45

How do I validate that a value is equal to the UUID4 generated by this code?

uuid.uuid4().hex

Should it be some regular expression? The values generated of 32-character-long strings of this form:

60e3bcbff6c1464b8aed5be0fce86052

4 Answers 4

126

As far as I know, Martijn's answer is not 100% correct. A UUID-4 has five groups of hexadecimal characters, the first has 8 chars, the second 4 chars, the third 4 chars, the fourth 4 chars, the fifth 12 chars.

However to make it a valid UUID4 the third group (the one in the middle) must start with a 4:

00000000-0000-4000-0000-000000000000
              ^

And the fourth group must start with 8, 9, a or b.

00000000-0000-4000-a000-000000000000
              ^    ^

So you have to change Martijn's regex to:

import re
uuid4hex = re.compile('[0-9a-f]{12}4[0-9a-f]{3}[89ab][0-9a-f]{15}\Z', re.I)

Hope this helps!

4
  • 4
    No, Martijn's answer is correct. If you'll notice, the question was asking about the hexadecimal representation of a uuid, not the uuid itself. Feb 7, 2017 at 15:32
  • 8
    I needed this regex for matching an URL with Django's uuid4 output that includes the dashes. This is the URL segment (it might be useful for somebody in the future): (?P<uuid>[0-9a-f]{8}\-[0-9a-f]{4}\-4[0-9a-f]{3}\-[89ab][0-9a-f]{3}\-[0-9a-f]{12}) Apr 28, 2017 at 11:13
  • 11
    If anyone is copy pasting Timmy's regex above, there are two zero-width unicode chars in the fourth "a-f" range which cause an ImproperlyConfigured "...is not a valid regular expression: bad character range ​-f ..." exception. Here is is again fixed [0-9a-f]{8}\-[0-9a-f]{4}\-4[0-9a-f]{3}\-[89ab][0-9a-f]{3}\-[0-9a-f]{12}
    – Ryan Allen
    Aug 9, 2017 at 19:17
  • Just learned that v4 always starts with a 4 in the middle group
    – Andrew
    Nov 30, 2021 at 14:24
56

To be more specific. This is the most precise regex for catching uuid4 both with and without dash, and that follows all the rules of UUID4:

[a-f0-9]{8}-?[a-f0-9]{4}-?4[a-f0-9]{3}-?[89ab][a-f0-9]{3}-?[a-f0-9]{12}

You can make sure it also catches capital letters with ignore case. In my example with re.I. (uuid's do not have capital letters in it's output, but in input it does not fail, just ignores it. Meaning that in a UUID "f" and "F" is the same)

I created a validater to catch them looking like this:

def valid_uuid(uuid):
    regex = re.compile('^[a-f0-9]{8}-?[a-f0-9]{4}-?4[a-f0-9]{3}-?[89ab][a-f0-9]{3}-?[a-f0-9]{12}\Z', re.I)
    match = regex.match(uuid)
    return bool(match)

Then you can do:

if valid_uuid(my_uuid):
    #Do stuff with valid my_uuid

With ^ in the start and \Z in the end I also make sure there is nothing else in the string. This makes sure that "3fc3d0e9-1efb-4eef-ace6-d9d59b62fec5" return true, but "3fc3d0e9-1efb-4eef-ace6-d9d59b62fec5+19187" return false.

Update - the python way below is not foolproof - see comments:

There are other ways to validate a UUID. In python do:

from uuid import UUID
try:
    UUID(my_uuid)
    #my_uuid is valid and you can use it
except ValueError:
    #do what you need when my_uuid is not a uuid
4
  • Instead of if match: return True, etc., use return bool(match), and I'd name the function valid_uuid(). validate_uuid implies (to me) that the function will raise an exception if the UUID doesn't validate.
    – Martijn Pieters
    Feb 11, 2014 at 10:32
  • 1
    this answer is not correct at all. your python (the last one) way is wrong since you can create uuids from a wrong string. pythonfiddle.com/create-uuid-object-with-wrong-uuid
    – Lucas
    Mar 24, 2014 at 11:37
  • 1
    Indeed, UUID('0' * 32) won't throw a ValueError but is not a valid UUID-4 either.
    – Martijn Pieters
    Mar 24, 2014 at 11:46
  • I'd rather say this is not correct. it only validates uuid version 4 because of the [89ab] constraint. it will return false with valid uuid of other versions (1-3 and 5) Mar 16, 2015 at 19:29
24

Easy enough:

import re
uuid4hex = re.compile('[0-9a-f]{32}\Z', re.I)

This matches only for strings that are exactly 32 hexadecimal characters, provided you use the .match() method (searches from the start of the string, see .search() vs. .match()). The \Z matches the end of the string (vs. $ which would match at the end of a string or a newline).

2
  • 5
    this answer is actually not correct since it's missing the reserved bits - see answer of @aguynamedguy
    – Lucas
    Mar 24, 2014 at 11:35
  • @Lucas: I had seen the other answer; both answers are correct, but the other answer is more precise in that it accepts UUID-4 values with dashes as well, and narrows the acceptable range further. At the time I wrote this answer I focused on the regular expression aspect and wasn't aware of the 3rd and 4th group starting values being restricted.
    – Martijn Pieters
    Mar 24, 2014 at 11:41
2

Just as a helping note for performance issues, I've tested both ways in terms of execution time and the regex validation method is quite a little faster:

import re
from uuid import UUID


def _validate_uuid4(uuid_string):
    try:
        UUID(uuid_string, version=4)
    except ValueError:
        return False
    return True

def _validate_uuid4_re(uuid_string):
    uuid4hex = re.compile('^[a-f0-9]{8}-?[a-f0-9]{4}-?4[a-f0-9]{3}-?[89ab][a-f0-9]{3}-?[a-f0-9]{12}\Z', re.I)
    match = uuid4hex.match(uuid_string)
    return bool(match)

In ipython command:

In [58]: val = str(uuid.uuid4())

In [59]: %time _validate_uuid4(val) CPU times: user 0 ns, sys: 0 ns, total: 0 ns Wall time: 30.3 µs Out[59]: True

In [60]: %time _validate_uuid4_re(val) CPU times: user 0 ns, sys: 0 ns, total: 0 ns Wall time: 25.3 µs Out[60]: True

In [61]: val = "invalid_uuid"

In [62]: %time _validate_uuid4(val) CPU times: user 0 ns, sys: 0 ns, total: 0 ns Wall time: 29.3 µs Out[62]: False

In [63]: %time _validate_uuid4_re(val) CPU times: user 0 ns, sys: 0 ns, total: 0 ns Wall time: 25.5 µs Out[63]: False

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