I'm working on a game which involves vehicles at some point. I have a MySQL table named "vehicles" containing the data about the vehicles, including the column "plate" which stores the License Plates for the vehicles.

Now here comes the part I'm having problems with. I need to find an unused license plate before creating a new vehicle - it should be an alphanumeric 8-char random string. How I achieved this was using a while loop in Lua, which is the language I'm programming in, to generate strings and query the DB to see if it is used. However, as the number of vehicles increases, I expect this to become even more inefficient it is right now. Therefore, I decided to try and solve this issue using a MySQL query.

The query I need should simply generate a 8-character alphanumeric string which is not already in the table. I thought of the generate&check loop approach again, but I'm not limiting this question to that just in case there's a more efficient one. I've been able to generate strings by defining a string containing all the allowed chars and randomly substringing it, and nothing more.

Any help is appreciated.

  • How random do you need these to be? If someone receives a particular license plate, is it important or not whether they can work out the next or previous license plate that you handed out? – Damien_The_Unbeliever May 24 '13 at 14:57
  • @YaK See my answer on how to avoid even the tiny possibility of collision – Eugen Rieck May 24 '13 at 15:21

17 Answers 17

up vote 68 down vote accepted

This problem consists of two very different sub-problems:

  • the string must be seemingly random
  • the string must be unique

While randomness is quite easily achieved, the uniqueness without a retry loop is not. This brings us to concentrate on the uniqueness first. Non-random uniqueness can trivially be achieved with AUTO_INCREMENT. So using a uniqueness-preserving, pseudo-random transformation would be fine:

  • Hash has been suggested by @paul
  • AES-encrypt fits also
  • But there is a nice one: RAND(N) itself!

A sequence of random numbers created by the same seed is guaranteed to be

  • reproducible
  • different for the first 8 iterations
  • if the seed is an INT32

So we use @AndreyVolk's or @GordonLinoff's approach, but with a seeded RAND:

e.g. Assumin id is an AUTO_INCREMENT col:

INSERT INTO vehicles VALUES (blah); -- leaving out the number plate
SELECT @lid:=LAST_INSERT_ID();
UPDATE vehicles SET numberplate=concat(
              substring('ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789', rand(@seed:=round(rand(@lid)*4294967296))*36+1, 1),
              substring('ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789', rand(@seed:=round(rand(@seed)*4294967296))*36+1, 1),
              substring('ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789', rand(@seed:=round(rand(@seed)*4294967296))*36+1, 1),
              substring('ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789', rand(@seed:=round(rand(@seed)*4294967296))*36+1, 1),
              substring('ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789', rand(@seed:=round(rand(@seed)*4294967296))*36+1, 1),
              substring('ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789', rand(@seed:=round(rand(@seed)*4294967296))*36+1, 1),
              substring('ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789', rand(@seed:=round(rand(@seed)*4294967296))*36+1, 1),
              substring('ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789', rand(@seed)*36+1, 1)
             )
     WHERE id=@lid;
  • Very intersting approach, but you probably meant RAND(LAST_INSERT_ID()); UPDATE vehicles (...) , rand()*36+1, (...) (or else it returns 8 times the same character). How can we be sure that 8 successive calls to rand() are guaranteed to return a different sequence if initialised with a different seed? – RandomSeed May 24 '13 at 15:29
  • 6
    I was just wondering. Why do you use those numbers ..4294967296))*36+1 ? – Mick Jul 8 '14 at 8:49
  • 6
    This is a bit old but I'd like to note that I had to add FLOOR() around the second substring parameters: substring('ABC … 789', floor(rand(@seed:= … )*36+1), 1), On some occasions, substring was trying to pick character 36.9, which when rounded up to 37, would result in no character being chosen. – Phillip Dodson Aug 5 '15 at 20:22
  • 3
    You cannot call a string random if it is reproducible. And duplicates are also possible, because you are using floor(). This sqlfiddle shows, that duplicates are created for three character long strings. – Paul Spiegel Sep 10 '16 at 0:12
  • 3
    @EugenRieck I don't understand how you get your numbers ("first 2^32 iterations"). But i need only one example of duplicates to disprove this concept. For the IDs 193844 and 775771 your algorithm will generate the same string T82X711 (demo). – Paul Spiegel Sep 10 '16 at 14:37

As I stated in my comment, I woudn't bother with the likelihood of collision. Just generate a random string and check if it exists. If it does, try again and you shouldn't need to do it more that a couple of times unless you have a huge number of plates already assigned.

