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I am writing a regular expression to validate year starting from 2020.

The below is the regular expression I wrote,

^(20-99)(20-99)$

It doesn't seem to work. Can anyone point out where did I get it wrong?

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Your second group will only accept values 20-99 and you need it to accept 00-99. For example 3000. –  J Lundberg Sep 26 '11 at 18:44
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Your regex only accepts only one string: "20-9920-99". Before using a tool, try to read a bit about it: I don't think you've spent much time learning. If you did, you'd probably come to the conclusion that regex is not the right tool in your case. –  Bart Kiers Sep 26 '11 at 18:52
    
@BartKiers Thanks, I realized my error after looking at JLundberg comment. I must admit regex is not my forte and there is better way of doing this using comparison operator, but due to requirement constraint, I have to use regex. –  Ted Sep 26 '11 at 18:59
    
More detail needed. ANY year beyond 2020? Like 10556? Abbreviations OK, like '20 or 55? Commas in 5 digit years? 2021AD OK? –  the wolf Sep 26 '11 at 20:05
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3 Answers

up vote 5 down vote accepted

Regular expressions don't take ranges like that. You'll want to do something like:

if( year >= 2020 )
  presto

I'm being flippant because you're trying to use a regular expression where you can just use a straight-forward comparison. If you have a string, convert the string into an integer first (if you even need to do that with Python). Otherwise, you're going to have some really ugly regular expression that's hard to maintain.

Edit: If you're really keen on using a regular expression (or three), your problem can be broken up into three regular expressions: ^20[2-9]\d$, ^2[1-9]\d\d$, ^[3-9]\d{3}$ for four-character years. You could combine these into ^(20[2-9]\d|2[1-9]\d\d|[3-9]\d{3})$.

But note that the regular expression is a) ugly as hell, and b) only accepts years up to 9999. You can mitigate this with judicious use of the +, so something like:

^(20[2-9]\d+|2[1-9]\d{2,}|[3-9]\d{3,})$

...could work.

But I hope you'll find that just doing year >= 2020 is a lot better.

Edit 2: Hell, that regex is wrong for years greater than 9999. You'll probably want to use:

^(20[2-9]\d|2[1-9]\d{2}|[3-9]\d{3}|[1-9]\d{4,})$

And that still doesn't work if you enter a year like 03852.

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Thanks. But due to some requirement constraint, I may not use comparison operator. –  Ted Sep 26 '11 at 18:47
    
@Ted please post what you are trying to do so we can suggest an alternative. –  Gazler Sep 26 '11 at 18:48
    
Perhaps OP is... I don't know... writing a PEG where he needs to disambiguate years before and after 2020? –  Martin Carpenter Sep 26 '11 at 18:50
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@CanSpice Thank you, it sure look ugly with the regex when it can simply be done using comparison operator and the usual if-then-else. Can't thank you enough for your assistance. –  Ted Sep 26 '11 at 19:01
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Not certain about python but w.r.t. to regex it doesn't work like you are thinking...ranges are for a single character. So if for some reason you must have a regexp (ie: some sort of regexp data-filled validation engine):

^20[2-9][0-9]|[2-9][1-9][0-9][0-9]$

Any number from 2020-2099 or 2100-9999.

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Can't see how this catches the year 3000 (just around the corner). –  Omri Barel Sep 26 '11 at 18:56
    
And you can golf that a little by using \d for [0-9]. –  Martin Carpenter Sep 26 '11 at 18:58
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Here is a significantly shorter regex that does what you want:

^(?![01]|20[01])\d{4}$

Validation:

>>> regex = re.compile(r'^(?![01]|20[01])\d{4}$')
>>> all(regex.match(str(x)) if x >= 2020 else not regex.match(str(x)) for x in xrange(10000))
True
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