157

How to split the name string in mysql ?

E.g.:

name
-----
Sachin ramesh tendulkar
Rahul dravid

Split the name like firstname,middlename,lastname:

firstname   middlename    lastname
---------  ------------   ------------
sachin     ramesh         tendulkar
rahul      dravid
7
  • 4
    when your tables are properly normalize, you don;t have any problem on this. You don't need to split the values.
    – John Woo
    Feb 19, 2013 at 5:31
  • possible duplicate of Can you split/explode a field in a MySQL query?
    – Matt Ball
    Feb 19, 2013 at 5:31
  • 2
    @JW. unfortunately, names in particular are a tough one. kalzumeus.com/2010/06/17/…
    – Matt Ball
    Feb 19, 2013 at 5:37
  • 1
    @Madhav If any of the answers solved your question click solved... hint hint ;)
    – Jesse C
    Jan 21, 2015 at 19:46
  • 1
    Trying to figure out parts of a name as being "first" or "last" name is a path to sorrow. Not all names are two "words" separated by a space. Consider Eddie Van Halen (2 words in last name) or Zack de la Rocha (3 words in last name) or Jerry Lee Lewis (2 words in first name). Don't forget hyphenates like Olivia Newton-John and Yo-Yo Ma or apostrophes like Sinead O'Connor. You are not going to have a consistently accurate way to do this task based on patterns. Feb 14, 2021 at 18:53

18 Answers 18

244
+50

I've separated this answer into two(2) methods. The first method will separate your fullname field into first, middle, and last names. The middle name will show as NULL if there is no middle name.

SELECT
   SUBSTRING_INDEX(SUBSTRING_INDEX(fullname, ' ', 1), ' ', -1) AS first_name,
   If(  length(fullname) - length(replace(fullname, ' ', ''))>1,  
       SUBSTRING_INDEX(SUBSTRING_INDEX(fullname, ' ', 2), ' ', -1) ,NULL) 
           as middle_name,
   SUBSTRING_INDEX(SUBSTRING_INDEX(fullname, ' ', 3), ' ', -1) AS last_name
FROM registeredusers

This second method considers the middle name as part of the lastname. We will only select a firstname and lastname column from your fullname field.

SELECT
   SUBSTRING_INDEX(SUBSTRING_INDEX(fullname, ' ', 1), ' ', -1) AS first_name,
    TRIM( SUBSTR(fullname, LOCATE(' ', fullname)) ) AS last_name
FROM registeredusers

There's a bunch of cool things you can do with substr, locate, substring_index, etc. Check the manual for some real confusion. http://dev.mysql.com/doc/refman/5.0/en/string-functions.html

8
  • 9
    Gosh that intel has just made me feel super human with mysql pro skills. I have ave completely removed PHP processing and turned 100 lines of logic in a one single query. This is amazing!
    – TeaCupApp
    Feb 4, 2014 at 3:35
  • 1
    Really nice. Did exactly what i needed and probably solved the askers problem event better than he wished, since in case of two words only firstname and lastname is set not firstname and middlename. Apr 1, 2014 at 8:18
  • The first method helped me a lot. Only issue I saw was a last name "St. George" got picked up as middle name "St.".
    – Joe M.
    Aug 19, 2015 at 20:42
  • 1
    Hello sir I know this is an old thread. How about if the person has an extension name? Oct 6, 2016 at 7:42
  • 1
    @TrafalgarDLaw I posted a solution above. - stackoverflow.com/a/44802256/3542883
    – Gildonei
    Jun 28, 2017 at 12:25
55

There is no string split function in MySQL. so you have to create your own function. This will help you. More details at this link.

Function:

CREATE FUNCTION SPLIT_STR(
  x VARCHAR(255),
  delim VARCHAR(12),
  pos INT
)
RETURNS VARCHAR(255)
RETURN REPLACE(SUBSTRING(SUBSTRING_INDEX(x, delim, pos),
       LENGTH(SUBSTRING_INDEX(x, delim, pos -1)) + 1),
       delim, '');

Usage:

SELECT SPLIT_STR(string, delimiter, position)

Example:

SELECT SPLIT_STR('a|bb|ccc|dd', '|', 3) as third;

+-------+
| third |
+-------+
| ccc   |
+-------+
1
  • 1
    This is the most concise solution by far; a thing of beauty! I had to add 'DETERMINISTIC' clause after the 'RETURNS' to get it to run, due to my local DB settings.
    – Vince Hill
    Mar 5, 2022 at 4:57
23

