8

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

3 Answers 3

12
for d in {0..365}; do date -d "2012-01-01 + $d days" +'%d.%m.%Y'; done
5
  • how to do this automatically with leak years? Aug 24, 2012 at 11:03
  • @DmitryDubovitsky What do you mean? 29.02.2012 is present in the output. Aug 24, 2012 at 11:05
  • Want to output it automatically, for example For 2011 year last record would be 2012-01-01 something that: days_in_year=date "2012-12-31" +"%j"; for d in in ... Aug 24, 2012 at 11:52
  • @DmitryDubovitsky Ah, I get it now. Well, I'd just do: for d in {0..365}; do date -d "$year-01-01 + $d days" +'%d.%m.%Y'; done | grep $year. That'll work whether year is 2011 or 2012. Aug 24, 2012 at 11:56
  • 1
    This is not working in OS X since it uses a different version of date. Dec 19, 2013 at 23:27
2

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.

1

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
2
  • Comparing years lexicographically is a bad idea if your years can have a different number of digits. For example d="999-01-01"; last="1000-01-01" will produce no output.
    – user3064538
    Aug 30, 2019 at 6:35
  • 1
    ISO-8601 requires at least 4 digits for the year (although the problem will arise if you are trying to avoid a Y10k problem).
    – chepner
    Aug 30, 2019 at 12:34

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