36

I would like a JavaScript regular expression that will match time using the 24 hour clock, where the time is given with or without the colon.

For example, I would like to match time in the following formats:

  • 0800
  • 23:45
  • 2345

but that would not match invalid times such as

  • 34:68
  • 5672
  • 2
    Upvoted for giving examples and counter-examples. – Jeremy Stein Sep 29 '09 at 20:19

11 Answers 11

113

This should do it:

^([01]\d|2[0-3]):?([0-5]\d)$

The expression reads:

^        Start of string (anchor)
(        begin capturing group
  [01]   a "0" or "1"
  \d     any digit
 |       or
  2[0-3] "2" followed by a character between 0 and 3 inclusive
)        end capturing group
:?       optional colon
(        start capturing
  [0-5]  character between 0 and 5
  \d     digit
)        end group
$        end of string anchor
  • 6
    24:00 doesn't exist but is matched. Change [0-4] to [0-3]. – strager Sep 29 '09 at 20:20
  • or in the form: ^(([0-9])|([0-1][0-9])|([2][0-3])):?([0-5][0-9])$ if you do not like the \d stuff :) – Mark Schultheiss Sep 29 '09 at 20:54
  • 7
    strager: 24:00 is perfectly valid, referring to the exact end of a day (and technically being the next day at 0:00). See en.wikipedia.org/wiki/24_hour_time#Midnight_00:00_and_24:00 – Joey Sep 30 '09 at 5:46
  • @strager—nor do 12pm and 12am, but people keep usint them… ;-) – RobG Oct 22 '15 at 23:17
7
/(00|01|02|03|04|05|06|07|08|09|10|11|12|13|14|15|16|17|18|19|20|21|22|23):?(0|1|2|3|4|5)\d/

:)

  • 1
    You didn't make the colon optional. – Jeremy Stein Sep 29 '09 at 20:20
  • 1
    Thank. I was typing number too fast so I forgot it :) – Zed Sep 29 '09 at 20:22
  • this answer is so much better than the accepted one. The accepted one ins unreadable without comments – Toskan Nov 3 '15 at 10:37
  • That regex simplifies to: /([01]\d|2[0-3]):?[0-5]\d/. – David R Tribble Aug 22 '16 at 16:13
7

Here is a better solution than the top one above for military plus a civilian solution.

Military

^(((([0-1][0-9])|(2[0-3])):?[0-5][0-9])|(24:?00))

I believe the or in the highest rated response is not properly parsing the subsets before and after without the extra set of parenthesis to group them. Also, I'm not certain that the \d is just 0-9 in all iterations. It technically includes the special [[:digit:]] although I've never dealt with that being an issue before. Any how, this should provide every thing including the crossover 2400/24:00

Civilian

^([0-9]|([1][0-2])):[0-5][0-9][[:space:]]?([ap][m]?|[AP][M]?)

This is a nice Civilian version that allows for the full range formatted like 12:30PM, 12:30P, 12:30pm, 12:30p, 12:30 PM, 12:30 P, 12:30 pm, or 12:30 p but requires the morning or post meridian characters to be the same case if both are included (no Am or pM).

I use both of these in a bit of JavaScript to validate time strings.

  • Thanks, I like this one. I did add the $ at the end of it though. Also, I made the 0 optional at the beginning (i.e. 01:25 could be 1:25). Hopefully didn't mess anything up along the way. ^(((([0-1]?[0-9])|(2[0-3])):?[0-5][0-9])|(24:?00))$ – nardnob Feb 18 '16 at 16:29
  • The civilian one doesn't seem to work. If you throw it into regexr.com and try 12:30p, it returns no matches. – ThePersonWithoutC May 3 '16 at 21:06
  • Works fine in regex101.com. Perhaps you misryped it instead of copy/paste? Regexr.com doesn't work on mobile devices or I would check. – Robert Bolin May 7 '16 at 13:11
  • There is no limit on the end of the regex, it will allow other characters to be entered at the end and still match, eg 13:4502938 – Japheth Ongeri - inkalimeva Nov 10 '16 at 8:36
2

To keep the colon optional and allow all valid times:

([01]\d|2[0-3]):?[0-5]\d

Note that this assumes midnight will always be 0000 and never 2400.

0

Here's a blog post, looking for the same thing and a bunch of potential answers -- most of which don't work, but there is good discussion as to why each fails.

Of course, explicitly long and accurate is always a possibility!

  • Yeah, he could just generate all possible times to an array (should be less than 16k), and then it is just a comparison =) – Zed Sep 29 '09 at 20:27
0

I know this is an old question but here's a regex I came up with which seems to work.

^(([[0|1]\d)|(2[0-3]))[:]?([0-5]\d)$

You can edit it on this regex site

Edit I just realised that this answer ended up exactly the same as the accepted answer but I will leave it here at least for the value of the 'do it yourself' link

0

This is the one I've just come up with:

(^((2[0-4])|([01]?[0-9])):[0-5][0-9]$)|(^((1[0-2])|(0?[1-9])(:[0-5][0-9])?)[pa]m$)

Accepts:

2pm
4:30am
07:05am
18:45
6:19
00:55

does not accept 00:05am - I am not sure if there is such time as 0am

If you feel that : is optional for 24h time format (military) - just add a question mark after it

0

This is perfect:

^0?([0-9][0-2]?):[0-5][0-9]$

Note: 12 Hr Clock Only

For Times like:

0:01- 12:59
00:01 - 12:59
  • Sorry: This is the perfect one: (([0-9][0-2]?)|([0][0-9])):[0-5][0-9]$ – Byorn Dec 12 '16 at 0:02
-1

I don't think regex is the right solution for this problem. Sure, it COULD be done, but it just seems wrong.

Make sure your string is four characters long, or 5 characters with a colon in the middle. Then, parse each side and make sure that the left side is less than 24 and the right hand is less than 60.

The regex solution is just so much more complicated.

  • 1
    Have you not read the other posts? There were numerous attempts, and barely ANYONE got the solution correct (or even understood the problem entirely). My solution is pretty hard to mess up in any language or implementation. – Stefan Kendall Sep 29 '09 at 20:32
  • 2
    Oh, there are plenty of ways to mess up your solution, too. Especially if you're trying to type fast like we were. – Jeremy Stein Sep 29 '09 at 20:54
  • Plenty of WAYS to mess it up? Sure. Easy to mess up? No. Easy to spot a mistake? Yes. Regex? No. – Stefan Kendall Sep 29 '09 at 21:18
-1
/^(?:[01]\d|2[0-3]):?[0-5]\d$/
  • This will match 29:00 – Greg Sep 29 '09 at 20:19
  • Fixed. Thanks, Greg. – Jeremy Stein Sep 29 '09 at 20:22
-1

Remove the ':' if the string has one, then if the string is of the form "DDDD", convert it into an int and compare it to 2400.

  • 2380 is invalid. You have to compare both sides as I suggested. – Stefan Kendall Sep 29 '09 at 20:34

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