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I need help coming up with a regex to make sure the user enters a valid date The string will be in the format of mm/dd/yyyy

Here is what I have come up with so far.

/\[1-9]|0[1-9]|1[0-2]\/\d{1,2}\/19|20\d\d/

I have validated the regex where the user cannot enter a day higher than 12 and the years have to start with either "19" or "20". What I am having trouble is figuring out some logic for validating the day. The day should not go over 31.

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5  
A regex seems like a strange tool for this problem. Can you not convert the text to a date and check its values? –  Mr. Jefferson May 20 '11 at 20:01
1  
While this could theoretically be done, a regex that handled the correct number of days for each month (including leap years) would be insanely complex. Why not just split the date up and test each component? (Or better yet, use one of the many date parsers on CPAN.) –  cjm May 20 '11 at 20:06
    
@Zerobu, why do you ask the same question again than a year ago??? questions/2573466/matching-a-date-in-perl. OK, a year ago you didn't got a regex answer, but I hope you see from @Seth answer regex is not useful to validate a date. –  stema May 20 '11 at 20:39
    
If I wanted all conditions such as the leap year, then I would have said so –  Zerobu May 20 '11 at 20:49
    
@Zerobu, my point is simply that most people start thinking they just need a simple regex for a date string, but end up needing something "real". If that's not the case for you, no problem :) If it is, well, my answer will still be here when you need it! –  Ryley May 20 '11 at 20:53

7 Answers 7

up vote 12 down vote accepted

Regex for 0-31:

(0[1-9]|[12]\d|3[01])

Or if you don't want days with a preceding zero (e.g. 05):

([1-9]|[12]\d|3[01])
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Thanks apparently the other posters had a hard time figuring out what i was looking for, even though I already said what I needed –  Zerobu May 20 '11 at 20:47
3  
That's because the date won't necessarily be valid. It won't, for example, reject 31 February 2011. Regex it the wrong tool for this. –  MRAB May 20 '11 at 22:56
1  
was 1974 a leap year? what about 2000? –  Joel Berger May 21 '11 at 3:18
    
Wouldn't this allow a value of '00'? –  Jeromy French Apr 8 '13 at 19:56
1  
This doesn't allow for days ending in zero -- "10" or "20". –  Joe Krill Oct 10 '13 at 17:19
use DateTime;

Other solutions are fine, probably work, etc. Usually, you end up wanting to do a bit more, and then a bit more, and eventually you have some crazy code, and leap years, and why are you doing it yourself again?

DateTime and its formatters are your solution. Use them! Sometimes they are a bit overkill, but often that works out for you down the road.

my $dayFormat = new DateTime::Format::Strptime(pattern => '%d/%m/%Y');
my $foo = $dayFormat->parse_datetime($myDateString);

$foo is now a DateTime object. Enjoy.

If your date string wasn't properly formatted, $foo will be "undef" and $dayFormat->errstr will tell you why.

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I never understand why people want to reimplement anything let alone something as complicated as date parsing! –  Joel Berger May 21 '11 at 3:15
^(((((((0?[13578])|(1[02]))[\.\-/]?((0?[1-9])|([12]\d)|(3[01])))|(((0?[469])|(11))[\.\-/]?((0?[1-9])|([12]\d)|(30)))|((0?2)[\.\-/]?((0?[1-9])|(1\d)|(2[0-8]))))[\.\-/]?(((19)|(20))?([\d][\d]))))|((0?2)[\.\-/]?(29)[\.\-/]?(((19)|(20))?(([02468][048])|([13579][26])))))$

From Expressions in category: Dates and Times

Validates the correct number of days in a month, looks like it even handles leap years.

You can of course change [\.\-/] with / to only allow slashes.

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11  
+1 for a comical amount of complexity. @Zerobu, hopefully this shows you why regex is a bad idea for this problem! Even this beast isn't fully correct: as the original author notes, it incorrectly matches 02/29/1900. –  OpenSauce May 20 '11 at 20:23

This isn't all that hard...

qr#^
    (?: 0[1-9] | 1[012] )
    /
    (?:
        0[1-9] | 1[0-9] | 2[0-8]
        | (?<! 0[2469]/ | 11/ ) 31
        | (?<! 02/ ) 30
        | (?<! 02/
             (?= ... 
                 (?: 
                     .. (?: [02468][1235679] | [13579][01345789] )
                     | (?: [02468][1235679] | [13579][01345789] ) 00
                 )
             )
        ) 29
    )
    /
    [0-9]{4}
    \z
#x
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  • As many have noted above, if we want to validate the date as a whole then a RegEx is a very poor choice.
  • But if we want to match a pattern of numbers, in this case from 01-31 then RegEx is fine so long as there is some backend logic that validates the date as a whole, if so desired.
  • I see the expected answer currently fails for 10, 20.

    • Test: gawk 'BEGIN{ for(i=0;i<=32;i++){ if (i ~ /^([0-2]?[1-9]|3[01])$/){print i " yes"}else {print i " no"} } }
    • This can be corrected as follows: ^([0-2]?[1-9]|3[01]|10|20)$

So kindly consider the below solution...

1. Identify the sets that need to be matched:

  • Days with prefix "0": {01,...,09},{10,...,31}
    • Sub-set {10,...,31} can be split into => {10,...,29},{30,31}
  • Without any prefix: {1,...,31} => {1,...,9},{10,...,31}

2. Corresponding regular expressions for each sub-set:

---------------------------------
Sub-Set     |  Regular-Expression
---------------------------------
{01,...,09} | [0][1-9]
{10,...,29} | [1-2][0-9]
{30,31}     | 3[01]
{1,...,9}   | [1-9]
---------------------------------

Now we can group ([0][1-9]) and ([1-9]) together as ([0]?[1-9]). Where ? signifies 0 or 1 occurrences of the pattern/symbol. [UPDATE] - Thank you @MattFrear for pointing it out.

So the resulting RegEx is: ^(([0]?[1-9])|([1-2][0-9])|(3[01]))$

Tested here: http://regexr.com/?383k1 [UPDATE]

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1  
Top marks for the explanation. The original question isn't worded particularly well (not the OPs fault) but if you're looking for REGEXP to validate a day of the month this is it. –  Betjamin Richards Jan 8 '14 at 9:30
1  
An improvement over the accepted answer. However, this will accept 001, 00000001, etc. I suggest ^(([0]?[1-9])|([1-2][0-9])|(3[01]))$ regexr.com?383k1 –  Matt Frear Jan 23 '14 at 10:08
    
@MattFrear - Yes good catch! I made a mistake while combining ([0][1-9]) and ([1-9]) together as ([0]*[1-9])... while it should clearly be ([0]?[1-9]). Thank you for sharing the test case. –  Kent Pawar Jan 23 '14 at 10:16

Try it:
/(0?[1-9]|1[012])\/(0?[1-9]|[12][0-9]|3[01])\/((19|20)\d\d)/

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Is regular expression a must? If not, you better off using a different approach, such as DateTime::Format::DateManip

my @dates = (
    '04/23/2009',
    '01/22/2010 6pm',
    'adasdas',
    '1010101/12312312/1232132'
);

for my $date ( @dates ) 
{
    my $date = DateTime::Format::DateManip->parse_datetime( $date );
    die "Bad Date $date"  unless (defined $date);
    print "$dt\n";
}
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