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I have a string that looks like:

20130518134721
yyyymmddhhmmss

This is basically the time of day. Knowing the format of the string, and knowing that the year is padded to four digits and all others are padded to two digits, how can I split this string so that I can extract specific information such as the month, or the hour?

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marked as duplicate by David Aldridge, Lee Jarvis, flavian, Vladimir, Jim Garrison May 20 '13 at 7:44

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

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While the question is a duplicate of "possible duplicate", the underlying need is completely different, and isn't a duplicate at all, but a question about how to parse date strings. –  the Tin Man May 19 '13 at 16:08

3 Answers 3

up vote 3 down vote accepted

You can use DateTime.strptime to convert the String to a DateTime object. You can do something like:

date = DateTime.strptime("20130518134721", "%Y%m%d%H%M%s") → datetime

After that, you can access to different methods of Date object in ruby like hour or mon.

date.hour               
#=> 13
date.mon
#=> 5

Also, remember to require 'date' to use DateTime object.

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require 'date'
d = DateTime.parse("20130518134721")
p d.hour #=> 13
p d.mon #=> 5
p d.min #=> 47
p d.day #=> 18
p d.year #=> 2013
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parse is useful, and pretty smart, but also gets fooled. If you know the format it's better to use strptime, which doesn't waste time trying to sort-out which pattern to use. I'd recommend looking at Chronic if you want to rely on parsing freeform strings into dates/times. –  the Tin Man May 19 '13 at 16:16

Dates are best handled by the Date class as others have demonstrated. Splitting up strings into substrings with fixed width in general can be done with the unpack method:

year, month, day, hour, min, sec = "20130518134721".unpack("A4A2A2A2A2A2")
puts day #=> 18
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