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What regular expression in Python do I use to match dates like this: "11/12/98"?

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11 Answers 11

76

Instead of using regex, it is generally better to parse the string as a datetime.datetime object:

In [140]: datetime.datetime.strptime("11/12/98","%m/%d/%y")
Out[140]: datetime.datetime(1998, 11, 12, 0, 0)

In [141]: datetime.datetime.strptime("11/12/98","%d/%m/%y")
Out[141]: datetime.datetime(1998, 12, 11, 0, 0)

You could then access the day, month, and year (and hour, minutes, and seconds) as attributes of the datetime.datetime object:

In [143]: date.year
Out[143]: 1998

In [144]: date.month
Out[144]: 11

In [145]: date.day
Out[145]: 12

To test if a sequence of digits separated by forward-slashes represents a valid date, you could use a try..except block. Invalid dates will raise a ValueError:

In [159]: try:
   .....:     datetime.datetime.strptime("99/99/99","%m/%d/%y")
   .....: except ValueError as err:
   .....:     print(err)
   .....:     
   .....:     
time data '99/99/99' does not match format '%m/%d/%y'

If you need to search a longer string for a date, you could use regex to search for digits separated by forward-slashes:

In [146]: import re
In [152]: match = re.search(r'(\d+/\d+/\d+)','The date is 11/12/98')

In [153]: match.group(1)
Out[153]: '11/12/98'

Of course, invalid dates will also match:

In [154]: match = re.search(r'(\d+/\d+/\d+)','The date is 99/99/99')

In [155]: match.group(1)
Out[155]: '99/99/99'

To check that match.group(1) returns a valid date string, you could then parsing it using datetime.datetime.strptime as shown above.

4
  • Sorry, my mistake, I've tested it against 4 digits :)
    – Bronek
    Aug 26, 2014 at 20:46
  • You should use the strptime wherever possible since its build for this purpose. Jul 22, 2018 at 10:37
  • you can support several formats in the same regular expression, and also between 2 and 4 digits for the year using this expression: re.search(r'(\d+(/|-){1}\d+(/|-){1}\d{2,4})','date') Dec 27, 2018 at 11:27
  • I'm partial to r'\d{1,4}(?P<delim>[.\-/])\d{1,2}(?P=delim)\d{1,4}' for the date extraction regex. The named backreference makes sure delimiters match and the enforcement of 1-4, 1-2, 1-4 digits cuts down on false matches. Specifically, using \d+ with hyphens matches things like phone numbers without a country code (555-555-5555). ;) (I use a named backreference to make adding or removing grouping for the digits less error-prone)
    – dannysauer
    Nov 24, 2020 at 0:14
6

I find the below RE working fine for Date in the following format;

  1. 14-11-2017
  2. 14.11.2017
  3. 14|11|2017

It can accept year from 2000-2099

Please do not forget to add $ at the end,if not it accept 14-11-201 or 20177

date="13-11-2017"

x=re.search("^([1-9] |1[0-9]| 2[0-9]|3[0-1])(.|-)([1-9] |1[0-2])(.|-|)20[0-9][0-9]$",date)

x.group()

output = '13-11-2017'

5

I built my solution on top of @aditya Prakash appraoch:

 print(re.search("^([1-9]|0[1-9]|1[0-9]|2[0-9]|3[0-1])(\.|-|/)([1-9]|0[1-9]|1[0-2])(\.|-|/)([0-9][0-9]|19[0-9][0-9]|20[0-9][0-9])$|^([0-9][0-9]|19[0-9][0-9]|20[0-9][0-9])(\.|-|/)([1-9]|0[1-9]|1[0-2])(\.|-|/)([1-9]|0[1-9]|1[0-9]|2[0-9]|3[0-1])$",'01/01/2018'))

The first part (^([1-9]|0[1-9]|1[0-9]|2[0-9]|3[0-1])(\.|-|/)([1-9]|0[1-9]|1[0-2])(\.|-|/)([0-9][0-9]|19[0-9][0-9]|20[0-9][0-9])$) can handle the following formats:

  • 01.10.2019
  • 1.1.2019
  • 1.1.19
  • 12/03/2020
  • 01.05.1950

The second part (^([0-9][0-9]|19[0-9][0-9]|20[0-9][0-9])(\.|-|/)([1-9]|0[1-9]|1[0-2])(\.|-|/)([1-9]|0[1-9]|1[0-9]|2[0-9]|3[0-1])$) can basically do the same, but in inverse order, where the year comes first, followed by month, and then day.

  • 2020/02/12

As delimiters it allows ., /, -. As years it allows everything from 1900-2099, also giving only two numbers is fine.

If you have suggestions for improvement please let me know in the comments, so I can update the answer.

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  • the second part , did not work somehow Heribert
    – tursunWali
    Apr 14, 2021 at 9:40
  • It just need (re.search(..... ).group(0)) .group(0) to extract the value, Thnx May 31, 2021 at 16:58
4

Using this regular expression you can validate different kinds of Date/Time samples, just a little change is needed.

