0

I know how to update one table's field from another table's count using t1.id=t2.id etc.. but i have somewhat typical issue. I have to use LIKE STATEMENT in WHERE clause.

This is something similar i wanted to do.

UPDATE `CATEGORIES`
SET    `num_listings` = (SELECT COUNT(*)
                         FROM   `LISTINGS`
                         WHERE  `LISTINGS`.`CATEGORY` LIKE
                                ws_concat('', "%-", `CATEGORIES`.`ID`, "-%"));  

(Example: I have CATEGORY stored as -25- in the LISTINGS table as a field name CATEGORY)

I understand that i cannot use ws_contact here but is there another way to achieve it?

Thanks in advance.

  • This kind of query would probably be easier if you normalised your database structure and added a new association table of listings_categories – Martin Smith Feb 14 '11 at 13:02
  • Well.. Martin this is not possible right now as i am working on bug fixes/updates for an existing website having thousands of entries. – Arvind K. Feb 14 '11 at 13:08
0

Unless there is a good reason for the category ID to be represented only by a part of a string in the listings table, the best way to handle such a structure of data is to add a category_id column to the LISTINGS table, and make sure that when adding or editing a listing this column is populated properly.

This would allow to simply JOIN the two tables ON categories.id = listings.category_id and makes much more sense. This would also give better performance by far.

If you do want to keep the DB structure as is, you can use a temporary table, with LIKE and CONCAT:

DROP TABLE IF EXISTS temp;

CREATE TABLE temp AS 
       SELECT categories.id, COUNT(*) AS c
       FROM categories
       JOIN listings ON listings.category LIKE CONCAT('%',categories.id,'%')
       GROUP BY categories.id;

UPDATE categories, temp
SET categories.num_listings = temp.c
WHERE categories.id = temp.id;
| improve this answer | |
  • Thanks a millions Galz! This is exactly what i was looking for. You rocks! – Arvind K. Feb 16 '11 at 4:53

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.