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line:

0.01user 0.00system 0:13.46elapsed 0%CPU (0avgtext+0avgdata 4272maxresident)k

I want to grab:

0:13.46

my current regex is:

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

I'm pretty sure the regex is correct, but it's not finding anything. It's probably something really simple, I'm just doing 10 things at once.

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6 Answers 6

up vote 0 down vote accepted

This works for me:

% sed 's/.*\s\([0-9]*:[0-9]*.[0-9]*\)elapsed.*/\1/'
0.01user 0.00system 0:13.46elapsed 0%CPU (0avgtext+0avgdata 4272maxresident)k
0:13.46

Note how I put a \s before the first digit you want to match.

Then again, your regex kind of worked for me before in that it would print out :13.46 (the .* gobbled up the first 0 that you want to print out).

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Ah that did it, thanks for the quick response –  Th3sandm4n Feb 17 '11 at 20:20

Why not use awk?

awk '/elapsed/ {gsub(/elapsed/,""); print $3}'

I tried your sed expression on SL and got :13.46

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I got :13.46. This is caused by the initial .* which expands as much as possible without compromising the following [0-9]*:.

My suggestion: sed 's/.*system //;s/elapsed.*//'

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If you have a version of time that supports the format option, you don't need to parse its output:

$ /usr/bin/time -f %E sleep 2.27
0:02.27

In Bash, using its builtin time:

$ TIMEFORMAT=%R
$ time sleep 2.27
2.337
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Here's another solution:

echo $word | grep -oP '[^ ]*(?=elapsed)'

This looks for the largest character string before 'elapsed' which does not contain a space character.

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This looks like a problem for which awk is better suited. You can solve this in awk without using regular expressions which are (relatively) inefficient.

awk '{ print substr($3, 1, length($3) - 7) }'

In a test I just ran, this awk solution is an order of magnitude faster than the accepted sed solution. I believe the significant performance improvement comes from avoiding regular expressions.

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