137

I've just imported a bunch of data to a MySQL table and I have a column "GUID" that I want to basically fill down all existing rows with new and unique random GUID's.

How do I do this in MySQL ?

I tried

UPDATE db.tablename
  SET columnID = UUID()
  where columnID is not null

And just get every field the same

4
  • 2
    are you really sure,they are same?I have tried ,most the characters are same,but there are a few differences in the generated uuid
    – xiaoyifang
    Commented Mar 22, 2017 at 8:56
  • Yes, I confirm, it's the same!
    – Cyril N.
    Commented Feb 14, 2018 at 15:36
  • 2
    It works for me - the differences are minor, but are there. Quickest way to check is to add a UNIQUE constraint to the column.
    – PSU
    Commented Jun 19, 2020 at 11:57
  • Sorry to necro an old post here, but SET columnID = UUID() works - it's just if you're doing it over a large number of rows, the majority of the UUID characters will appear the same but there will be subtle differences. +1 to PSU's answer
    – joelc
    Commented Feb 19, 2021 at 17:08

12 Answers 12

164

I had a need to add a guid primary key column in an existing table and populate it with unique GUID's and this update query with inner select worked for me:

UPDATE sri_issued_quiz SET quiz_id=(SELECT uuid());

So simple :-)

6
  • 51
    At first I thought this had inserted duplicate UUIDs because they all begin and end the same, but they are in fact slightly different.
    – Sam Barnum
    Commented Oct 22, 2013 at 17:04
  • 8
    @SamBarnum because UUID is generated based on the machine and timestamp. As a query that takes milliseconds to run, they have to be very very close indeed... but never the same... a good thing to assure you, is to add an UNIQUE index to that column.
    – balexandre
    Commented Nov 6, 2014 at 9:07
  • 5
    The accepted answer seems an overkill comparing to this!
    – Aritz
    Commented Apr 6, 2017 at 7:53
  • 8
    At least in mariadb (10.1.26) this does not seem to work, giving the same uuid for every record.
    – johanvdw
    Commented Oct 1, 2018 at 8:20
  • 8
    This generated the same UUID on every record for me, presumably because it's in a subquery and MySQL will execute the inner query first and use the same value for all rows. To solve it, remove the subquery: UPDATE sri_issued_quiz SET quiz_id=uuid(); Commented Nov 8, 2018 at 16:00
105

I'm not sure if it's the easiest way, but it works. The idea is to create a trigger that does all work for you, then, to execute a query that updates your table, and finally to drop this trigger:

delimiter //
create trigger beforeYourTableUpdate  BEFORE UPDATE on YourTable
FOR EACH ROW
BEGIN
  SET new.guid_column := (SELECT UUID());
END
//

Then execute

UPDATE YourTable set guid_column = (SELECT UUID());

And DROP TRIGGER beforeYourTableUpdate;

UPDATE Another solution that doesn't use triggers, but requires primary key or unique index :

UPDATE YourTable,
INNER JOIN (SELECT unique_col, UUID() as new_id FROM YourTable) new_data 
ON (new_data.unique_col = YourTable.unique_col)
SET guid_column = new_data.new_id

UPDATE once again: It seems that your original query should also work (maybe you don't need WHERE columnID is not null, so all my fancy code is not needed.

9
  • yeah, it should work even in 5.0. But don't forget to drop the trigger!
    – a1ex07
    Commented Jun 8, 2011 at 15:24
  • yeah sure :) just wondering whether I need to check for duplicates after or whether this will create unique values for every row in the column ?
    – Tom
    Commented Jun 8, 2011 at 15:29
  • If UUID is implemented properly (and I believe it is), you should be able to create unique index without checking for duplicates.
    – a1ex07
    Commented Jun 8, 2011 at 15:32
  • 2
    your original code would work, just change columnId=UUID() to columnId=(SELECT UUID()). Worked great for me. all the generated values are very close to being the same but each is unique.
    – EJay
    Commented Sep 28, 2012 at 20:20
  • 1
    Just a note that @a1ex07 might want to add to the answer: in 5.6 (I haven't tested others), if the columnId=(SELECT UUID()) is within a stored procedure, all the UUID values will be identical.
    – Phil
    Commented Apr 10, 2018 at 18:28
27

The approved solution does create unique IDs but on first glance they look identical, only the first few characters differ.

If you want visibly different keys, try this:

update CityPopCountry set id = (select md5(UUID()));


MySQL [imran@lenovo] {world}> select city, id from CityPopCountry limit 10;
+------------------------+----------------------------------+
| city                   | id                               |
+------------------------+----------------------------------+
| A Coruña (La Coruña)   | c9f294a986a1a14f0fe68467769feec7 |
| Aachen                 | d6172223a472bdc5f25871427ba64e46 |
| Aalborg                | 8d11bc300f203eb9cb7da7cb9204aa8f |
| Aba                    | 98aeeec8aa81a4064113764864114a99 |
| Abadan                 | 7aafe6bfe44b338f99021cbd24096302 |
| Abaetetuba             | 9dd331c21b983c3a68d00ef6e5852bb5 |
| Abakan                 | e2206290ce91574bc26d0443ef50fc05 |
| Abbotsford             | 50ca17be25d1d5c2ac6760e179b7fd15 |
| Abeokuta               | ab026fa6238e2ab7ee0d76a1351f116f |
| Aberdeen               | d85eef763393862e5fe318ca652eb16d |
+------------------------+----------------------------------+

