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I get a error on line 12 (at the endif statement). I belief I´m doing something wrong within the IF or ELSE, can anyone help me?

DELIMITER $$

CREATE FUNCTION TEST (`param` INT) 
RETURNS INT 
DETERMINISTIC
BEGIN
    DECLARE `var` INT;

    SET `var` = 1;

    IF `param` > 0 THEN
        SET `var` = `var` + `param`;
    END IF;

    RETURN `var`;
END$$

EDIT: (same function with case instead of if, same problem)

DELIMITER $$

CREATE FUNCTION TEST (`param` INT) 
RETURNS INT 
DETERMINISTIC
BEGIN
    DECLARE `var` INT;

    SET `var` = 1;

    SET `var` = 
        CASE
            WHEN `param` > 0 THEN `var` + `param` ELSE `var`
        END ;

    RETURN `var`;
END$$
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Can you use set statements inside if-else conditional? –  Cupidvogel Sep 26 '12 at 9:29
    
@Cupidvogel: yes, you can. dev.mysql.com/doc/refman/5.5/en/if.html –  gbn Sep 26 '12 at 9:30
2  
what is your point here: SET var = var; ? –  John Woo Sep 26 '12 at 9:35

2 Answers 2

Try this instead:

BEGIN
    DECLARE `var` INT;

    SET var = 
      CASE
        WHEN param > 0 THEN var + 1 ELSE var 
      END ;

    RETURN var;
END$$
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1  
+1 for using case. :D by the way, why do you need to set the value of var from var? –  John Woo Sep 26 '12 at 9:37
1  
@JohnWoo I am not familier with mysql syntax but these ```` are hurting my eyes this why I removed it. –  Mahmoud Gamal Sep 26 '12 at 9:43
    
No that's not what i mean. Can it possibly SET var = CASE WHEN param > 0 THEN var + 1 END ; ? –  John Woo Sep 26 '12 at 9:54
    
@JohnWoo I think no because ELSE will return NULL as far as I now. Thats why I used ELSE var if you omit it it will be NULL in case param was <= 0 –  Mahmoud Gamal Sep 26 '12 at 9:57
    
Don't mind the param > 0, it's just a made up statement. But the issue lays in the END. It still gives an error in both cases. –  pascalvgemert Sep 26 '12 at 10:08

Found out it was a bug in PHPMyAdmin, if I added the function with 'add routine' it worked!

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