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I have a set of tokens in data and wish to strip off the trailing ".[0-9]", however i cannot figure out how to quote the regexp properly. The First match should be all up to the . and the second the . and a number. I am intending that the first match be retained.

data="thing thing__aaa.0 thing__bbb.3 thing__ccc.5 other_aaa other_bbb other_ccc.5"
data=`echo $data | sed s/\([a-zA-Z0-9_]+\)\(\.[0-9]\)/\1/g`
echo $data

Actual output:

thing thing__aaa.0 thing__bbb.3 thing__ccc.5 other_aaa other_bbb other_ccc.5

Desired output:

thing thing__aaa thing__bbb thing__ccc other_aaa other_bbb other_ccc

The idea is that the unquoted ([a-zA-Z0-9_]+) is the first matching group, and the (\.[0-9]) matches the .number. the \1 should replace both groups with the first group.

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Are you escaping the parentheses? –  bozdoz Nov 23 '12 at 16:38
    
@all, Ive Clarified the question, hope that helps, And i did not downvote anyone....! –  NWS Nov 23 '12 at 17:49
    
You are nearly there except that the + needs to be \+ –  potong Nov 23 '12 at 19:26

3 Answers 3

up vote 1 down vote accepted

How about just

echo $data | sed 's/\.[0-9]//g'

or if number may contain more digits, then

echo $data | sed 's/\.[0-9]\+//g'
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Ill let you know when i return to work on Monday :) –  NWS Nov 23 '12 at 19:47
    
Thanks, this works ! –  NWS Nov 26 '12 at 9:27

It looks like you just want to delete all strings of the form \.[0-9]. So why not just do:

sed 's/\.[0-9]+\b//g'

(This relies on gnu sed's \b and + extensions. For other sed you can do:

sed 's/\.[0-9][0-9]*\( \|$\)/\1/g'
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I normally don't encourage the use of shell specific extensions, but if you are using bash you might be happy using an array:

bash$ data=(thing thing__aaa.0 thing__bbb.3)
bash$ echo "${data[@]%.[0-9]*}"

Note that this will also delete extensions that are not all digits (ie foo.34bb), but perhaps is adequate for your needs.)

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