Another solution for generating an 8-character long pseudo-random string in pure (My)SQL:

SELECT LEFT(UUID(), 8);

You can try the following (pseudo-code):

DO 
    SELECT LEFT(UUID(), 8) INTO @plate;
    INSERT INTO plates (@plate);
WHILE there_is_a_unique_constraint_violation
-- @plate is your newly assigned plate number
  • Thanks for your solution i have one question regarding UUID. how many chance the id you generate 8 character is again repeat. – TR-Ahmed Aug 20 '14 at 7:39
  • @user3099183 Officially, "very low". 16^8 is about 4 billion possible strings. – RandomSeed Aug 20 '14 at 10:19
  • 13
    Please note that the first 8 characters of UUID is not random, but sequential, since it is based on the timestamp. – ADTC Dec 9 '16 at 5:52
  • I want to generate a 9-character long random string, and when I use 9 in your code SELECT LEFT(UUID(), 9);, there is always - at the end of generated string as the ninth character. It is constant. Why? – Martin AJ Mar 3 at 12:21
  • 1
    @MartinAJ because the string is a uuid. You can easily replace the hyphens e.g. SELECT LEFT(REPLACE(UUID(), '-', ''), 16); – jchook Mar 21 at 21:36

What about calculating the MD5 (or other) hash of sequential integers, then taking the first 8 characters.

i.e

MD5(1) = c4ca4238a0b923820dcc509a6f75849b => c4ca4238
MD5(2) = c81e728d9d4c2f636f067f89cc14862c => c81e728d
MD5(3) = eccbc87e4b5ce2fe28308fd9f2a7baf3 => eccbc87e

etc.

caveat: I have no idea how many you could allocate before a collision (but it would be a known and constant value).

edit: This is now an old answer, but I saw it again with time on my hands, so, from observation...

Chance of all numbers = 2.35%

Chance of all letters = 0.05%

First collision when MD5(82945) = "7b763dcb..." (same result as MD5(25302))

  • 2
    Good idea, could use it on the primary key. Will keep this in mind for future projects, thanks! – funstein May 24 '13 at 15:31
  • 2
    There is a chance that this could result with only numbers – Mladen Janjetovic Dec 27 '13 at 10:39
  • 2
    This is of course only toy randomness. – Keelan Jul 28 '16 at 7:51
  • 4
    It is not random at all. – paul Aug 1 '16 at 11:39
  • 1
    You could make it more "random" if instead of using the auto incremental id, you use the datetime in which the insert was done, which is also unique. – Javier La Banca Sep 12 '16 at 20:43

Here is one way, using alpha numerics as valid characters:

select concat(substring('ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789', rand()*36+1, 1),
              substring('ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789', rand()*36+1, 1),
              substring('ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789', rand()*36+1, 1),
              substring('ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789', rand()*36+1, 1),
              substring('ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789', rand()*36+1, 1),
              substring('ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789', rand()*36+1, 1),
              substring('ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789', rand()*36+1, 1),
              substring('ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789', rand()*36+1, 1)
             ) as LicensePlaceNumber;

Note there is no guarantee of uniqueness. You'll have to check for that separately.

  • 5
    use floor(rand()*36+1) instead. Otherwise some results will be 'short'. – Fraggle Oct 21 '15 at 10:06
  • 1
    there should be 35+1 not 36+1 ! Otherwise you will get some some strings with 8 chars and some of them with 7 – BIOHAZARD Apr 28 '16 at 16:15

Create a random string

Here's a MySQL function to create a random string of a given length.

DELIMITER $$

CREATE DEFINER=`root`@`%` FUNCTION `RandString`(length SMALLINT(3)) RETURNS varchar(100) CHARSET utf8
begin
    SET @returnStr = '';
    SET @allowedChars = 'ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789';
    SET @i = 0;

    WHILE (@i < length) DO
        SET @returnStr = CONCAT(@returnStr, substring(@allowedChars, FLOOR(RAND() * LENGTH(@allowedChars) + 1), 1));
        SET @i = @i + 1;
    END WHILE;

    RETURN @returnStr;
END

Usage SELECT RANDSTRING(8) to return an 8 character string.

You can customize the @allowedChars.

Uniqueness isn't guaranteed - as you'll see in the comments to other solutions, this just isn't possible. Instead you'll need to generate a string, check if it's already in use, and try again if it is.


