Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I've tried the solution here, but it doesn't work.

My table is like this:

   `Index`  uid   dept
...........................
      1    001   dept1
      2    001   dept2
      3    001   dept3
      4    002   dept2
      5    002   dept3
      6    002   dept4
      7    003   dept1
      8    003   dept5
      9    004   dept1
      10   004   dept6

I want to retrieve all the rows with a particular dept. That is, If I want to retrieve dept1, I want to retrieve all rows except uid=002, since there's no dept1 for uid=002.

The query string is slow even when using index:

SELECT id FROM table WHERE uid IN
(SELECT uid WHERE dept='dept1')

My previous version without using WHERE IN is as following:

Retrieves all the uid with dept=dept1 first.
Then use a for-loop for all uid retrieved in the first query.

This method is very fast for a small amount(100) of rows retrieved in the first query. However, it seems that it's not a good solution because it creates a lot of queries(each of them is extremely fast).

share|improve this question
    
Thanks for editing. –  benck Apr 5 '12 at 16:46
add comment

1 Answer

up vote 8 down vote accepted

Try this one:

select a.id from Table1 a
inner join Table1 b on a.uid = b.uid and b.dept = 'dept1';

Demo: http://sqlfiddle.com/#!2/05774/4

share|improve this answer
    
1  
Good news: MariaDB 5.3 is already out as a stable release. And MySQL 5.6 (not stable yet, but soon I think) will have these or similar improvements. –  ypercube Apr 5 '12 at 6:16
    
Thanks for the links :) –  Sergio Tulentsev Apr 5 '12 at 6:37
    
This answer works perfectly! Thanks. –  benck Apr 5 '12 at 16:49
1  
This query is equivalent to the subquery version. I'm glad that mysql improve the performance in newer version. However, the stable version for debian squeeze is still 5.1. –  benck Apr 6 '12 at 5:35
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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