I need to generate strings with all days in a year

ex:

MIN_DATE=01.01.2012

MAX_DATE=31.12.2012

for date in {1...366..1}
 do
 echo ...
done
for d in {0..365}; do date -d "2012-01-01 + $d days" +'%d.%m.%Y'; done
  • how to do this automatically with leak years? – Dmitry Dubovitsky Aug 24 '12 at 11:03
  • @DmitryDubovitsky What do you mean? 29.02.2012 is present in the output. – Lev Levitsky Aug 24 '12 at 11:05
  • Want to output it automatically, for example For 2011 year last record would be 2012-01-01 something that: days_in_year=date "2012-12-31" +"%j"; for d in in ... – Dmitry Dubovitsky Aug 24 '12 at 11:52
  • @DmitryDubovitsky Ah, I get it now. Well, I'd just do: for d in {0..365}; do date -d "$year-01-01 + $d days" +'%d.%m.%Y'; done | grep $year. That'll work whether year is 2011 or 2012. – Lev Levitsky Aug 24 '12 at 11:56
  • 1
    This is not working in OS X since it uses a different version of date. – Fábio Perez Dec 19 '13 at 23:27

Not a pure bash solution, but my dateutils can help:

dseq 01.01.2012 31.12.2012 -f %d.%m.%Y -i %d.%m.%Y
=>
  01.01.2012
  02.01.2012
  ...
  31.12.2012

Output format can be configured with -f and input format with -i.

Using an ISO 8601 date format (year-month-day), you can compare dates lexicographically. It's a little messier than I'd like, since bash doesn't have a "<=" operator for strings.

year=2011
d="$year-01-01"
last="$(($year+1))-01-01"
while [[ $d < $last ]]; do
    echo $d
    d=$(date +%F --date "$d + 1 day")
done

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.