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Which regexp should I use to only get line number from grep -in output? The usual output is something like this: 241113:keyword

I need to get only "241113" from sed's output.

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+1 to your question and to the great answers. It's really too bad so many people on SO upvote answers without upvoting the question :( – SyntaxT3rr0r Aug 31 '11 at 12:23

5 Answers 5

up vote 7 down vote accepted

I suggest cut

 grep -in keyword ... | cut -d: -f1

If you insist with sed:

 grep -in keyword ... | sed 's/:.*$//g
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Just in case someone is wondering if all this could be done without grep, i.e. with sed alone ...

echo '
' |
sed -n '/[Kk][Ee][Yy][Ww][Oo][Rr][Dd]/{=;}'
#sed -n '/[Kk][Ee][Yy][Ww][Oo][Rr][Dd]/{=;q;}'  # only line number of first match
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As said in other answers, cut is the right tool; but if you really want to use a swiss-army knife, you can also use awk:

grep -in keyword ... | awk -F: '{print $1}'

or using grep again:

grep -in keyword ... | grep -oE '^[0-9]+'
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Personally, I like awk

grep -in 'search' file | awk --field-separator : '{print $1}'
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You don't need to use sed. Cut is enough. Just pipe grep's output to

cut -d ':' -f 1

As an example:

grep -n blabla file.txt | cut -d ':' -f 1
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