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I have a simple table with field called "hash" VARCHAR 10 UNIQUE FIELD

Now I would like to run a query and generate automatically the hashes inside the field.

The problem is that the hashes has to be alpha-numeric and has to be long 10 chars and UNIQUE.

table structure:

CREATE TABLE `vouchers` (
  `id` int(11) unsigned NOT NULL AUTO_INCREMENT,
  `hash` varchar(255) DEFAULT NULL,
  PRIMARY KEY (`id`),
  UNIQUE KEY `hash` (`hash`)
) ENGINE=MyISAM DEFAULT CHARSET=utf8;

So I need to INSERT hashes into hash field, they should look like random alphanumeric random hashes, I mean users shouldn't be able to catch the next or previous hash just looking at one hash, also they must be 10 chars long and unique.

Has anyone any clue for this?

share|improve this question
    
MySQL only has support for auto incrementing ints and selects on the varchar are also always slower vs an int column. i assume you have a very good reason why you want to do this? – Raymond Nijland Aug 31 '13 at 13:13
    
@RaymondNijland yes , to avoid to create a script from the application side :) – sbaaaang Aug 31 '13 at 13:38
up vote 2 down vote accepted

If you want to create unique values for this field, you can use an auto-incrementing approach, just base 36. Here is an example going up to several hundred million distinct values:

update t cross join (select @i := 0, @chars = '0123456789abcdefghijklmnopqrstuvwxyz') const
    set hash = concat(substring(@chars, ((@i := @i + 1) %36)+1, 1),
                      substring(@chars, floor(@i/pow(36, 1))%36 + 1, 1),
                      substring(@chars, floor(@i/pow(36, 2))%36 + 1, 1),
                      substring(@chars, floor(@i/pow(36, 3))%36 + 1, 1),
                      substring(@chars, floor(@i/pow(36, 4))%36 + 1, 1),
                      substring(@chars, floor(@i/pow(36, 5))%36 + 1, 1),
                      '0000'
                     );

EDIT: (based on revised question)

Your table has a unique constraint on it. I would just do the following:

insert into vouchers(hash)
    select concat(substring(@chars, floor(rand()*36) + 1, 1),
                  substring(@chars, floor(rand()*36) + 1, 1),
                  substring(@chars, floor(rand()*36) + 1, 1),
                  substring(@chars, floor(rand()*36) + 1, 1),
                  substring(@chars, floor(rand()*36) + 1, 1),
                  substring(@chars, floor(rand()*36) + 1, 1),
                  substring(@chars, floor(rand()*36) + 1, 1),
                  substring(@chars, floor(rand()*36) + 1, 1),
                  substring(@chars, floor(rand()*36) + 1, 1),
                  substring(@chars, floor(rand()*36) + 1, 1)
                 );

Just do this a bunch of times in a loop (or as necessary) to populate the table. It is highly unlikely that you will get duplicates. If you do, that particular insert will fail.

share|improve this answer
    
thanks, nice, i'm testing it out but it returns error: [ERROR in query 2] Every derived table must have its own alias – sbaaaang Aug 31 '13 at 13:43
    
You can wrap that in a mysql function for easier results. – zevra0 Aug 31 '13 at 13:44
    
@sbaaaang . . . I tested the logic, but in a select statement, not an update. I just added const to the assigment of @i and moved chars into the same subquery. This eliminates the separate set command. – Gordon Linoff Aug 31 '13 at 13:44
    
@zevra0 uh? i'm new on mysql functions.. :( – sbaaaang Aug 31 '13 at 13:45
    
@GordonLinoff now no errors, but i can't get the hashes inserted, the table is empty :P – sbaaaang Aug 31 '13 at 13:48

I think it is better to handle this from application logic.