Check if the random string is already in use

If we want to keep the collision checking code out of the app, we can create a trigger:

DELIMITER $$

CREATE TRIGGER Vehicle_beforeInsert
  BEFORE INSERT ON `Vehicle`
  FOR EACH ROW
  BEGIN
    SET @vehicleId = 1;
    WHILE (@vehicleId IS NOT NULL) DO 
      SET NEW.plate = RANDSTRING(8);
      SET @vehicleId = (SELECT id FROM `Vehicle` WHERE `plate` = NEW.plate);
    END WHILE;
  END;$$
DELIMITER ;
  • 2
    this should be the accepted answer, clear and to the point, worked just fine for me, thanks @paddy-mann – Saif Jan 21 '17 at 10:13
  • very well working function – John Jul 22 at 16:43
  • Working well ++right answer – Thiago Natanael Aug 23 at 14:49

You may use MySQL's rand() and char() function:

select concat( 
    char(round(rand()*25)+97),
    char(round(rand()*25)+97),
    char(round(rand()*25)+97),
    char(round(rand()*25)+97),
    char(round(rand()*25)+97),
    char(round(rand()*25)+97),
    char(round(rand()*25)+97),
    char(round(rand()*25)+97)
) as name;

You can generate a random alphanumeric string with:

lpad(conv(floor(rand()*pow(36,8)), 10, 36), 8, 0);

You can use it in a BEFORE INSERT trigger and check for a duplicate in a while loop:

CREATE TABLE `vehicles` (
    `plate` CHAR(8) NULL DEFAULT NULL,
    `data` VARCHAR(50) NOT NULL,
    UNIQUE INDEX `plate` (`plate`)
);

DELIMITER //
CREATE TRIGGER `vehicles_before_insert` BEFORE INSERT ON `vehicles`
FOR EACH ROW BEGIN

    declare str_len int default 8;
    declare ready int default 0;
    declare rnd_str text;
    while not ready do
        set rnd_str := lpad(conv(floor(rand()*pow(36,str_len)), 10, 36), str_len, 0);
        if not exists (select * from vehicles where plate = rnd_str) then
            set new.plate = rnd_str;
            set ready := 1;
        end if;
    end while;

END//
DELIMITER ;

Now just insert your data like

insert into vehicles(col1, col2) values ('value1', 'value2');

And the trigger will generate a value for the plate column.

(sqlfiddle demo)

That works this way if the column allows NULLs. If you want it to be NOT NULL you would need to define a default value

`plate` CHAR(8) NOT NULL DEFAULT 'default',

You can also use any other random string generating algorithm in the trigger if uppercase alphanumerics isn't what you want. But the trigger will take care of uniqueness.

  • Amazing! This is exactly what I wanted. I only would like to understand how it gets converted to a string. Why is there a pow, what to do, to add numbers and so on. Anyhow, thank you. – Akxe Feb 2 '17 at 19:50
  • @Akxe conv() can be used to convert a number to an alphanumeric string. pow(36,8)-1 is the numeric representation of ZZZZZZZZ. So we generate a random integer between 0 and '36^8-1' (from 0 to 2821109907455) and convert it to an alphanumeric string between 0 and ZZZZZZZZ unsing conv(). lapad() will fill the string with zeros until it has a length of 8. – Paul Spiegel Feb 3 '17 at 0:51
  • You sir are a genius. I imagine adding small letters is impossible due to non-continuity of chars? (91-96) Not that I need it, just curious... – Akxe Feb 3 '17 at 1:00
  • @Akxe conv() only supports a base up to 36 (10 digits + 26 uppercase letters). If you want to include lowercase letters, you will need another way to convert a number to a string. – Paul Spiegel Feb 3 '17 at 1:08

Here's another method for generating a random string:

SELECT SUBSTRING(MD5(RAND()) FROM 1 FOR 8) AS myrandomstring

I Use data from another column to generate a "hash" or unique string

UPDATE table_name SET column_name = Right( MD5(another_column_with_data), 8 )
  • This is working fine. Thank you. – studio-klik Mar 21 '17 at 22:50
  • 1
    There is no granite to get unique results. – Mahdi Rafatjah Sep 24 '17 at 19:28

For generate random string, you can use:

SUBSTRING(MD5(RAND()) FROM 1 FOR 8)

You recieve smth like that:

353E50CC

8 letters from the alphabet - All caps:

UPDATE `tablename` SET `tablename`.`randomstring`= concat(CHAR(FLOOR(65 + (RAND() * 25))),CHAR(FLOOR(65 + (RAND() * 25))),CHAR(FLOOR(65 + (RAND() * 25))),CHAR(FLOOR(65 + (RAND() * 25)))CHAR(FLOOR(65 + (RAND() * 25))),CHAR(FLOOR(65 + (RAND() * 25))),CHAR(FLOOR(65 + (RAND() * 25))),CHAR(FLOOR(65 + (RAND() * 25))));

If you dont have a id or seed, like its its for a values list in insert:

REPLACE(RAND(), '.', '')

If you're OK with "random" but entirely predictable license plates, you can use a linear-feedback shift register to choose the next plate number - it's guaranteed to go through every number before repeating. However, without some complex math, you won't be able to go through every 8 character alphanumeric string (you'll get 2^41 out of the 36^8 (78%) possible plates). To make this fill your space better, you could exclude a letter from the plates (maybe O), giving you 97%.

