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I have to remove everything but 1, 2, or 3 digits (0-9, or 10-99, or 100) preceding % (I don't want to see the %, though) from another command's output and pipe it forward to another command. I know that

sed -n '/%/p'

will show only the line(s) containing %, but that's not what I want. How can I get rid of the rest of the unwanted text and leave only these numbers to then pipe them to another command?

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are there multiple % values on each line, or just one % per line (plus other stuff). Good luck. –  shellter Aug 20 '11 at 9:49
@shellter there is just one % per line (plus other stuff). –  octosquidopus Aug 20 '11 at 19:10
Coud you give us some examples of input and respective expeced output? –  brandizzi Aug 21 '11 at 2:13
If you every time that need to sed, same me , can use the Sed ref –  PersianGulf Jun 23 '12 at 5:44

6 Answers 6

If you're not completely tied to sed, this is exactly what grep -o does:

grep -o '[0-9]\{1,3\}%'
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Great, but I don't want to see the % –  octosquidopus Aug 20 '11 at 19:18
Pipe to tr -d % –  tripleee Aug 20 '11 at 20:28
If you have GNU grep, there is a --perl-regexp option, so you can do this to get the number before the percent: grep -Po '\d{1,3}(?=%)' –  glenn jackman Aug 22 '11 at 13:53

EDIT: I have misunderstood the OP and posted an invalid answer. I changed it to an answer that, I believe, would solve the problem in the more general scenario.

For a file such as the one below:

$ cat input
this is 456% and nothing more

Use sed -n -E 's/(^|.*[^0-9])([0-9]{1,3})%.*/\2/p' input

$  sed  -n -E 's/(^|.*[^0-9])([0-9]{1,3})%.*/\2/p' input

The -n flag makes sed to suppress automatic output of the lines. Then, we use the -E flag which will allow us to use extended regular expressions. (In GNU sed, the flag is not -E but instead is -r).

Now comes the s/// command. The group (^|.*[^0-9]) matchs either a beginning of line (^) or a series of zero or more chars (.*) ending in a non-digit char ([^0-9]). [0-9]\{1,3\} just matches one to three digits and is bound to a group (by the ( and ) group delimiters) if the group is preceded by (^|.*[^0-9]) and followed by %. Then .* matches everything before and after this pattern. After this, we replace everything by the second group (([0-9]{1,3})) using the backreference \2. Since we passed -n to sed, nothing would be printed but we passed the p flag to the s/// command. The result is that if the replacement is executed then the resulted line is printed. Note the p is a flag of s///, not the p command, because it comes just after the last /.

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sed -e 's/[^0-9]*\([0-9]*\)%.*/\1/' captures the digits in a group and because the pattern matches everything (the leading and trailing .*) it all gets discarded.

(my pattern matches any number of digits since sed regular expressions don't support handy shortcuts like [0-9]{1,3} that you see in perlre and others so I elected to keep it simple to illustrate the principle you cared about)

Edit: to fix quoting and replace leading .* with [^0-9]* to avoid the greedy match consuming the numbers. Once again more straightforward with perlre where you can use a non-greedy .?*

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Acually, at least my version of sed (GNU sed 4.2.1) accepts {m,n} expressions. Even without the -r extended regexp flag. –  carlpett Aug 20 '11 at 21:00

Here's my shot:

sed "/^[0-9]{1,3}%$/ bnum; d; :num s/%//"

If the line is 1-3 digits followed by a %, it removes the %-sign. Otherwise, it removes the entire line. So, for input such as


It yields

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Use awk instead of sed.

$ cat file
one two 100% three
10% four 1% five

$ awk '{
   if ($i ~/%$/) { print $i+0} }

For each field, check to see if there is % sign at the end. If yes, print the number. ($i+0 means to convert to integer). Minimal Regular expression used.

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sed -n "/[0-9]\{1,2\}%/ s/^[^0-9]*\([0-9]\{1,2\}\)%.*/\1/p
/100%/ s/.*/100/p

the 100% is to be extracted because otherwise number of kind 987% (or 123% if filtered on 1 at 1st position) are also send to output

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