119

Given a value I want to validate it to check if it is a valid year. My criteria is simple where the value should be an integer with 4 characters. I know this is not the best solution as it will not allow years before 1000 and will allow years such as 5000. This criteria is adequate for my current scenario.

What I came up with is

\d{4}$

While this works it also allows negative values.

How do I ensure that only positive integers are allowed?

2
  • fwiw I created a node.js project, to-regex-range to automatically create these ranges. It's harder than it might seem if you need to generate the regex to test for a range of years. Commented May 28, 2017 at 21:25
  • Why limit your validation to 4 digit years? longnow.org
    – Dan Temple
    Commented Feb 27, 2019 at 10:53

17 Answers 17

229

Years from 1000 to 2999

^[12][0-9]{3}$

For 1900-2099

^(19|20)\d{2}$
4
  • 15
    I's better to use non-capturing group: ^(?:19|20)\d{2}$
    – Eldar
    Commented Jun 21, 2015 at 12:11
  • 1
    How would I validate a 4 digit year between 2011 & 2099?
    – mcquaim
    Commented May 30, 2017 at 11:37
  • How can I add (19|20)\d{2} to my regex in order to validatate a birthdate format ? This is my regex /^[0-9]{1,2}\/(0[1-9])|(1[0-2])\/[0-9]{4}$/ I want to ensure that the year has always 4 digits and begins wither 19** or 20**
    – ltdev
    Commented Aug 10, 2017 at 14:15
  • Use ^(19|2[0-9])\d{2}$ for years 1900 - 2999
    – MarcoZen
    Commented May 11, 2018 at 8:34
101

You need to add a start anchor ^ as:

^\d{4}$

Your regex \d{4}$ will match strings that end with 4 digits. So input like -1234 will be accepted.

By adding the start anchor you match only those strings that begin and end with 4 digits, which effectively means they must contain only 4 digits.

6
  • 2
    Damn! Mine was so flawed that it would have even accepted whateverblahblah2323. Now I understand why a little learning is dangerous :O Commented Dec 7, 2010 at 7:21
  • 69
    This will break in the year 10,000.
    – sferik
    Commented Sep 3, 2012 at 0:14
  • 16
    @sferik: Doesn't matter. The original poster specifically stated he wanted to check for four characters. He did not state he wanted the year 10,000 to be valid input, so accepting 10000 would be a bug.
    – markusk
    Commented Feb 1, 2015 at 9:01
  • 6
    @sferik: The program will be gone for centuries by then. If not, it is best to worry about 9,000 years in the future. Following the principle of YAGNI, the approach is valid.
    – Phil
    Commented Jan 5, 2018 at 18:07
  • 1
    @Phil not just the program, will be highly doubtful that the human race or the planet will be around at that time. And for sure robots will be doing most of the coding long before that and laughing to each other as they try to rewrite our terrible code.
    – blissweb
    Commented Aug 22, 2021 at 2:50
22

The "accepted" answer to this question is both incorrect and myopic.

It is incorrect in that it will match strings like 0001, which is not a valid year.

It is myopic in that it will not match any values above 9999. Have we already forgotten the lessons of Y2K? Instead, use the regular expression:

^[1-9]\d{3,}$

If you need to match years in the past, in addition to years in the future, you could use this regular expression to match any positive integer:

^[1-9]\d*$

Even if you don't expect dates from the past, you may want to use this regular expression anyway, just in case someone invents a time machine and wants to take your software back with them.

Note: This regular expression will match all years, including those before the year 1, since they are typically represented with a BC designation instead of a negative integer. Of course, this convention could change over the next few millennia, so your best option is to match any integer—positive or negative—with the following regular expression:

^-?[1-9]\d*$
5
  • 4
    No, it likely won't. But someone (archeologist? historian?) might need to match years for 8000 years ago. :D And Doc Brown might need it...
    – Jaime
    Commented Jun 24, 2014 at 12:59
  • 1
    i used this to limit range from 1000-9999 ^[1-9]\\d{3}$ thats because the application we have to provide data to, accept 4 digits numbers only :(
    – MatPag
    Commented Nov 16, 2015 at 11:42
  • Awesome answer. I'd make it the following to accept the year 0 as well: ^(-?[1-9]\d*|0)$ Commented Dec 15, 2016 at 14:07
  • I would say 0001 is a valid year. And there is no way in hell this code is gonna be running in the year 2080 let alone 9999. y2k was 1960 looking forward 40 years, not looking forward 7000+ But yeah ... apart from that, some useful tidbits
    – blissweb
    Commented Aug 22, 2021 at 2:45
  • This will also match 1234567 so better omit the , -> ^[1-9]\d{3}$ Commented May 3, 2022 at 12:40
13

This works for 1900 to 2099:

/(?:(?:19|20)[0-9]{2})/
3
  • looks to me like it would only go to 2099. BTW the OP is asking how to only allow positive 4 digit number.
    – DeanOC
    Commented Feb 1, 2015 at 9:07
  • bah, 2099 is what I meant. thanks. and now I see the positive integers part. Commented Feb 1, 2015 at 9:50
  • I created a project, to-regex-range to automatically create these ranges Commented Aug 17, 2015 at 1:21
6

Building on @r92 answer, for years 1970-2019:

