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Can anyone tell me how to count the letters in a string in MySQL?

For example:

SELECT numberOfLetters('abc123 def')

would return 6

By letter, I mean A-Z and a-z.

numberOfLetters is not valid SQL of course, but it illustrates what I am trying to do.

The version of MySQL that I'm using is 5.5.27

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Just out of morbid curiosity, why would you want to do such a thing? –  StudyOfCrying Nov 20 '12 at 6:58
    
Do you have generic strings or do they have some specific pattern? –  nico Nov 20 '12 at 7:11
1  
Also, any specific reason you need to do that in MySQL (rather than, say, PHP) –  nico Nov 20 '12 at 7:14
1  
In parallel with nico, I agree that unless you have a compelling reason to do this in MySQL you might want to consider doing this in PHP, Perl, Python, or whatever is utilizing your output. If that's not possible we could take care of this in a MySQL function, I imagine, but I'm not sure that's the best use of the DB (given MySQL's aversion for regular expressions). –  StudyOfCrying Nov 20 '12 at 7:17
    
The strings have no pattern, they are sentences which may contain spaces, punctuation and numbers. –  Graham Nov 20 '12 at 7:20

5 Answers 5

up vote 2 down vote accepted

You will need a function:

DROP FUNCTION IF EXISTS numberOfLetters;

DELIMITER //

CREATE FUNCTION numberOfLetters(s VARCHAR(255)) RETURNS INT DETERMINISTIC NO SQL
BEGIN
    DECLARE c INT;
    DECLARE r INT DEFAULT 0;
    DECLARE n INT DEFAULT LENGTH(s);
    DECLARE i INT DEFAULT 1;

    WHILE i <= n DO
        SET c = ASCII(SUBSTRING(s, i, 1));
        IF (c >= 65 AND c <= 90) OR (c >= 97 AND c <= 122) THEN
            SET r = r + 1;
        END IF;
        SET i = i + 1;
    END WHILE;

    RETURN r;
END//

DELIMITER ;

And then call:

SELECT numberOfLetters('abc123 def');
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You can create function and calculate what you want.

Maybe this will help you.

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I get the error: "You tried to execute an empty string". If I remove the delimiter lines, I get error: "You have an error in your SQL syntax". –  Graham Nov 20 '12 at 7:36
    
@Graham : I have requested Devart to look into it. –  Fahim Parkar Nov 20 '12 at 7:39
    
@Graham I created the function without any problems. It returned 6 for string ABC123 DEF. You just need to edit it a little to count lower case letters. –  Devart Nov 20 '12 at 7:56
    
Then it seems I have the wrong set up for creating functions - is there something I should turn on somewhere? –  Graham Nov 20 '12 at 9:12
1  
Have not used this client. Try mysql command-line client or free GUI tool - dbForge Studio for MySQL (express edition). –  Devart Nov 20 '12 at 12:37

Fairly off the top of my head, but I believe this will do what you need.

NOTE: Assuming ASCII and that you're only counting a-z, A-Z.

DROP FUNCTION IF EXISTS numberOfLetters;
DELIMITER //
CREATE FUNCTION numberOfLetters (inStr CHAR(255))
RETURNS INT
BEGIN
    DECLARE strLen INT;
    DECLARE letterCt INT;
    DECLARE pos INT;
    DECLARE curLetter CHAR(1);

    SET pos      := 0;
    SET letterCt := 0;

    SELECT LENGTH(inStr) INTO strLen;

    ctLoop: LOOP
        IF (strLen = 0) THEN
            LEAVE ctLoop;
        END IF;

        SELECT SUBSTR(inStr, strLen, 1) INTO curLetter;
        IF (ASCII(curLetter) >= 65 AND ASCII(curLetter) <= 90) OR (ASCII(curLetter) >= 97 AND ASCII(curLetter) <= 122) THEN
            SET letterCt := letterCt + 1;
        END IF;

        SET strLen := strLen - 1;
    END LOOP ctLoop;

    RETURN letterCt;
END //
DELIMITER ;

select numberOfLetters('abc123 def');

Output:

+-------------------------------+
| numberOfLetters('abc123 def') |
+-------------------------------+
|                             6 |
+-------------------------------+
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I cannot say that this is good for MySQL, but just try it -

SELECT CHAR_LENGTH(
  REPLACE(
    REPLACE(
      REPLACE(
        REPLACE('abc123 def', ' ', ''), '1', ''), '2', ''), '3', '')
);

...you should add REPLACE function for each char you need to remove from counting.

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-1: not adaptable to the general situation –  nico Nov 20 '12 at 6:59
    
@nico I said about it in my answer. Who said that it is for general use? –  Devart Nov 20 '12 at 7:09
    
If he knew the string in advance then he would just count the letters and hard-code the length. –  nico Nov 20 '12 at 7:12
1  
Actually works for my example, but no good if I have other characters –  Graham Nov 20 '12 at 7:12
    
@nico I think his point is that if you wrap 10 replace statements (one for each digit) it would clear the numbers out of the string and only count the non-numeric characters... Unfortunately that's somewhat the opposite of what the OP wants which is to count ONLY [a-zA-Z]. Given that the OP probably isn't posing the most clear question in the world, however, as of the writing of this comment Devart's still might be the best suggestion here. ;) –  StudyOfCrying Nov 20 '12 at 7:14

you can simply use length() function like that:


SELECT length('abc123 def');

it returns : 10

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