I'm using MySQL Server version: 5.5.40-0+wheezy1 (Debian)

3
  • 10
    In my case, i needed hyphens in the generated GUID. I used this: SELECT INSERT(INSERT(INSERT(INSERT(MD5(UUID()), 9, 0, '-'), 14, 0, '-'), 19, 0, '-'), 24, 0, '-') Query is not very pretty but it does the job.
    – solo
    Commented Jul 26, 2016 at 9:05
  • 10
    Isn't md5 less unique than UUIDs? I'd worry about collisions.
    – Adam
    Commented Jun 1, 2018 at 16:18
  • @Adam you are right. Even though a collision is rare, MD5 is not unique. I would not recommend using this method for the result the OP wants. Good discussions about it here: link
    – Miky Dal
    Commented Feb 23, 2022 at 15:49
23
select @i:=uuid();
update some_table set guid = (@i:=uuid());
2
  • 2
    perfect perfect perfect!! such small thing can have huge impact!! Commented Aug 17, 2017 at 6:44
  • Can confirm, simplest and only solution that works for me to set different UUID for many rows,
    – rabudde
    Commented Nov 12, 2020 at 8:24
8

Just a minor addition to make as I ended up with a weird result when trying to modify the UUIDs as they were generated. I found the answer by Rakesh to be the simplest that worked well, except in cases where you want to strip the dashes.

For reference:

UPDATE some_table SET some_field=(SELECT uuid());

This worked perfectly on its own. But when I tried this:

UPDATE some_table SET some_field=(REPLACE((SELECT uuid()), '-', ''));

Then all the resulting values were the same (not subtly different - I quadruple checked with a GROUP BY some_field query). Doesn't matter how I situated the parentheses, the same thing happens.

UPDATE some_table SET some_field=(REPLACE(SELECT uuid(), '-', ''));

It seems when surrounding the subquery to generate a UUID with REPLACE, it only runs the UUID query once, which probably makes perfect sense as an optimization to much smarter developers than I, but it didn't to me.

To resolve this, I just split it into two queries:

UPDATE some_table SET some_field=(SELECT uuid());
UPDATE some_table SET some_field=REPLACE(some_field, '-', '');

Simple solution, obviously, but hopefully this will save someone the time that I just lost.

1
  • Thanks, indeed you saved me some time. :)
    – Klaus
    Commented Nov 13, 2021 at 16:52
7

MYsql

UPDATE tablename   SET columnName = UUID()

oracle

UPDATE tablename   SET columnName = SYS_GUID();

SQLSERVER

UPDATE tablename   SET columnName = NEWID();;
4

Looks like a simple typo. Didn't you mean "...where columnId is null"?

UPDATE db.tablename
  SET columnID = UUID()
  where columnID is null
1
  • 1
    I had the same thought when I read the question, but I don't think so: sounds like his columns contain values, but not UNIQUE values. The answers given long before your answer already show what is needed. There should not be a WHERE clause. And the values generated are very similar, so must look at them closely to see that they are indeed different. Commented Apr 1, 2015 at 17:33
4

I faced mostly the same issue. Im my case uuid is stored as BINARY(16) and has NOT NULL UNIQUE constraints. And i faced with the issue when the same UUID was generated for every row, and UNIQUE constraint does not allow this. So this query does not work:

UNHEX(REPLACE(uuid(), '-', ''))

But for me it worked, when i used such a query with nested inner select:

UNHEX(REPLACE((SELECT uuid()), '-', ''))

Then is produced unique result for every entry.

2
UPDATE db.tablename SET columnID = (SELECT UUID()) where columnID is not null
2
  • 2
    Please add some explanation on how your code works. Code without comments is not always easy to understand to other SO users Commented Jan 25, 2020 at 9:52
  • if u want to update uuid in existing data, run query as above with your condition. Commented Feb 1, 2020 at 5:58
1
// UID Format: 30B9BE365FF011EA8F4C125FC56F0F50
UPDATE `events` SET `evt_uid` = (SELECT UPPER(REPLACE(@i:=UUID(),'-','')));

// UID Format: c915ec5a-5ff0-11ea-8f4c-125fc56f0f50
UPDATE `events` SET `evt_uid` = (SELECT UUID());

// UID Format: C915EC5A-5FF0-11EA-8F4C-125FC56F0F50
UPDATE `events` SET `evt_uid` = (SELECT UPPER(@i:=UUID()));
1
SELECT CONCAT(SUBSTRING(REPLACE(UUID(),'-',''), 1, 5), SUBSTRING(UPPER(REPLACE(UUID(),'-','')), 4, 5), SUBSTRING('@#$%(*&', FLOOR(RAND()*(1-8))+8, 1)) pass

I did this: SELECT five characters in lower case, five characters in upper case and one special character.

0

I got this error when using mysql as sql_mode = "". After some testing, I decided that the problem was caused by this usage. When I tested on the default settings, I found that this problem was not there. Note: Don't forget to refresh your connection after changing the mode.

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