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I want to match dates with format mm/dd/yy or mm/dd/yyyy but it should not pick 23/09/2010 where month is 23 which is invalid nor some invalid date like 00/12/2020 or 12/00/2011.

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That's not an easy task (although it is probably possible). You have to handle leap years within the regex to do that. –  sawa May 12 '11 at 18:02
    
@sawa And the non-leap centuries, except the % 400 leap centuries. –  Phrogz May 12 '11 at 18:56

4 Answers 4

up vote 11 down vote accepted

You'd better do a split on / and test all individual parts. But if you really want to use a regex you can try this one :

#\A(?:(?:(?:(?:0?[13578])|(1[02]))/31/(19|20)?\d\d)|(?:(?:(?:0?[13-9])|(?:1[0-2]))/(?:29|30)/(?:19|20)?\d\d)|(?:0?2/29/(?:19|20)(?:(?:[02468][048])|(?:[13579][26])))|(?:(?:(?:0?[1-9])|(?:1[0-2]))/(?:(?:0?[1-9])|(?:1\d)|(?:2[0-8]))/(?:19|20)?\d\d))\Z#

Explanation:

\A           # start of string
 (?:         # group without capture
             # that match 31st of month 1,3,5,7,8,10,12
   (?:       # group without capture
     (?:     # group without capture
       (?:   # group without capture
         0?  # number 0 optionnal
         [13578] # one digit either 1,3,5,7 or 8
       )     # end group
       |     # alternative
       (1[02]) # 1 followed by 0 or 2
     )       # end group
     /       # slash
     31      # number 31
     /       # slash
     (19|20)? #numbers 19 or 20 optionnal
     \d\d    # 2 digits from 00 to 99 
   )         # end group
|
   (?:(?:(?:0?[13-9])|(?:1[0-2]))/(?:29|30)/(?:19|20)?\d\d)
|
   (?:0?2/29/(?:19|20)(?:(?:[02468][048])|(?:[13579][26])))
|
   (?:(?:(?:0?[1-9])|(?:1[0-2]))/(?:(?:0?[1-9])|(?:1\d)|(?:2[0-8]))/(?:19|20)?\d\d)
 )
\Z

I've explained the first part, leaving the rest as an exercise.

This match one invalid date : 02/29/1900 but is correct for any other dates between 01/01/1900 and 12/31/2099

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1  
+1 for recommending split. It's the simplest way with those specs. –  kikito May 12 '11 at 14:26
    
@egarcia: Thanks. Sure it's certainly better and also more readable. –  M42 May 12 '11 at 14:29
    
If you're going to anchor the regex for single-string validation then you should use \A and \z instead of ^ and $. –  Phrogz May 12 '11 at 19:05
    
@Phrogz: It depends on regex flavor. But, you're right for Ruby. –  M42 May 13 '11 at 7:51
    
what if the user doesn't enter slashes at all? the split method won't work. –  E.E.33 Feb 4 '13 at 18:06

Better than a crazy huge Regex (assuming this is for validation and not scanning):

require 'date'
def valid_date?( str, format="%m/%d/%Y" )
  Date.strptime(str,format) rescue false
end

And as an editorial aside: Eww! Why would you use such a horribly broken date format? Go for ISO8601, YYYY-MM-DD, which is a valid international standard, has a consistent ordering of parts, and sorts lexicographically as well.

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1  
+1 for all recommendations. Regex is great for grabbing parts, but stinks for validating ranges. And, yes, the ISO8601 format can cure a lot of ills. –  the Tin Man May 12 '11 at 18:02
1  
I read this at an earlier date and didn't really understand why lexicographical ordering was a good thing. It allows you to sort dates or find lowest/highest date using string comparison! e.g '2014-01-01 > '2013-12-12' = true. This would fail using mm/dd/yy or anything similar. –  Subtletree Jun 26 at 0:02

Or you simply use Date.parse "some random date".
You'll get an ArgumentException if it fails parsing (=> Date is invalid).

See e.g. http://santoro.tk/mirror/ruby-core/classes/Date.html#M000644

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This is beautiful, thank you for saving me mucho time with a regex scalpel. –  bobmagoo Dec 18 '12 at 23:43

The best you can do with a regexp is to validate the format, e.g. something like:

[0-1][0-9]/[0-3][0-9]/[0-9]{2}(?:[0-9]{2})?

Anything beyond that cannot be reliably done without some kind of date dictionary. A date's validity depends on whether it's a leap year or not, for instance.

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As shown by other answers, this is simply not true. Although the regex becomes ugly and unwieldy, you can match validity to some arbitrary level of correctness. –  Phrogz May 12 '11 at 17:16
2  
@Phrogz. It is practically true. The accepted answer is wrong as M42 notices; it does not handle leap years correctly. In order to do it, it has to incorporate the information about the switch to Gregorian and so on. The regex, then, will be a mess. –  sawa May 12 '11 at 18:09
    
I'm obviously biased, but +1 sawa. ;-) –  Denis May 12 '11 at 19:57

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