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Is there a way to represent dates like 12/25 without year information? I'm thinking of just using an array of [month, year] unless there is a better way.

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3  
2/29 or 3/1? –  Logan Capaldo Jan 2 '11 at 3:55
    
I saw you accepted using strftime as the best answer. The site foragoodstrtime.com is an easy way to generate the date formatting strings. –  Mike Buckbee Jan 2 '11 at 6:34
    
Mike, you had a typo on the site URL. It should be foragoodstrftime.com I had never seen that site before, thanks! –  Sean Hill Jan 2 '11 at 6:46

3 Answers 3

up vote 3 down vote accepted

You could use the Date class and hard set the year to a leap year (so that you could represent 2/29 if you wanted). This would be convenient if you needed to perform 'distance' calculations between two dates (assuming that you didn't need to wrap across year boundaries and that you didn't care about the off-by-one day answers you'd get when crossing 2/29 incorrectly for some years).

It might also be convenient because you could use #strftime to display the date as (for example) "Mar-3" if you wanted.

Depending on the usage, though, I think I would probably represent them explicitly, either in a paired array or something like YearlessDate = Struct.new(:month,:day). That way you're not tempted to make mistakes like those mentioned above.

However, I've never had a date that wasn't actually associated with a year. Assuming this is the case for you, then @SeanHill's answer is best: keep the year info but don't display it to the user when it's not appropriate.

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You would use the strftime function from the Time class.

time = Time.now
time.strftime("%m/%d")
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The most "correct" way to represent a date without a year is as a Fixnum between 001 and 365. You can do comparisons on them without having to turn it into a date, and can easily create a date for a given year as needed using Date.ordinal

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But what if it's a leap year and your date is February 29th –  Derek Nov 20 '14 at 14:59
1  
Then you're a jerk –  sgrif Nov 21 '14 at 15:40

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