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Extract data between two points in a text file

For example:

Reply: [200/OK] bytes=29086 time=583ms

I would want to extract the value between "time=" and "ms"

Expected Result:

"583"

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marked as duplicate by Jacob, AProgrammer, glenn jackman, Richard, Tim Post Aug 11 '11 at 8:35

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

4 Answers

I would use sed for that, but since you ask for awk:

echo "Reply: [200/OK] bytes=29086 time=583ms" | awk -F'time=|ms' '{print $2}'

The -F defines extended regexp for field separator. So we define that "time=" or "ms" separates the fields, and then print second field.

using sed, it would be:

echo "Reply: [200/OK] bytes=29086 time=583ms" | sed 's/.*time=\([0-9]*\)ms.*/\1/'
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Why print second capture group? Curious, not criticizing. –  kevlar1818 Aug 9 '11 at 14:58
    
@kevlar1818: assuming you ask about $2 in awk example: because $1 will be before first separator, so before "time=". We need after it. –  Michał Šrajer Aug 9 '11 at 16:18
    
Ah, ok. I see what's its doing now. Thanks! Handy option. –  kevlar1818 Aug 9 '11 at 17:35
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Ugly but works:

$ echo "Reply: [200/OK] bytes=29086 time=583ms" | 
    awk '{print $4'} | sed -e 's/[a-z=]//g'
583

Or without sed:

$ echo "Reply: [200/OK] bytes=29086 time=583ms" | 
    awk '{ split($4,a,"="); gsub(/ms/,"", a[2]); print a[2] }'
583
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echo "Reply: [200/OK] bytes=29086 time=583ms" | sed "s/.*time=\(.*\)ms/\1/"
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Try this

printf "Reply: [200/OK] bytes=29086 time=583ms\n" \
| awk '/^Reply:/{sub(/^.*time=/,"",$0) ;sub(/ms$/,"",$0); print $0}'

I hope this helps.

P.S. as you appear to be a new user, if you get an answer that helps you please remember to mark it as accepted, and/or give it a + (or -) as a useful answer.

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thanks, shall do –  Graham Bell Aug 9 '11 at 14:39
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