(19[789]\d|20[01]\d)
5
  • Your answer allows 197999
    – avalanche1
    Commented Sep 8, 2016 at 16:06
  • I don't think it does... The first part of the regex matches number starting with 19, then any of 7,8 or 9, followed by a SINGLE number. The regex 19[789]\d\d\d would allow 197999
    – Renaud
    Commented Sep 9, 2016 at 7:16
  • 1
    /(19[789]\d|20[01]\d)/.test(1970324) >> true
    – avalanche1
    Commented Sep 12, 2016 at 11:25
  • yes, it will match the first 4 numbers (1970), not the last 3. What about (19[789]\d|20[01]\d)[^0-9]? That would match 1970 324 but not 1970324
    – Renaud
    Commented Sep 13, 2016 at 7:35
  • 1
    I found this one useful for finding the movie year from a filename... in this case we want stuff from 1930s onwards... but we then exclude the 1024 that is added to the end for video quality
    – Adrian Hum
    Commented Jan 28, 2020 at 23:04
4

To test a year in a string which contains other words along with the year you can use the following regex: \b\d{4}\b

2
  • This was exactly what I needed, the accepted answer doesn't seem to be valid PCRE. Commented Nov 28, 2018 at 23:52
  • This should be the answer to the question
    – Dev_Man
    Commented Nov 2, 2023 at 11:03
3

In theory the 4 digit option is right. But in practice it might be better to have 1900-2099 range.

Additionally it need to be non-capturing group. Many comments and answers propose capturing grouping which is not proper IMHO. Because for matching it might work, but for extracting matches using regex it will extract 4 digit numbers and two digit (19 and 20) numbers also because of paranthesis.

This will work for exact matching using non-capturing groups:

(?:19|20)\d{2}

2

Use;

^(19|[2-9][0-9])\d{2}$ 

for years 1900 - 9999.

No need to worry for 9999 and onwards - A.I. will be doing all programming by then !!! Hehehehe

You can test your regex at https://regex101.com/

Also more info about non-capturing groups ( mentioned in one the comments above ) here http://www.manifold.net/doc/radian/why_do_non-capture_groups_exist_.htm

1

you can go with sth like [^-]\d{4}$: you prevent the minus sign - to be before your 4 digits.
you can also use ^\d{4}$ with ^ to catch the beginning of the string. It depends on your scenario actually...

1

/^\d{4}$/ This will check if a string consists of only 4 numbers. In this scenario, to input a year 989, you can give 0989 instead.

0

You could convert your integer into a string. As the minus sign will not match the digits, you will have no negative years.

0

I use this regex in Java ^(0[1-9]|1[012])[/](0[1-9]|[12][0-9]|3[01])[/](19|[2-9][0-9])[0-9]{2}$

Works from 1900 to 9999

0

If you need to match YYYY or YYYYMMDD you can use:

^((?:(?:(?:(?:(?:[1-9]\d)(?:0[48]|[2468][048]|[13579][26])|(?:(?:[2468][048]|[13579][26])00))(?:0?2(?:29)))|(?:(?:[1-9]\d{3})(?:(?:(?:0?[13578]|1[02])(?:31))|(?:(?:0?[13-9]|1[0-2])(?:29|30))|(?:(?:0?[1-9])|(?:1[0-2]))(?:0?[1-9]|1\d|2[0-8])))))|(?:19|20)\d{2})$
1
  • How can convert YYYYMMDD or DDMMYYYY into YYYY.MM.DD or DD.MM.YYYY. I have string like 20200315 and I want to convert to 2020.03.15 in Dart. Also incoming string might be 17042021 then I need to convert to 17.04.2020 in Dart. Thanks
    – NTMS
    Commented Mar 4, 2021 at 7:37
0

You can also use this one.

([0-2][0-9]|3[0-1])\/([0-1][0-2])\/(19[789]\d|20[01]\d)
3
  • 1
    They want to match year only. Moreover your regex matches 00/00/2000 or 31/02/1999 and many more false dates.
    – Toto
    Commented Aug 20, 2019 at 12:36
  • Is might help you ([0-2][0-9]|3[0-1])\/([0-1][0-2])\/(19[789]\d|20[01]\d) Commented Aug 22, 2019 at 12:30
  • (0[1-9]|1[0-2]) is a much better expression for the month
    – itsezc
    Commented Sep 26, 2019 at 1:53
0

In my case I wanted to match a string which ends with a year (4 digits) like this for example:

Oct 2020
Nov 2020
Dec 2020
Jan 2021

It'll return true with this one:

var sheetName = 'Jan 2021';
var yearRegex = new RegExp("\b\d{4}$");
var isMonthSheet = yearRegex.test(sheetName);
Logger.log('isMonthSheet = ' + isMonthSheet);

The code above is used in Apps Script.

Here's the link to test the Regex above: https://regex101.com/r/SzYQLN/1

2
  • This, not only is going to match Oct 2020 but also Oct 20202, Oct20202 Commented Jan 7, 2021 at 21:04
  • @RanhiruJudeCooray improved the regex. Commented Jan 9, 2021 at 15:31
0

You can try the following to capture valid year from a string:

.*(19\d{2}|20\d{2}).*
1
  • 1
    This allows arbitrary text before and after the year, which is not what the question is looking for.
    – joanis
    Commented Sep 9, 2021 at 19:28
-1

Works from 1950 to 2099 and value is an integer with 4 characters

^(?=.*?(19[56789]|20\d{2}).*)\d{4}$

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