Well, nothing I used worked, so I decided creating a real simple split function, hope it helps:

DECLARE inipos INTEGER;
DECLARE endpos INTEGER;
DECLARE maxlen INTEGER;
DECLARE item VARCHAR(100);
DECLARE delim VARCHAR(1);

SET delim = '|';
SET inipos = 1;
SET fullstr = CONCAT(fullstr, delim);
SET maxlen = LENGTH(fullstr);

REPEAT
    SET endpos = LOCATE(delim, fullstr, inipos);
    SET item =  SUBSTR(fullstr, inipos, endpos - inipos);

    IF item <> '' AND item IS NOT NULL THEN           
        USE_THE_ITEM_STRING;
    END IF;
    SET inipos = endpos + 1;
UNTIL inipos >= maxlen END REPEAT;
1
  • You must also check for the endpos for the last item; because for the last item endpos would be zero and this while loop would continue for ever. My recommendation would be set a boolean var initailly to false and settting it to true on endpos = 0 and in the exit until loop and check for this flag = true. Jul 14, 2021 at 12:54
19

You can use bewlo one also:

SELECT SUBSTRING_INDEX(Name, ' ', 1) AS fname,
SUBSTRING_INDEX(SUBSTRING_INDEX(Name,' ', 2), ' ',-1) AS mname,
SUBSTRING_INDEX(Name, ' ', -1) as lname FROM mytable;
1
  • This worked for me. I feel like its bad practice, but I ran the same query duplicating my case statement and saw that this approach is twice as fast. Thanks. May 11, 2018 at 10:32
19

Here is the split function I use:

--
-- split function
--    s   : string to split
--    del : delimiter
--    i   : index requested
--

DROP FUNCTION IF EXISTS SPLIT_STRING;

DELIMITER $

CREATE FUNCTION 
   SPLIT_STRING ( s VARCHAR(1024) , del CHAR(1) , i INT)
   RETURNS VARCHAR(1024)
   DETERMINISTIC -- always returns same results for same input parameters
    BEGIN

        DECLARE n INT ;

        -- get max number of items
        SET n = LENGTH(s) - LENGTH(REPLACE(s, del, '')) + 1;

        IF i > n THEN
            RETURN NULL ;
        ELSE
            RETURN SUBSTRING_INDEX(SUBSTRING_INDEX(s, del, i) , del , -1 ) ;        
        END IF;

    END
$

DELIMITER ;


SET @agg = "G1;G2;G3;G4;" ;

SELECT SPLIT_STRING(@agg,';',1) ;
SELECT SPLIT_STRING(@agg,';',2) ;
SELECT SPLIT_STRING(@agg,';',3) ;
SELECT SPLIT_STRING(@agg,';',4) ;
SELECT SPLIT_STRING(@agg,';',5) ;
SELECT SPLIT_STRING(@agg,';',6) ;
3
  • This worked fine for me, and did not cause an infinite loop like accepted answer (not clear why) - but it did not work with whitespace as the separator. For anyone stumbling upon this - look at stackoverflow.com/questions/2696884/… instead.
    – Max
    Dec 8, 2017 at 8:24
  • In case if your delimiter is greater than one, then you also need to divide the length difference by your delimiter length. Mar 3, 2021 at 9:08
  • change definition from SPLIT_STRING ( s VARCHAR(1024) , del CHAR(1) , i INT) to SPLIT_STRING ( s VARCHAR(1024) , del VARCHAR(1) , i INT) and it works with spaces Jan 27, 2022 at 15:09
3
select (case when locate('(', LocationName) = 0 
        then 
            horse_name
        else 
           left(LocationName, locate('(', LocationName) - 1)
       end) as Country            
from   tblcountry;
3
concat(upper(substring(substring_index(NAME, ' ', 1) FROM 1 FOR 1)), lower(substring(substring_index(NAME, ' ', 1) FROM 2 FOR length(substring_index(NAME, ' ', 1))))) AS fname,
CASE 
WHEN length(substring_index(substring_index(NAME, ' ', 2), ' ', -1)) > 2 THEN 
  concat(upper(substring(substring_index(substring_index(NAME, ' ', 2), ' ', -1) FROM 1 FOR 1)), lower(substring(substring_index(substring_index(f.nome, ' ', 2), ' ', -1) FROM 2 FOR length(substring_index(substring_index(f.nome, ' ', 2), ' ', -1)))))
  ELSE 
  CASE 
  WHEN length(substring_index(substring_index(f.nome, ' ', 3), ' ', -1)) > 2 THEN 
    concat(upper(substring(substring_index(substring_index(f.nome, ' ', 3), ' ', -1) FROM 1 FOR 1)), lower(substring(substring_index(substring_index(f.nome, ' ', 3), ' ', -1) FROM 2 FOR length(substring_index(substring_index(f.nome, ' ', 3), ' ', -1)))))
  END 
END 
AS mname
2