If you want to handle it sql way, try using mysql function UUID() ( but uuid generated is 36 characters long)

share|improve this answer
    
indeed you should handle that from the application but it will be much harder to pull it off. – Raymond Nijland Aug 31 '13 at 13:18
    
@Manu i agree just i'm lazy i would like to know if is here some way to avoid writing an application script – sbaaaang Aug 31 '13 at 13:44

Here's the code to wrap Gordon's answer above into a function (credit to Gordon) -

delimiter |
create function hash10() returns varchar(10)
begin
declare chars varchar(34);
set chars = '0123456789abcdefghijklmnopqrstuvwxyz';
return concat(substring(chars, floor(rand()*36) + 1, 1),
              substring(chars, floor(rand()*36) + 1, 1),
              substring(chars, floor(rand()*36) + 1, 1),
              substring(chars, floor(rand()*36) + 1, 1),
              substring(chars, floor(rand()*36) + 1, 1),
              substring(chars, floor(rand()*36) + 1, 1),
              substring(chars, floor(rand()*36) + 1, 1),
              substring(chars, floor(rand()*36) + 1, 1),
              substring(chars, floor(rand()*36) + 1, 1),
              substring(chars, floor(rand()*36) + 1, 1)
             );
end|
delimiter ;

Then you can use...

insert into x (hash) values (hash10()),(hash10()),(hash10());
share|improve this answer
    
just awesome @zevra0 – sbaaaang Aug 31 '13 at 15:28
    
Should be: declare chars varchar(36); – wieczorek1990 Nov 13 '15 at 12:01
-- most elegant, has adjustable length 1-32 and probably has best performance
SELECT SUBSTR(REPLACE(UUID(),'-',''),1,10) as randomStringUUID
;

-- generate 10 character [a-z0-9] string, has adjustable letter/nr ratio
SELECT CONCAT(
  CASE WHEN RAND()>=0.5 THEN char(round(RAND()*9+48)) ELSE char(round(RAND()*25+97)) END
  ,CASE WHEN RAND()>=0.5 THEN char(round(RAND()*9+48)) ELSE char(round(RAND()*25+97)) END
  ,CASE WHEN RAND()>=0.5 THEN char(round(RAND()*9+48)) ELSE char(round(RAND()*25+97)) END
  ,CASE WHEN RAND()>=0.5 THEN char(round(RAND()*9+48)) ELSE char(round(RAND()*25+97)) END
  ,CASE WHEN RAND()>=0.5 THEN char(round(RAND()*9+48)) ELSE char(round(RAND()*25+97)) END
  ,CASE WHEN RAND()>=0.5 THEN char(round(RAND()*9+48)) ELSE char(round(RAND()*25+97)) END
  ,CASE WHEN RAND()>=0.5 THEN char(round(RAND()*9+48)) ELSE char(round(RAND()*25+97)) END
  ,CASE WHEN RAND()>=0.5 THEN char(round(RAND()*9+48)) ELSE char(round(RAND()*25+97)) END
  ,CASE WHEN RAND()>=0.5 THEN char(round(RAND()*9+48)) ELSE char(round(RAND()*25+97)) END
  ,CASE WHEN RAND()>=0.5 THEN char(round(RAND()*9+48)) ELSE char(round(RAND()*25+97)) END
  ) as randomString
;

-- as bonus: generate a variable size letter only string, best for emulating names/words
SELECT SUBSTR(CONCAT(char(RAND()*25+55),char(RAND()*25+97),char(RAND()*25+97),char(RAND()*25+97),char(RAND()*25+97),char(RAND()*25+97),char(RAND()*25+97),char(RAND()*25+97),char(RAND()*25+97),char(RAND()*25+97),char(RAND()*25+97),char(RAND()*25+97)),1,RAND()*9+4) as RandomName

Test at http://sqlfiddle.com/#!8/d41d8/586

share|improve this answer

Just use a loop:

DROP FUNCTION hash10;
DELIMITER |
CREATE FUNCTION hash10() RETURNS VARCHAR(10)
BEGIN
  DECLARE chars VARCHAR(36);
  DECLARE result VARCHAR(10);
  DECLARE i INT;
  SET chars = '0123456789abcdefghijklmnopqrstuvwxyz';
  SET result = '';
  SET i = 0;
  label: LOOP
    SET result = CONCAT(result, SUBSTRING(chars, FLOOR(RAND()*36) + 1, 1));
    SET i = i + 1;
    IF i = 10 THEN
      LEAVE label;
    END IF;
  END LOOP label;
  RETURN result;
END|
DELIMITER ;

To generate a different length just replace all the 10's to different number.

share|improve this answer

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