1

I have a file in a folder that will be named something like version1.txt or version99.txt. I am on a Windows box that has GNU utilities installed and am doing this from command prompt. Currently, my output looks like this:

command: dir | grep version

result: 12/08/2016 04:50 PM 0 version12.txt

I want it to return the number 12 in this case.

I've written the regex which will match version12 (although I need it to match only 12), but I cannot figure out how to get it to be read with sed (I do not have awk available). This is what I am trying:

dir | grep version | sed "/version[0-9]{2}|version[0-9]/g"

How do I get only the version number to appear?

1

You can use awk instead of grep to extract version number:

dir | awk '/version/{gsub(/[^0-9]+/, "", $NF); print $NF}'

12

You can use sed also:

dir | sed 's/.* version\|\..*//g'
1
  • As I stated in the question, I do not have awk available on this server.
    – Jake
    Feb 7 '17 at 21:04
0

Here is a simpler alternative which removes the grep requirement:

dir /b version*.txt | sed 's/[^0-9]*//g'

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