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I have strings like the following: blabla a13724bla-bla244 35%

Notice that there is always a space before the percentage. I would like to extract the percentage number (so, without the %) from these strings using the Linux shell.

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Have you tried (\d+)%? –  Blender Dec 21 '12 at 6:57

6 Answers 6

up vote 2 down vote accepted

Using sed:

echo blabla a13724bla-bla244 35% | sed 's/.*[ \t][ \t]*\([0-9][0-9]*\)%.*/\1/'

If you expect to have multiple percentages in a line then:

echo blabla 20% a13724bla-bla244 35% | \
   sed -e 's/[^%0-9 ]*//g;s/  */\n/g' | sed -n '/%/p'
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this will not work for 100% (pun intended) - only up 2 digits are allowed –  mvp Dec 21 '12 at 18:46
    
@mvp, it does work 100% –  perreal Dec 21 '12 at 22:38

Assuming you have GNU grep:

$ grep -oP '\d+(?=%)' <<< "blabla a13724bla-bla244 35%"
35
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Exactly what I would have done, best answer +1. –  iiSeymour Dec 21 '12 at 12:12
    
This is for if the percentage is a decimal, eg 99.99%: grep -oP '[\.\d]+(?=%)' –  Nick Apr 9 '13 at 14:45
    
Although that will match foo.%. For arbitrary float numbers, I'd use [-+]?(?:\d+(?:\.\d*)?)|(?:\d*\.\d+)(?=%) -- that will ensure you get at least one digit in there. –  glenn jackman Apr 11 '13 at 0:17

You may try this regular expression:

/\s(\d+%)/
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You can try this

echo "blabla a13724bla-bla244 35%" | cut -d' ' -f3 | sed 's/\%//g'

NOTE: Assumption is the input is always in this format and percentage is 3rd token separated by space.

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Use this regular expression:

\s(\d{1,3})%

If you need it in shell, you can use sed or this perl one-liner:

echo "blah 35%" | perl -pe "s/.*\s(\d{1,3})%/\1/g"
35
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If you always have a number of continuous columns maybe you should try with awk instead of a regular expresion.

cat file.txt |awk '{print $3}'  |cut -d "%" -f 1

With this code you obtain the third column.

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You didn't remove the percent character. –  Barmar Dec 21 '12 at 7:16
    
sorry i'm forgot add the cut command cat file.txt |awk '{print $3}' |cut -d "%" -f 1 –  JuanCrg90 Dec 21 '12 at 7:22

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