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I use the df command in a bash script:

df . -B MB | tail -1 | awk {'print $4'} | grep  .[0-9]*

This script returns:

99%

But I need only numbers (to make the next comparison). If I use the grep regex without the dot:

df . -B MB | tail -1 | awk {'print $4'} | grep  .[0-9]*

I receive nothing. How to fix?

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4 Answers 4

up vote 13 down vote accepted

if you try:

 echo "99%" |grep -o '[0-9]*'

return

99
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You can also use the alias \d like echo "99%" |grep -o '\d*' –  Fab Sa May 18 at 10:39
    
Are you sure about that @FabSa ? have you done a test? AFAK, grep default use BRE.. –  Kent May 18 at 10:42
    
It works for me yes (on OsX) but maybe you need the "extended-regexp" (with -E) –  Fab Sa May 18 at 10:44
1  
@FabSa for gnu grep, to make \d effective, you need -P. And if there is a portable version available, use the portable one. –  Kent May 18 at 10:52

grep will print any lines matching the pattern you provide. If you only want to print the part of the line that matches the pattern, you can pass the -o option:

-o, --only-matching Print only the matched (non-empty) parts of a matching line, with each such part on a separate output line.

Like this:

echo 'Here is a line mentioning 99% somewhere' | grep -o '[0-9]+'
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How about:

df . -B MB | tail -1 | awk {'print $4'} | cut -d'%' -f1
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No need to used grep here, Try this:

df . -B MB | tail -1 | awk {'print substr($5, 1, length($5)-1)'}
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