-2

I need a regex to validate date. Requires:<

  1. format: yyyy/mm/dd (4 digits year, 2 digits month and day)
  2. valid days and months (not allow 2014/13/32)
  3. leap year validation

Here is my pattern:

^(\d{4})[\/](((0[1358]|1[02])[\/](0[1-9]|[12][0-9]|3[01]))|((0[4679]|11)[\/](0[1-9]|[12][0-9]|30))|(02[\/](0[1-9]|[12][0-9])))$

I don't know how to check leap years.

  • 7
    Why use regex to validate dates in the first place? – Petr Abdulin Jun 20 '14 at 3:03
  • Some people, when confronted with a problem, think “I know, I'll use regular expressions.” Now they have two problems. -- Jamie Zawinski. – Don Roby Jun 20 '14 at 3:07
  • 2
    it's easy to make a function to validate date. Regex is the wrong choice here. – Ehtesham Jun 20 '14 at 3:28
  • @PetrAbdulin Because you can use regex for anything! – JakeGould Jun 20 '14 at 3:35
  • I could see how this might be for an assignment, but how did I do? – Aaron Hall Jun 20 '14 at 3:41
3

Here is the sample for you:

^(?:\d{4}\/(?:(?:(?:(?:0[13578]|1[02])\/(?:0[1-9]|[1-2][0-9]|3[01]))|(?:(?:0[469]|11)\/(?:0[1-9]|[1-2][0-9]|30))|(?:02\/(?:0[1-9]|1[0-9]|2[0-8]))))|(?:(?:\d{2}(?:0[48]|[2468][048]|[13579][26]))|(?:(?:[02468][048])|[13579][26])00)\/02\/29)$

Regular expression visualization

Demo

  • I know the question required a 2 digits for month and day. However, if anyone is interested in accepting 1 digit as well, I have modified a little bit the regex above. With this one you will be able to verify dates like "2018/02/07" as well as "2018/2/7". | See Regex & Demo – Sarquella Nov 7 '18 at 13:57
0

I'd recommend you use re combined with the datetime module:

>>> datetime.datetime.strptime('1999/12/2', '%Y/%m/%d')
datetime.datetime(1999, 12, 2, 0, 0)

So the function I'd use is:

def find_valid_dates(a_string):
    '''return a list of valid datetime objects from a string'''
    results = []
    for match in re.finditer(r'\d{4}\/\d{2}\/\d{2}', a_string):
        try:
            results.append(datetime.datetime.strptime(match.group(), '%Y/%m/%d'))
        except ValueError as e:
            pass
    return results

To test:

txt = '''2014/12/31
2012/02/29
2014/01/31
No matches
2014/13/31
2014/12/32
2014/9/31
2014/4/31
2014/6/31
2014/11/31
'''

print find_valid_dates(txt)

prints:

[datetime.datetime(2014, 12, 31, 0, 0), datetime.datetime(2012, 2, 29, 0, 0), datetime.datetime(2014, 1, 31, 0, 0)]
0

We could simplify the regular expression as given below:

^(?:\d{4}-(?:(?:0[13578]|1[02])-(?:0[1-9]|[1-2][0-9]|3[01])|(?:0[469]|11)-(?:0[1-9]|[1-2][0-9]|30)|02-(?:0[1-9]|1[0-9]|2[0-8]))|\d{2}(?:[02468][048]|[13579][26])-02-29)

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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