To get the rest of the string after the second instance of the space delimiter

SELECT
   SUBSTRING_INDEX(SUBSTRING_INDEX('Sachin ramesh tendulkar', ' ', 1), ' ', -1) AS first_name, 
       SUBSTRING_INDEX(SUBSTRING_INDEX('Sachin ramesh tendulkar', ' ', 2), ' ', -1) 
           AS middle_name,
   SUBSTRING('Sachin ramesh tendulkar',LENGTH(SUBSTRING_INDEX('Sachin ramesh tendulkar', ' ', 2))+1) AS last_name
2
SELECT
    p.fullname AS 'Fullname',
    SUBSTRING_INDEX(p.fullname, ' ', 1) AS 'Firstname',
    SUBSTRING(p.fullname, LOCATE(' ',p.fullname), 
        (LENGTH(p.fullname) - (LENGTH(SUBSTRING_INDEX(p.fullname, ' ', 1)) + LENGTH(SUBSTRING_INDEX(p.fullname, ' ', -1))))
    ) AS 'Middlename',
    SUBSTRING_INDEX(p.fullname, ' ', -1) AS 'Lastname',
    (LENGTH(p.fullname) - LENGTH(REPLACE(p.fullname, ' ', '')) + 1) AS 'Name Qt'
FROM people AS p
LIMIT 100; 

Explaining:

Find firstname and lastname are easy, you have just to use SUBSTR_INDEX function Magic happens in middlename, where was used SUBSTR with Locate to find the first space position and LENGTH of fullname - (LENGTH firstname + LENGTH lastname) to get all the middlename.

Note that LENGTH of firstname and lastname were calculated using SUBSTR_INDEX

1

You could use the common_schema and use the tokenize function. For more information about this, follow the links. Your code the would end up like:

call tokenize(name, ' ');

However, be aware that a space is not a reliable separator for first and last name. E.g. In Spain it is common to have two last names.

1
  • I was not aware of this library, fantastic tip, thx
    – shikida
    Dec 31, 2021 at 14:27
1
CREATE DEFINER=`root`@`localhost` FUNCTION `getNameInitials`(`fullname` VARCHAR(500), `separator` VARCHAR(1)) RETURNS varchar(70) CHARSET latin1
    DETERMINISTIC
BEGIN
DECLARE `result` VARCHAR(500) DEFAULT '';
DECLARE `position` TINYINT;



SET `fullname` = TRIM(`fullname`);

SET `position` = LOCATE(`separator`, `fullname`);

IF NOT `position`
THEN RETURN LEFT(`fullname`,1);
END IF;

SET `fullname` = CONCAT(`fullname`,`separator`);
SET `result` = LEFT(`fullname`, 1);

cycle: LOOP
    SET `fullname` = SUBSTR(`fullname`, `position` + 1);
    SET `position` = LOCATE(`separator`, `fullname`);

    IF NOT `position` OR NOT LENGTH(`fullname`)
    THEN LEAVE cycle;
    END IF;

    SET `result` = CONCAT(`result`,LEFT(`fullname`, 1));
   -- SET `result` = CONCAT_WS(`separator`, `result`, `buffer`);
END LOOP cycle;

RETURN upper(`result`);
END

1.Execute this function in mysql. 2.this will create a function. Now you can use this function anywhere you want.

 SELECT `getNameInitials`('Kaleem Ul Hassan', ' ') AS `NameInitials`;

3. The above getNameInitails first parameter is string you want to filter and second is the spectator character on which you want to separate you string. 4. In above example 'Kaleem Ul Hassan' is name and i want to get initials and my separator is space ' '.

1

We have stored the value of course Name and chapter name in single column ChapterName.

Value stored like : " JAVA : Polymorphism "

you need to retrieve CourseName : JAVA and ChapterName : Polymorphism

Below is the SQL select query to retrieve .

