () {
    string="abc ABC12 123 3.4 def";
    echo `expr match "$string" '[0-9][.][0-9]'`
}

However, this doesn't match the 3.4 in the string. Can anyone point me in the right direction here?

Thanks.

share|improve this question
    
can't see why it souldn't work - maybe, try using the "." as it is escaped instead of in bracets eg. [0-9]\.[0-9] –  pastacool Aug 23 '11 at 10:20
    
Isn't [.] any single character? Does your function match anything at all? I don't know the specifics of regex in bash, but I would assume the match would be something like "2 1". –  Oliver Aug 23 '11 at 10:20
    
@oliver: not if within brakets, then it's used as-is –  pastacool Aug 23 '11 at 10:22
1  
Are you sure you understand what should happen? Seems to me that expr match STRING REGEX returns 0 if there's a match, nonzero otherwise. This is what happens with your example on my machine. –  dancek Aug 23 '11 at 10:25
    
I got it working using expr match "$string" '.*([0-9][.][0-9]*)' This way it successfully prints the x.x number. –  SutureSelf Aug 23 '11 at 10:38

5 Answers 5

up vote 3 down vote accepted

First, you can drop the echo - expr prints its result to stdout in any case.

Second, your regex needs brackets (otherwise it prints the number of characters matched, not the match itself), and it needs to begin with .*.

expr match "$string" '.*\([0-9][.][0-9]\)'

From the info expr page:

STRING : REGEX'

 Perform pattern matching.  The arguments are converted to strings
 and the second is considered to be a (basic, a la GNU `grep')
 regular expression, with a `^' implicitly prepended.  The first
 argument is then matched against this regular expression.

 If the match succeeds and REGEX uses `\(' and `\)', the `:'
 expression returns the part of STRING that matched the
 subexpression; otherwise, it returns the number of characters
 matched.
share|improve this answer

Depending on your version of bash, there's no need to call out to expr:

$ [[ "abc ABC12 123 3.4 def" =~ [0-9][.][0-9] ]] && echo ${BASH_REMATCH[0]}
3.4
share|improve this answer

Thinking outside the box: if what you are looking for is determining the OS version in a script, just use uname -r or uname -v (it's POSIX). Messing with regular expression is likely to have issues as each OS may have different ways to express its version. OS vendors are so creative in inventing version jumps forward and backward, some have letters in there, and even roman numerals are not unheard of (think System V).

See http://pubs.opengroup.org/onlinepubs/9699919799/utilities/uname.html

I use in my .profile a snippet like this:

case "`uname -sr`" in
  (*BSD*)     OS=`uname -s`;;
  (SunOS\ 4*) OS=SunOS;;
  (SunOS\ 5*) OS=Solaris;;
  (IRIX\ 5*)  OS=IRIX;;
  (HP*)       OS=HP-UX;;
  (Linux*)    OS=Linux;;
  (CYGWIN*)   OS=Cygwin;;
  (*)         OS=generic
esac
share|improve this answer

On Mac OS X 10.6.8:

# cf. http://tldp.org/LDP/abs/html/refcards.html#AEN22429
string="abc ABC12 123 3.4 def"
expr "$string" : '.*\([0-9].[0-9]\)'    #  3.4
share|improve this answer
expr match "$string" '.*[0-9][.][0-9]'
share|improve this answer
1  
don't know about the bash part but just the regex will match everything until (and including) 3.4 –  pastacool Aug 23 '11 at 11:06

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