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 have one BLOB column that I want to select at the same time as some other column and a COUNT of the number of associated rows in another table. Here's what I have:

SELECT locations.id, locations.name, photo,
    COUNT(items.id) OVER (PARTITION BY locations.id) AS num_items
FROM locations
LEFT OUTER JOIN items ON locations.id = items.location_id
ORDER BY locations.name ASC

photo is the BLOB column. This query gets all the data I want, but I see x rows for each location, where x is the number of item rows associated with that location.

So I'm getting:

id          name          photo          num_items
1           location1                    3
1           location1                    3
1           location1                    3
2           location2                    1
3           location3                    2
3           location3                    2
4           location4                    0

What I want:

id          name          photo          num_items
1           location1                    3
2           location2                    1
3           location3                    2
4           location4                    0

The problem is that you can't do DISTINCT, GROUP BY, or MIN on a BLOB column.

share|improve this question

I always seem to figure out the answer right after posting on here. :P

SELECT location_data.*, photo
FROM (
    SELECT locations.id, locations.name, COUNT(DISTINCT items.id) AS num_items
    FROM locations
    LEFT OUTER JOIN items ON locations.id = items.location_id
    GROUP BY locations.id, locations.name
) location_data
INNER JOIN (
    SELECT locations.id, photo
    FROM locations
) photo_data ON location_data.id = photo_data.id
ORDER BY name ASC
share|improve this answer

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.