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I'm writing a procedure in MySQL that reads entries from a view, and inserts rows into another table depending on various conditions. In this context, I have up to 4 possible size_id variables, named my_size_1, my_size_2, my_size_3 and my_size_4. If they do not have a value, they are NULL. Writing the following expression in my stored proc results in a SQL error:

-- Insert recommendation options --
INSERT INTO `size_recommendation_options`
VALUES (my_size_recommendation_id, my_size_1);

IF my_size_2 IS NOT NULL THEN
    INSERT INTO `size_recommendation_options`
    VALUES (my_size_recommendation_id, my_size_2);
END;

IF my_size_3 IS NOT NULL THEN
    INSERT INTO `size_recommendation_options`
    VALUES (my_size_recommendation_id, my_size_3);
END;

IF my_size_4 IS NOT NULL THEN
    INSERT INTO `size_recommendation_options`
    VALUES (my_size_recommendation_id, my_size_4);
END;

...however, removing the IF statements fixes the error. That is, the following will run just fine:

-- Insert recommendation options --
INSERT INTO `size_recommendation_options`
VALUES (my_size_recommendation_id, my_size_1);

INSERT INTO `size_recommendation_options`
VALUES (my_size_recommendation_id, my_size_2);

INSERT INTO `size_recommendation_options`
VALUES (my_size_recommendation_id, my_size_3);

INSERT INTO `size_recommendation_options`
VALUES (my_size_recommendation_id, my_size_4);

Why is that? This isn't the end of the world - I can just add a DELETE FROM size_recommendation_options WHERE size_id IS NULL afterwards, but all of the unnecessary inserts slow down the stored proc considerably. Why is the first block invalid SQL?

Thanks.

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2  
What is the SQL error, specifically? –  Ricardo Altamirano Jun 27 '12 at 19:20
    
You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near '; IF my_size_3 IS NOT NULL THEN INSERT INTO size_recommendati' at line 65` –  rybosome Jun 27 '12 at 19:40
    
Just as an aside, unless size_recommendation_options is a reserved word in your copy of mysql, delete all the backticks from your SQL - they are just code noise. –  Bohemian Jun 27 '12 at 19:48
2  
Based on dev.mysql.com/doc/refman/5.6/en/if-statement.html , you must close IF blocks with END IF. –  biziclop Jun 27 '12 at 19:59
    
@biziclop Care to make that an answer? This was correct. –  rybosome Jul 13 '12 at 17:15

2 Answers 2

up vote 1 down vote accepted

IF blocks must be closed with END IF:

http://dev.mysql.com/doc/refman/5.6/en/if-statement.html

13.6.5.2. IF Syntax

IF search_condition THEN statement_list
    [ELSEIF search_condition THEN statement_list] ...
    [ELSE statement_list]
END IF

In your case:

IF my_size_2 IS NOT NULL THEN
    INSERT INTO `size_recommendation_options`
    VALUES (my_size_recommendation_id, my_size_2);
END IF;
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Thanks...I wanted to make sure you got credit. =) –  rybosome Jul 13 '12 at 17:37

Did you try a Store procedure?, something like this:

CREATE PROCEDURE insert_val
     (
        IN  a_id                    INT(11)       , 
        IN  a_first                     VARCHAR(15)       
     )
BEGIN 
if 
    INSERT INTO t1(actor_id, first_name )
    VALUES (a_id, a_first) ; 
END 

mysql> call insert_val(10,'a');
Query OK, 1 row affected, 0 warning (0.00 sec)

mysql> call insert_val(null,'a');
ERROR 1048 (23000): Column 'actor_id' cannot be null

The input value cannot be null, so you don't need to worry about the null insert.

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