Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I'm trying to display the category count, even if 0, for companyId=2 in a single query:

categories
+--------+-----------+
| catId  |  catName  |
+--------+-----------+
|   1    |   cat1    |
|   2    |   cat2    |
|   3    |   cat3    |

products
+--------+-----------+---------------+---------+
| prodId | prodName  |   companyId   |  catId  |
+--------+-----------+---------------+---------+
|   1    |   prod1   |       2       |    1    |
|   2    |   prod2   |       2       |    3    |
|   3    |   prod3   |       1       |    3    |

SELECT c.catName, COUNT(p.catId) AS prod_catCount
FROM categories c
LEFT JOIN products p ON c.catId=p.catId
WHERE p.companyId=2
GROUP BY c.catId

This results in:

+---------+---------------+
| catName | prod_catCount |
+---------+---------------+
|  cat1   |       1       |
|  cat3   |       1       |

How can I make it result in:

+---------+---------------+
| catName | prod_catCount |
+---------+---------------+
|  cat1   |       1       |
|  cat2   |       0       | <-- Shows 0 count as well
|  cat3   |       1       |

I thought the left join would take care of that, but it didn't. Any ideas how to get this to work?

share|improve this question
up vote 4 down vote accepted

Move p.companyId=2 from the WHERE clause into the ON clause

SELECT c.catName, COUNT(p.catId) AS prod_catCount
FROM categories c
LEFT JOIN products p ON c.catId=p.catId AND p.companyId=2
GROUP BY c.catId
share|improve this answer
    
So simple, just switch WHERE with AND:) Thanks Walker – Maverick Feb 9 '12 at 21:54
2  
That's a common mistake when using outer joins. You need to put any criteria on the optional tables into the ON clause, or else it negates the outer join. – Ike Walker Feb 9 '12 at 22:00

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.