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I've got millions of entries in my DB.

and because im using 3!! inner joins and put large range of dates this query takes really long like up to few minutes.

Is there a way to Improve this query and still get the same Data?

This is my query:

    service_send_type.price, SUM(IF(msg_t.status LIKE 'Success%', 1, 0)) AS s, 
    COUNT(1) AS t 
FROM (`subscriptions`) 
        `msg_t` ON `subscriptions`.`phone` = `msg_t`.`phone` AND subscriptions.id = msg_t.sub_id 
        `msg` ON `msg`.`id` = `msg_t`.`msg_id` 
    INNER JOIN `service_send_type` ON `msg`.`service_id` = `service_send_type`.`service_id` 
        AND msg.sushi_service_id = service_send_type.sushi_service_id 
        AND msg.send_type = service_send_type.name 
        AND msg.service_id = subscriptions.service_id 

        `subscriptions`.`service_id` IN (1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16) 
        `subscriptions`.`added` >= '2013-01-28 00:00:00' 
        `subscriptions`.`added` <= '2013-01-28 23:59:59' 
        `msg_t`.`send_time` >= '2013-01-28 00:00:00' 
        `msg_t`.`send_time` <= '2013-01-28 23:59:59' 

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Unless you provide more information, then no. Feel free to take a look at what info people provide when asking for MySQL query performance improvements. –  N.B. Jan 30 '13 at 8:52
Consider indexes on your date columns. –  Mooz Aug 14 '13 at 2:45

2 Answers 2

up vote 2 down vote accepted

Do you always need to have the IN query? In your query, the IN clause can be replaced by subscriptions.service_id < 17 and that will make a huge difference. IN queries are suitable when you have a list of discrete values.

Also look at the indexing on the tables. You should have index set on columns in the where condition and group by clauses.

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@DanRevah: What change gave you the most significant improvement? –  Kangkan Feb 1 '13 at 4:33

You can try to optimize your query by analyzing the Explain plan, including index optimizing which can be very helpful if you still dont have idnexes on your tables. regarding the statement optimizing take a look here.

Hope this helps you further

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There is no reason to use BETWEEN, performance or other. –  ypercube Jan 30 '13 at 9:00
@ypercube your right its actually only a syntax issue, just learned something, thank you. –  CloudyMarble Jan 30 '13 at 9:07
I prefer c >= '2013-01-28' AND c < '2013-01-29 because it's easier to code, works with any datetime type (date, datetime, timestamp) and does not break if the column's datatype has higher than second granularity. –  ypercube Jan 30 '13 at 9:16

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