^\d\d\d\d/(0?[1-9]|1[0-2])/(0?[1-9]|[12][0-9]|3[01]) (00|[0-9]|1[0-9]|2[0-3]):([0-9]|[0-5][0-9]):([0-9]|[0-5][0-9])$ -->validate this: 2018/7/12 13:00:00

for your format you cad change it to:

^(0?[1-9]|[12][0-9]|3[01])/(0?[1-9]|1[0-2])/\d\d$ --> validates this: 11/12/98

4

I use something like this

>>> import datetime
>>> regex = datetime.datetime.strptime
>>>
>>> # TEST
>>> assert regex('2020-08-03', '%Y-%m-%d')
>>>

>>> assert regex('2020-08', '%Y-%m-%d')
ValueError: time data '2020-08' does not match format '%Y-%m-%d'

>>> assert regex('08/03/20', '%m/%d/%y')
>>>

>>> assert regex('08-03-2020', '%m/%d/%y')
ValueError: time data '08-03-2020' does not match format '%m/%d/%y'

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  • clean and efficient, tx!
    – Alex M.M.
    May 3 at 9:43
2

Well, from my understanding, simply for matching this format in a given string, I prefer this regular expression:

pattern='[0-9|/]+'

to match the format in a more strict way, the following works:

pattern='(?:[0-9]{2}/){2}[0-9]{2}'

Personally, I cannot agree with unutbu's answer since sometimes we use regular expression for "finding" and "extract", not only "validating".

0
1

Sometimes we need to get the date from a string. One example with grouping:

record = '1518-09-06 00:57 some-alphanumeric-charecter'
pattern_date_time = ([0-9]{4}-[0-9]{2}-[0-9]{2} [0-9]{2}:[0-9]{2}) .+
match = re.match(pattern_date_time, record)
if match is not None:
  group = match.group()
  date = group[0]
  print(date) // outputs 1518-09-06 00:57
1
  • pattern_date_time = ([0-9]{4}-[0-9]{2}-[0-9]{2} [0-9]{2}:[0-9]{2}) .+ ^ SyntaxError: invalid syntax,
    – ShadeToD
    Sep 9, 2020 at 6:21
1

As the question title asks for a regex that finds many dates, I would like to propose a new solution, although there are many solutions already.

In order to find all dates of a string that are in this millennium (2000 - 2999), for me it worked the following:

dates = re.findall('([1-9]|1[0-9]|2[0-9]|3[0-1]|0[0-9])(.|-|\/)([1-9]|1[0-2]|0[0-9])(.|-|\/)(20[0-9][0-9])',dates_ele)

dates = [''.join(dates[i]) for i in range(len(dates))]

This regex is able to find multiple dates in the same string, like bla Bla 8.05/2020 \n BLAH bla15/05-2020 blaa. As one could observe, instead of / the date can have . or -, not necessary at the same time.

Some explaining

More specifically it can find dates of format day , moth year. Day is an one digit integer or a zero followed by one digit integer or 1 or 2 followed by an one digit integer or a 3 followed by 0 or 1. Month is an one digit integer or a zero followed by one digit integer or 1 followed by 0, 1, or 2. Year is the number 20 followed by any number between 00 and 99.

Useful notes

One can add more date splitting symbols by adding | symbol at the end of both (.|-|\/). For example for adding -- one would do (.|-|\/|--)

To have years outside of this millennium one has to modify (20[0-9][0-9]) to ([0-9][0-9][0-9][0-9])

0

I use something like this :

string="text 24/02/2021 ... 24-02-2021 ... 24_02_2021 ... 24|02|2021 text"
new_string = re.sub(r"[0-9]{1,4}[\_|\-|\/|\|][0-9]{1,2}[\_|\-|\/|\|][0-9]{1,4}", ' ', string)
print(new_string)

out : text ... ... ... text

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  • Hello... Inspect // Watch ... Your answer is poorly elaborated. It is useful to insert an effective response, with codes and references. Concluding a practical and efficient solution. This platform is not just any forum. We are the largest help and support center for other programmers and developers in the world. Review the terms of the community and learn how to post; Mar 24, 2021 at 19:35
0

If you don't want to raise ValueError exception like in methods with datetime, you can use re. Maybe you should also check that day of month lower than 31 and month number is lower than 12, inclusive:

from re import search as re_search


date_input = '31.12.1998'
re_search(r'^(3[01]|[12][0-9]|0[1-9]).(1[0-2]|0[1-9]).[0-9]{4}$', date_input)

With datetime good answer gave @unutbu earlier.

-1

This regular expression for matching dates in this format "22/10/2021" works for me :

import re
date = "WHATEVER 22/10/2029 WHATEVER"
match = re.search("([0-9]|1[0-9]|2[0-9]|3[0-5])/([0-9]|1[0-9]|2[0-9]|3[0-5])/([0-9][0-9][0-9][0-9])", date)
print(match)

OUTPUT = <re.Match object; span=(9, 19), match='22/10/2029'>

You can see in the fourth line that there is this string ([0-9]|1[0-9]|2[0-9]|3[0-5])/([0-9]|1[0-9]|2[0-9]|3[0-5])/([0-9][0-9][0-9][0-9]), this is the regular expression that I made based in this page.

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  • Mind to explain your answer? Nov 29, 2021 at 16:49
  • Of course, this a regular expression for matching dates in this format "22/10/2021". You can see in the fourth line that there is this string ([0-9]|1[0-9]|2[0-9]|3[0-5])/([0-9]|1[0-9]|2[0-9]|3[0-5])/([0-9][0-9][0-9][0-9]), this is the regular expression that I made based in this page. Check it out and sorry for my bad english. Nov 29, 2021 at 17:17
  • Numerous answers using the same or similar solutions have already been posted. When answering questions, ensure that you are contributing new content to the site, and not simply repeating other answers.
    – miken32
    Nov 29, 2021 at 19:41

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