Taking into account the total number of characters that you require, you would have a very small chance of generating two exactly similar number plates. Thus you could probably get away with generating the numbers in LUA.

You have 36^8 different unique numberplates (2,821,109,907,456, that's a lot), even if you already had a million numberplates already, you'd have a very small chance of generating one you already have, about 0.000035%

Of course, it all depends on how many numberplates you will end up creating.

  • True, I'll keep doing it in the actual game instead of SQL. Thank you very much. – funstein May 24 '13 at 15:22

For a String consisting of 8 random numbers and upper- and lowercase letters, this is my solution:

LPAD(LEFT(REPLACE(REPLACE(REPLACE(TO_BASE64(UNHEX(MD5(RAND()))), "/", ""), "+", ""), "=", ""), 8), 8, 0)

Explained from inside out:

  1. RAND generates a random number between 0 and 1
  2. MD5 calculates the MD5 sum of (1), 32 characters from a-f and 0-9
  3. UNHEX translates (2) into 16 bytes with values from 00 to FF
  4. TO_BASE64 encodes (3) as base64, 22 characters from a-z and A-Z and 0-9 plus "/" and "+", followed by two "="
  5. the three REPLACEs remove the "/", "+" and "=" characters from (4)
  6. LEFT takes the first 8 characters from (5), change 8 to something else if you need more or less characters in your random string
  7. LPAD inserts zeroes at the beginning of (6) if it is less than 8 characters long; again, change 8 to something else if needed
  • Great, exactly what I was looking for to create a token-like ID natively in MySQL – rabudde Nov 28 '17 at 17:13
DELIMITER $$

USE `temp` $$

DROP PROCEDURE IF EXISTS `GenerateUniqueValue`$$

CREATE PROCEDURE `GenerateUniqueValue`(IN tableName VARCHAR(255),IN columnName VARCHAR(255)) 
BEGIN
    DECLARE uniqueValue VARCHAR(8) DEFAULT "";
    WHILE LENGTH(uniqueValue) = 0 DO
        SELECT CONCAT(SUBSTRING('ABCDEFGHIJKLMNOPQRSTUVWXYZ123456789', RAND()*34+1, 1),
                SUBSTRING('ABCDEFGHIJKLMNOPQRSTUVWXYZ123456789', RAND()*34+1, 1),
                SUBSTRING('ABCDEFGHIJKLMNOPQRSTUVWXYZ123456789', RAND()*34+1, 1),
                SUBSTRING('ABCDEFGHIJKLMNOPQRSTUVWXYZ123456789', RAND()*34+1, 1),
                SUBSTRING('ABCDEFGHIJKLMNOPQRSTUVWXYZ123456789', RAND()*34+1, 1),
                SUBSTRING('ABCDEFGHIJKLMNOPQRSTUVWXYZ123456789', RAND()*34+1, 1),
                SUBSTRING('ABCDEFGHIJKLMNOPQRSTUVWXYZ123456789', RAND()*34+1, 1),
                SUBSTRING('ABCDEFGHIJKLMNOPQRSTUVWXYZ123456789', RAND()*34+1, 1)
                ) INTO @newUniqueValue;
        SET @rcount = -1;
        SET @query=CONCAT('SELECT COUNT(*) INTO @rcount FROM  ',tableName,' WHERE ',columnName,'  like ''',@newUniqueValue,'''');
        PREPARE stmt FROM  @query;
        EXECUTE stmt;
        DEALLOCATE PREPARE stmt;
    IF @rcount = 0 THEN
            SET uniqueValue = @newUniqueValue ;
        END IF ;
    END WHILE ;
    SELECT uniqueValue;
    END$$

DELIMITER ;

Use this stored procedure and use it everytime like

Call GenerateUniqueValue('tableName','columnName')

An easy way that generate a unique number

set @i = 0;
update vehicles set plate = CONCAT(@i:=@i+1, ROUND(RAND() * 1000)) 
order by rand();

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