       SELECT   
          SUBSTRING_INDEX(SUBSTRING_INDEX(ChapterName, ' ', 1), ' ', -1) AS 
       CourseName,

       REPLACE(TRIM(SUBSTR(ChapterName, LOCATE(':', ChapterName)) ),':','') AS 
       ChapterName
       FROM Courses where `id`=1;

Please let me know if any question on this.

1

Combined a few answers here to create a SP that returns the parts of the string.

drop procedure if exists SplitStr;
DELIMITER ;;
CREATE PROCEDURE `SplitStr`(IN Str VARCHAR(2000), IN Delim VARCHAR(1))  
    BEGIN
        DECLARE inipos INT;
        DECLARE endpos INT;
        DECLARE maxlen INT;
        DECLARE fullstr VARCHAR(2000);
        DECLARE item VARCHAR(2000);
        create temporary table if not exists tb_split
        (
            item varchar(2000)
        );



        SET inipos = 1;
        SET fullstr = CONCAT(Str, delim);
        SET maxlen = LENGTH(fullstr);

        REPEAT
            SET endpos = LOCATE(delim, fullstr, inipos);
            SET item =  SUBSTR(fullstr, inipos, endpos - inipos);

            IF item <> '' AND item IS NOT NULL THEN           
                insert into tb_split values(item);
            END IF;
            SET inipos = endpos + 1;
        UNTIL inipos >= maxlen END REPEAT;

        SELECT * from tb_split;
        drop table tb_split;
    END;;
DELIMITER ;
0

To get the rest of the string after the second instance of the space delimiter:

SELECT SUBSTRING_INDEX(SUBSTRING_INDEX(MsgRest, ' ', 1), ' ', -1) AS EMailID
,  SUBSTRING_INDEX(SUBSTRING_INDEX(MsgRest, ' ', 2), ' ', -1) AS DOB
,  IF(
    LOCATE(' ', `MsgRest`) > 0,
    TRIM(SUBSTRING(SUBSTRING(`MsgRest`, LOCATE(' ', `MsgRest`) +1), 
         LOCATE(' ', SUBSTRING(`MsgRest`, LOCATE(' ', `MsgRest`) +1)) +1)),
    NULL
) AS Person
FROM inbox
0

DELIMITER $$

DROP FUNCTION IF EXISTS `split_name`$$

CREATE FUNCTION split_name (p_fullname TEXT, p_part INTEGER)
RETURNS TEXT
    READS SQL DATA
BEGIN
    DECLARE v_words INT UNSIGNED;
    DECLARE v_name TEXT;

    SET p_fullname=RTRIM(LTRIM(p_fullname));

    SET v_words=(SELECT SUM(LENGTH(p_fullname) - LENGTH(REPLACE(p_fullname, ' ', ''))+1));

    IF v_words=1 THEN 
        IF p_part=1 THEN
            SET v_name=p_fullname;
        ELSEIF p_part=2 THEN
            SET v_name=NULL;
        ELSEIF p_part=3 THEN
            SET v_name=NULL;
        ELSE
            SET v_name=NULL;
        END IF; 
    ELSEIF v_words=2 THEN 
        IF p_part=1 THEN
            SET v_name=SUBSTRING(p_fullname, 1, LOCATE(' ', p_fullname) - 1);
        ELSEIF p_part=2 THEN
            SET v_name=SUBSTRING(p_fullname, LOCATE(' ', p_fullname) + 1);
        ELSEIF p_part=3 THEN
            SET v_name=NULL;
        ELSE
            SET v_name=NULL;
        END IF; 
    ELSEIF v_words=3 THEN 
        IF p_part=1 THEN
            SET v_name=SUBSTRING(p_fullname, 1, LOCATE(' ', p_fullname) - 1);
        ELSEIF p_part=2 THEN
            SET p_fullname=SUBSTRING(p_fullname, LOCATE(' ', p_fullname) + 1);
            SET v_name=SUBSTRING(p_fullname, 1, LOCATE(' ', p_fullname) - 1);
        ELSEIF p_part=3 THEN
            SET p_fullname=REVERSE (SUBSTRING(p_fullname, LOCATE(' ', p_fullname) + 1));
            SET p_fullname=SUBSTRING(p_fullname, 1, LOCATE(' ', p_fullname) - 1);
            SET v_name=REVERSE(p_fullname);
        ELSE
            SET v_name=NULL;
        END IF; 
    ELSEIF v_words>3 THEN 
        IF p_part=1 THEN
            SET v_name=SUBSTRING(p_fullname, 1, LOCATE(' ', p_fullname) - 1);
        ELSEIF p_part=2 THEN
            SET p_fullname=REVERSE(SUBSTRING(p_fullname, LOCATE(' ', p_fullname) + 1));
            SET p_fullname=SUBSTRING(p_fullname, LOCATE(' ', p_fullname,SUBSTRING_INDEX(p_fullname,' ',1)+1) + 1);
            SET v_name=REVERSE(p_fullname);
        ELSEIF p_part=3 THEN
            SET p_fullname=REVERSE (SUBSTRING(p_fullname, LOCATE(' ', p_fullname) + 1));
            SET p_fullname=SUBSTRING(p_fullname, 1, LOCATE(' ', p_fullname) - 1);
            SET v_name=REVERSE(p_fullname);
        ELSE
            SET v_name=NULL;
        END IF;
    ELSE
        SET v_name=NULL;
    END IF;
 RETURN v_name; 
END;

