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 have the following db table, and I would like to be able to count the instance of sales of certain products per salesperson.

|------------|------------|------------|
|id          |user_id     |product_id  |
|------------|------------|------------|
|1           |1           |2           |
|2           |1           |4           |
|3           |1           |2           |
|4           |2           |1           |
|------------|------------|------------|

I would like to able to create a result set like the following;

|------------|-------------|------------|------------|------------|
|user_id     |prod_1_count |prod_2_count|prod_3_count|prod_4_count|
|------------|-------------|------------|------------|------------|
|1           |0            |2           |0           |1           |
|2           |1            |0           |0           |0           |
|------------|-------------|------------|------------|------------|

I am creating graphs with this data, and once again (as earlier today) I am unable to count the column totals. I have tried;

SELECT user_id, 
(SELECT count(product_id) FROM sales WHERE product_id = 1) AS prod_1_count,
(SELECT count(product_id) FROM sales WHERE product_id = 2) AS prod_2_count,
(SELECT count(product_id) FROM sales WHERE product_id = 3) AS prod_3_count,
(SELECT count(product_id) FROM sales WHERE product_id = 4) AS prod_4_count 
FROM sales GROUP BY user_id; 

I can see why this doesn't work, because for each bracketed SELECT the user_id doesn't match the external user_id in the main SELECT statement.

Can anyone help out me here?

thanks you

share|improve this question

3 Answers 3

up vote 14 down vote accepted

You can do this using SUM and CASE:

select user_id,
  sum(case when product_id = 1 then 1 else 0 end) as prod_1_count,
  sum(case when product_id = 2 then 1 else 0 end) as prod_2_count,
  sum(case when product_id = 3 then 1 else 0 end) as prod_3_count,
  sum(case when product_id = 4 then 1 else 0 end) as prod_4_count
from your_table
group by user_id
share|improve this answer
    
Thanks Ike, this was the quickest of all the solutions. Thank you :) –  Mandrax Apr 4 '13 at 18:26
    
Can't you just do sum(product_id=1)? product_id=1 is a boolean expression; it will naturally return 1 or 0 without the switch case. –  Mark Jan 6 at 19:07
    
@Mark yes that would work as well, and may be nominally faster, but I find the solution as written to be more readable. –  Ike Walker Jan 6 at 22:41
    
This is good when your values are strings and enums too –  Kiwizoom Apr 17 at 16:20

You are trying to pivot the data. MySQL does not have a pivot function so you will have to use an aggregate function with a CASE expression:

select user_id,
  count(case when product_id = 1 then product_id end) as prod_1_count,
  count(case when product_id = 2 then product_id end) as prod_2_count,
  count(case when product_id = 3 then product_id end) as prod_3_count,
  count(case when product_id = 4 then product_id end) as prod_4_count
from sales
group by user_id;

See SQL Fiddle with Demo

share|improve this answer
    
I wish I could give this 1,000 up arrows. Pivoting just clicked. –  ghukill Mar 4 at 17:49

See if this works:

SELECT a.user_id, 
(SELECT count(b.product_id) FROM sales b WHERE b.product_id = 1 AND a.user_id = b.user_id) AS prod_1_count,
(SELECT count(b.product_id) FROM sales b WHERE b.product_id = 2 AND a.user_id = b.user_id) AS prod_2_count,
(SELECT count(b.product_id) FROM sales b WHERE b.product_id = 3 AND a.user_id = b.user_id) AS prod_3_count,
(SELECT count(b.product_id) FROM sales b WHERE b.product_id = 4 AND a.user_id = b.user_id) AS prod_4_count 
FROM sales a GROUP BY a.user_id; 

Cheers. n.b. there may be slightly nicer ways to achieve the equivalent result.

share|improve this answer
    
thanks, this solution did work, but it took a few seconds. Ike's solution was very fast by comparison, but thank you for your answer anyway @d'alar'cop –  Mandrax Apr 4 '13 at 18:28

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.