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I'm searching for UUIDs in blocks of text using a regex. Currently I'm relying on the assumption that all UUIDs will follow a patttern of 8-4-4-4-12 hexadecimal digits.

Can anyone think of a use case where this assumption would be invalid and would cause me to miss some UUIDs?

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This question from 6 years ago was to help me with a project to find credit cards in a block of text. I've subsequently open sourced the code which is linked from my blog post which explains the nuance that the UUIDs were causing when searching for credit cards… –  Guy Apr 17 '14 at 14:15

10 Answers 10

up vote 19 down vote accepted

I agree that by definition your regex does not miss any UUID. However it may be useful to note that if you are searching especially for Microsoft's Globally Unique Identifiers (GUIDs), there are five equivalent string representations for a GUID:





"{0xCA761232, 0xED42, 0x11CE, {0xBA, 0xCD, 0x00, 0xAA, 0x00, 0x57, 0xB2, 0x23}}"
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Under what situations would the first pattern be found? i.e. Is there a .Net function that would strip the hyphens or return the GUID without hyphens? –  Guy Sep 25 '08 at 22:32
You can get it with myGuid.ToString("N"). –  Panos Sep 25 '08 at 22:38
Helpful - Thanks! –  Guy Sep 25 '08 at 22:47

The regex for uuid is:

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make that [a-f0-9]! As it's hex! Your regex (as it is) could return false positives. –  exhuma Sep 25 '11 at 9:21
In some cases you might even want to make that [a-fA-F0-9] or [A-F0-9]. –  hstoerr Nov 23 '11 at 12:53
+1 for pattern, but I'm wondering [0-9a-f] might perform better as more random hex digits will be a number instead of alphabetic character? –  cyber-monk Apr 2 '12 at 15:46
@cyber-monk: [0-9a-f] is identical to [a-f0-9] and [0123456789abcdef] in meaning and in speed, since the regex is turned into a state machine anyway, with each hex digit turned into an entry in a state-table. For an entry point into how this works, see –  JesperSM Jul 3 '12 at 12:07
This solution is not quite correct. It matches IDs that have invalid version and variant characters per RFC4122. @Gajus' solution is more correct in that regard. Also, the RFC allows upper-case characters on input, so adding [A-F] would be appropriate. –  broofa Feb 6 '13 at 18:35

@ivelin: UUID can have capitals. So you'll either need to toLowerCase() the string or use:


Would have just commented this but not enough rep :)

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Version 4 UUIDs have the form xxxxxxxx-xxxx-4xxx-yxxx-xxxxxxxxxxxx where x is any hexadecimal digit and y is one of 8, 9, A, or B. e.g. f47ac10b-58cc-4372-a567-0e02b2c3d479.


Therefore, this is technically more correct:

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I don't think you mean a-z. –  Bruno Bronosky Feb 5 '13 at 16:06
Need to accept [A-F], too. Per section 3 of RFC4122: 'The hexadecimal values "a" through "f" are output as lower case characters and are case insensitive on input'. Also (:?8|9|A|B) is probably slightly more readable as [89aAbB] –  broofa Feb 6 '13 at 18:26
Need to copy @broofa's modification; as yours excludes lower-case A or B. –  ELLIOTTCABLE May 18 '13 at 22:26
@elliottcable Depending on your environment, just use i (case-insensitive) flag. –  Gajus Kuizinas Jan 14 '14 at 23:11
You're rejecting Version 1 to 3 and 5. Why? –  iGEL Jun 24 '14 at 13:20

By definition, a UUID is 32 hexadecimal digits, separated in 5 groups by hyphens, just as you have described. You shouldn't miss any with your regular expression.

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Not correct. RFC4122 only allows [1-5] for the version digit, and [89aAbB] for the variant digit. –  broofa Feb 6 '13 at 18:36

In python re, you can span from numberic to upper case alpha. So..

import re
test = "01234ABCDEFGHIJKabcdefghijk01234abcdefghijkABCDEFGHIJK"
re.compile(r'[0-f]+').findall(test) # Bad: matches all uppercase alpha chars
## ['01234ABCDEFGHIJKabcdef', '01234abcdef', 'ABCDEFGHIJK']
re.compile(r'[0-F]+').findall(test) # Partial: does not match lowercase hex chars
## ['01234ABCDEF', '01234', 'ABCDEF']
re.compile(r'[0-F]+', re.I).findall(test) # Good
## ['01234ABCDEF', 'abcdef', '01234abcdef', 'ABCDEF']
re.compile(r'[0-f]+', re.I).findall(test) # Good
## ['01234ABCDEF', 'abcdef', '01234abcdef', 'ABCDEF']
re.compile(r'[0-Fa-f]+').findall(test) # Good (with uppercase-only magic)
## ['01234ABCDEF', 'abcdef', '01234abcdef', 'ABCDEF']
re.compile(r'[0-9a-fA-F]+').findall(test) # Good (with no magic)
## ['01234ABCDEF', 'abcdef', '01234abcdef', 'ABCDEF']

That makes the simplest Python UUID regex:

re_uuid = re.compile("[0-F]{8}-[0-F]{4}-[0-F]{4}-[0-F]{4}-[0-F]{12}", re.I)

I'll leave it as an exercise to the reader to use timeit to compare the performance of these.

Enjoy. Keep it Pythonic™!

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This is the same as @Ivelin's answer, but shorter:


Gajus' regexp rejects UUID V1-3 and 5, even though they are valid.

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[\w]{8}(-[\w]{4}){3}-[\w]{12} has worked for me in most cases.

Or if you want to be really specific [\w]{8}-[\w]{4}-[\w]{4}-[\w]{4}-[\w]{12}.

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It it worth noting that \w, in Java at least, matches _ as well as hexadecimal digits. Replacing the \w with \p{XDigit} may be more appropriate as that is the POSIX class defined for matching hexadecimal digits. This may break when using other Unicode charsets tho. –  oconnor0 Mar 7 '11 at 21:41
@oconnor \w usually means "word characters" It will match much more than hex-digits. Your solution is much better. Or, for compatibility/readability you could use [a-f0-9] –  exhuma Sep 25 '11 at 9:23

So, I think Richard Bronosky actually has the best answer to date, but I think you can do a bit to make it somewhat simpler (or at least terser):

re_uuid = re.compile(r'[0-9a-f]{8}(?:-[0-9a-f]{4}){3}-[0-9a-f]{12}', re.I)
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Even terser: re_uuid = re.compile(r'[0-9a-f]{8}(?:-[0-9a-f]{4}){4}[0-9a-f]{8}', re.I) –  Pedro Gimeno May 12 '14 at 11:01

Variant for C++:

#include <regex>  // Required include


// Source string    
std::wstring srcStr = L"String with GIUD: {4d36e96e-e325-11ce-bfc1-08002be10318} any text";

// Regex and match
std::wsmatch match;
std::wregex rx(L"(\\{[A-F0-9]{8}-[A-F0-9]{4}-[A-F0-9]{4}-[A-F0-9]{4}-[A-F0-9]{12}\\})", std::regex_constants::icase);

// Search
std::regex_search(srcStr, match, rx);

// Result
std::wstring strGUID       = match[1];
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