SELECT split_name('Md. Obaidul Haque Sarker',1) AS first_name,
split_name('Md. Obaidul Haque Sarker',2) AS middle_name,
split_name('Md. Obaidul Haque Sarker',3) AS last_name
0
0

First Create Procedure as Below:

CREATE DEFINER=`root`@`%` PROCEDURE `sp_split`(str nvarchar(6500), dilimiter varchar(15), tmp_name varchar(50))
BEGIN

    declare end_index   int;
    declare part        nvarchar(6500);
    declare remain_len  int;

    set end_index      = INSTR(str, dilimiter);

    while(end_index   != 0) do

        /* Split a part */
        set part       = SUBSTRING(str, 1, end_index - 1);

        /* insert record to temp table */
        call `sp_split_insert`(tmp_name, part);

        set remain_len = length(str) - end_index;
        set str = substring(str, end_index + 1, remain_len);

        set end_index  = INSTR(str, dilimiter);

    end while;

    if(length(str) > 0) then

        /* insert record to temp table */
        call `sp_split_insert`(tmp_name, str);

    end if;

END

After that create procedure as below:

CREATE DEFINER=`root`@`%` PROCEDURE `sp_split_insert`(tb_name varchar(255), tb_value nvarchar(6500))
BEGIN
    SET @sql = CONCAT('Insert Into ', tb_name,'(item) Values(?)'); 
    PREPARE s1 from @sql;
    SET @paramA = tb_value;
    EXECUTE s1 USING @paramA;
END

How call test

CREATE DEFINER=`root`@`%` PROCEDURE `test_split`(test_text nvarchar(255))
BEGIN

    create temporary table if not exists tb_search
        (
            item nvarchar(6500)
        );

    call sp_split(test_split, ',', 'tb_search');

    select * from tb_search where length(trim(item)) > 0;

    drop table tb_search;

END


call `test_split`('Apple,Banana,Mengo');
0

Based on previous answers and do some modifications...

note:

p_delimiter has to be VARCHAR(1) couse CHAR(1) if is ' ' (space) gives '' (removes space and returns empty string)

Instead use of LENGTH I prefer CHAR_LENGTH which is safe for multibyte characters like UTF

DROP FUNCTION IF EXISTS FN_SPLIT_STR;

DELIMITER ;;

CREATE FUNCTION FN_SPLIT_STR(
    p_input VARCHAR(2000), p_delimiter VARCHAR(1), p_position INT
)
    RETURNS VARCHAR(2000)
    DETERMINISTIC
BEGIN
    DECLARE chunks INT;
    SET chunks := CHAR_LENGTH(p_input) - CHAR_LENGTH(REPLACE(p_input, p_delimiter, '')) + 1;

    IF p_position > chunks THEN
        RETURN NULL;
    END IF;

    RETURN SUBSTRING_INDEX(SUBSTRING_INDEX(p_input, p_delimiter, p_position), p_delimiter, -1);
END;;

DELIMITER ;
0
SELECT "SUBSTRING_INDEX(name, ' ', 1) as first_name", "TRIM(REPLACE(name, SUBSTRING_INDEX(name, ' ', 1), '')) as last_name" FROM tbl;
1
  • 1
    Please read How to Answer and edit your answer to contain an explanation as to why this code would actually solve the problem at hand. Always remember that you're not only solving the problem, but are also educating the OP and any future readers of this post
    – chrslg
    Jan 11 at 0:49

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.