i think this should be do-able in sed/awk, right? convert the following list to 2011.08.01 ... etc
20110801
20110802
20110803
20110804
20110805
20110808
just not smart enough to figure out how to do it
any suggestiongs?
asked Dec 14, 2011 at 12:26
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7 Answers
Using GNU date:
for date in 20110801 20110802 20110803 20110804 20110805 20110808; do
date -d "$date" +%Y.%m.%d
done
It barfs on invalid date.
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I think this is the neatest solutions here. neverthelless, thanks a lot for the guys below who helped with sed/awk solutions. have a nice holiday! Dec 26, 2011 at 9:19
date -d '20111214' +'%Y.%m.%d'
The inputstring can be close to everything which can be identified as a date.
export V=20111010;echo ${V:0:4}.${V:4:2}.${V:6:2}
So for your case, something like:
while read x; do echo ${x:0:4}.${x:4:2}.${x:6:2}; done
answered Dec 14, 2011 at 12:30
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I suppose, this is bashism. You should probably point out that it would not work with
sh. Dec 14, 2011 at 13:07 -
I just learned a new word again. Bashism sounds like plague :-) Dec 14, 2011 at 14:32
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For POSIX sh, you can do
tail=${V#????}; echo "${V%????}.${tail%??}.${tail#??}"– tripleeeDec 15, 2011 at 5:35
This might work for you:
sed 's/../.&/3g'
In sed:
sed 's/\(....\)\(..\)\(..\)/\1.\2.\3/'
As pointed out by potong in a comment, it's not actually necessary to specify all three groups. You could instead use
sed 's/\(....\)\(..\)/\1.\2./'
answered Dec 14, 2011 at 12:41
gawk
gawk '/^[0-9]+$/{print substr($0,1,4)"."substr($0,5,2)"."substr($0,7,2)}' input.txt
For awk, why substr when you have printf??
awk 'NF{printf("%.4s.%.2d.%.2d\n", $1, $1%10000/100, $1%100)}'
