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Is there a way to print a regexp match (but only the matching string) with AWK?

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up vote 27 down vote accepted

Yes, in awk use the match() function and give it the optional array parameter (a in my example). When you do this, the 0-th element will be the part that matched the regex

$ echo "blah foo123bar blah" | awk '{match($2,"[a-z]+[0-9]+",a)}END{print a[0]}'
foo123
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I know grep -o, it has to be in AWK :) – Istvan Mar 29 '11 at 0:03
    
@lstvan see update – SiegeX Mar 29 '11 at 0:05
2  
I get the error: awk: syntax error at source line 1 context is >>> {match($2,"[a-z]+[0-9]+", <<< awk: illegal statement at source line 1 awk: illegal statement at source line 1 with both zsh and bash – dentarg Aug 31 '14 at 20:29
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oh, it's gawk... from stackoverflow.com/questions/5536018/… "the awk match() function with three arguments only exists in gawk" – dentarg Aug 31 '14 at 20:31
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For those interested in using this gawk-specific match function, it looks like the 3-arg version of match wasn't added to gawk until 3.1: gnu.org/software/gawk/manual/html_node/Feature-History.html Sadly, the latest Git Bash's environment is using 3.0.4. – Tyler Hoppe Mar 14 at 16:51

An awk specific (as opposed to one using gawk) implementation of the solution:

$ echo "blah foo123bar blah" | awk 'match($0,/[a-z]+[0-9]+/) {print substr($0,RSTART,RLENGTH)}'
$ foo123
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