Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I see lots of examples and man pages on how to do things like search-and-replace using sed, awk, or gawk.

But in my case, I have a regular expression that I want to run against a text file to extract a specific value. I don't want to do search-and-replace. This is being called from bash. Let's use an example:

Example regular expression:

.*abc([0-9]+)xyz.*

Example input file:

a
b
c
abc12345xyz
a
b
c

As simple as this sounds, I cannot figure out how to call sed/awk/gawk correctly. What I was hoping to do, is from within my bash script have:

myvalue=$( sed <...something...> input.txt )

Things I've tried include:

sed -e 's/.*([0-9]).*/\\1/g' example.txt # extracts the entire input file
sed -n 's/.*([0-9]).*/\\1/g' example.txt # extracts nothing
share|improve this question
4  
Wow...people voted this question down -1? Is it really that inappropriate of a question? – Stéphane Nov 14 '09 at 9:11
    
It seems perfectly appropriate, using Regex and powerful command line utilities like sed/awk or any editor like vi, emacs or teco can be more like programming than just using some ol' application. IMO this belongs on SO more than SU. – Dereleased Nov 14 '09 at 9:16
    
Perhaps it was voted down because in its initial form it didn't clearly define some of its requirements. It still doesn't, unless you read the OP's comments to the answers (including the one I deleted when things went pear-shaped). – pavium Nov 14 '09 at 9:45
up vote 26 down vote accepted

My sed (Mac OS X) didn't work with +. I tried * instead and I added p tag for printing match:

sed -n 's/^.*abc\([0-9]*\)xyz.*$/\1/p' example.txt

For matching at least one numeric character without +, I would use:

sed -n 's/^.*abc\([0-9][0-9]*\)xyz.*$/\1/p' example.txt
share|improve this answer
    
Thank you, this worked for me as well once I used * instead of +. – Stéphane Nov 14 '09 at 8:59
2  
...and the "p" option to print the the match, which I didn't know about either. Thanks again. – Stéphane Nov 14 '09 at 9:05
1  
I had to escape the + and then it worked for me: sed -n 's/^.*abc\([0-9]\+\)xyz.*$/\1/p' – Dennis Williamson Nov 14 '09 at 9:23
2  
That's because you're not using modern RE format therefore + is a standard character and you're supposed to express that with {,} syntax. You can add use -E sed option to trigger modern RE format. Check re_format(7), specifically last paragraph of DESCRIPTION developer.apple.com/library/mac/#documentation/Darwin/Reference/… – anddam Mar 3 '13 at 16:33

I use perl to make this easier for myself. e.g.

perl -ne 'print $1 if /.*abc([0-9]+)xyz.*/'

This runs Perl, the -n option instructs Perl to read in one line at a time from STDIN and execute the code. The -e option specifies the instruction to run.

The instruction runs a regexp on the line read, and if it matches prints out the contents of the first set of bracks ($1).

You can do this will multiple file names on the end also. e.g.

perl -ne 'print $1 if /.*abc([0-9]+)xyz.*/' example1.txt example2.txt

share|improve this answer
    
Thanks, but we don't have access to perl, which is why I was asking about sed/awk/gawk. – Stéphane Nov 14 '09 at 8:50

If your version of grep supports it you could use the -o option to print only the portion of any line that matches your regexp.

If not then here's the best sed I could come up with:

sed -e '/[0-9]/!d' -e 's/^[^0-9]*//' -e 's/[^0-9]*$//'

... which deletes/skips with no digits and, for the remaining lines, removes all leading and trailing non-digit characters. (I'm only guessing that your intention is to extract the number from each line that contains one).

