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How can I list every occurrence of a regex in a file, where one line can contain the regex multiple times?

Example:
XXXXXXXXXX FOO3 XXXX FOO4 XXX
XXX FOO2 XXXX FOO9 XXXXXX FOO5

The result should be:
FOO3
FOO4
FOO2
FOO9
FOO5

The regex would be /FOO./ in this case.

Grep will return every line that matches at least one time. But that's now what I want.

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please include the grep command that you tried. –  Sam Sep 23 '11 at 15:54
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3 Answers

up vote 6 down vote accepted

Have you tried the -o option: (grep man page)

-o, --only-matching Show only the part of a matching line that matches PATTERN.

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Thanks a lot. I read the manual, but didn't see this option. –  DrummerB Sep 23 '11 at 15:59
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-o, --only-matching - Print only the matched (non-empty) parts of a matching line, with each such part on a separate output line. –  Praveen Sripati Sep 23 '11 at 16:13
    
Can you mark one of the given answers as the accepted answer if it solved your problem? –  Sam Sep 30 '11 at 17:31
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You question is not completely clear, especially since the example data is super generic. But, here are some patterns that might match:

Your pattern matches FOO followed by any character which would match everything to the end of the line. I don't think you want that so try something like this:

/FOO[0-9]+/ - matches FOO followed by one or more numbers.

/FOO[^ ]+/ - matches FOO followed by any character that is NOT a space. This might be the best solution given your example pattern.

/FOO[0-9a-zA-Z]+/ - matches FOO followed by any alphanumeric character

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Use grep -o FOO. (-o: show only matching)

Your regex could even be extended to only match FOO followed by a number, instead of any character (. will match whitespace too!):

<yourfile grep -o 'FOO[0-9]'
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