The problem with something like:

sed -e 's/.*\([0-9]*\).*/&/'

.... or

sed -e 's/.*\([0-9]*\).*/\1/'

... is that sed only supports "greedy" match ... so the first .* will match the rest of the line. Unless we can use a negated character class to achieve a non-greedy match ... or a version of sed with Perl-compatible or other extensions to its regexes, we can't extract a precise pattern match from with the pattern space (a line).

share|improve this answer
    
You can just combine two of your sed commands in this way: sed -n 's/[^0-9]*\([0-9]\+\).*/\1/p' – Dennis Williamson Nov 15 '09 at 4:10
    
Previously didn't know about -o option on grep. Nice to know. But it prints the entire match, not the "(...)". So if you are matching on "abc([[:digit:]]+)xyz" then you get the "abc" and "xyz" as well as the digits. – Stéphane Nov 16 '09 at 19:09

If you want to select lines then strip out the bits you don't want:

egrep 'abc[0-9]+xyz' inputFile | sed -e 's/^.*abc//' -e 's/xyz.*$//'

It basically selects the lines you want with egrep and then uses sed to strip off the bits before and after the number.

You can see this in action here:

pax> echo 'a
b
c
abc12345xyz
a
b
c' | egrep 'abc[0-9]+xyz' | sed -e 's/^.*abc//' -e 's/xyz.*$//'
12345
pax> 

Update: obviously if you actual situation is more complex, the REs will need to me modified. For example if you always had a single number buried within zero or more non-numerics at the start and end:

egrep '[^0-9]*[0-9]+[^0-9]*$' inputFile | sed -e 's/^[^0-9]*//' -e 's/[^0-9]*$//'
share|improve this answer
    
Interesting... So there isn't a simple way to apply a complex regular expression and get back just what is in the (...) section? Cause while I see what you did here first with grep then with sed, our real situation is much more complex than dropping "abc" and "xyz". The regular expression is used because lots of different text can appear on either side of the text I'd like to extract. – Stéphane Nov 14 '09 at 8:54
    
I'm sure there is a better way if the REs are really complex. Perhaps if you provided a few more examples or a more detailed description, we could adjust our answers to suit. – paxdiablo Nov 14 '09 at 8:56

perl is the cleanest syntax, but if you don't have perl (not always there, I understand), then the only way to use gawk and components of a regex is to use the gensub feature.

gawk '/abc[0-9]+xyz/ { print gensub(/.*([0-9]+).*/,"\\1","g"); } < file

output of the sample input file will be

12345

Note: gensub replaces the entire regex (between the //), so you need to put the .* before and after the ([0-9]+) to get rid of text before and after the number in the substitution.

share|improve this answer
1  
A clever, workable solution if you need to (or want to) use gawk. You noted this, but to be clear: non-GNU awk doesn't have gensub(), and therefore doesn't support this. – cincodenada Jan 9 '14 at 21:56

You can use sed to do this

 sed -rn 's/.*abc([0-9]+)xyz.*/\1/gp'
  • -n don't print the resulting line
  • -r this makes it so you don't have the escape the capture group parens().
  • \1 the capture group match
  • /g global match
  • /p print the result

I wrote a tool for myself that makes this easier

rip 'abc(\d+)xyz' '$1'
share|improve this answer

you can do it with the shell

while read -r line
do
    case "$line" in
        *abc*[0-9]*xyz* ) 
            t="${line##abc}"
            echo "num is ${t%%xyz}";;
    esac
done <"file"
share|improve this answer

For awk. I would use the following script:

/.*abc([0-9]+)xyz.*/ {
    		print $0;
    		next;
    		}
    		{
    		/* default, do nothing */
    		}
share|improve this answer
    
which gets grep like behavior... – dmckee Nov 14 '09 at 9:01
    
This does not output the numeric value ([0-9+]), this outputs the entire line. – Mark Lakata Apr 29 '13 at 20:03
gawk '/.*abc([0-9]+)xyz.*/' file
share|improve this answer
1  
This doesn't seem to work. It prints the entire line instead of the match. – Stéphane Nov 14 '09 at 9:55
    
in your sample input file , that pattern is the whole line. right??? if you know the pattern is going to be in a specific field: use $1, $2 etc.. eg gawk '$1 ~ /.*abc([0-9]+)xyz.*/' file – ghostdog74 Nov 14 '09 at 15:43

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.