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 a grails domain like this

Point {
  User user
  Date assignedDate = new Date()
  consumed = false
}

I want to do a query that return rows with user, count(consumed=true), count(consumed=false)

for example with data

| USER | DATE | CONSUMED |
___________________________
|   1  | ...  | true     |
|   1  | ...  | true     |
|   1  | ...  | false    |
|   2  | ...  | true     |
|   2  | ...  | false    |

the query must return:

| USER | CONSUMED | NOT CONSUMED |
_________________________________
|   1  | 2        | 1            |
|   2  | 1        | 1            |

I have to do this in a single query because I need pagination. Best if done with gorm criteria or hibernate HQL.

I have tried playing with projections but without success.

Any idea? Thank you

Workaround

As a workaround I have used hibernate formula mapping with formula suggested by Michael J. Lee.

I have added two mapped fields to


    Point {
          User user
          Date assignedDate = new Date()
          consumed = false
          free formula: "CASE WHEN consumed = 0 THEN 1 ELSE 0 END"
          notFree formula: "CASE WHEN consumed = 1 THEN 1 ELSE 0 END"
        }

And user a criteria query like:


    Point.withCriteria{ 
      projections {
          groupProperty('user')
          sum('free')
          sum('notFree')
      }
    }

share|improve this question
add comment

2 Answers 2

The way you have your data structured and the query that you want to return doesn't lend nicely to things like criteria queries and dynamic finders. I would suggest these two options depending on your level of experience and how much data you need to summarize.

1.) Create a stored procedure or use a named query (better with lots of data)...

SELECT
   user_id as 'USER',
   SUM(CASE WHEN consumed = 1 THEN 1 ELSE 0 END) as 'CONSUMED'
   SUM(CASE WHEN consumed = 0 THEN 0 ELSE 1 END) as 'NOT CONSUMED'
FROM 
   point
GROUP BY
    user_id

2.) Use groovy's collection closures to do the heavy lifting in grails (use with caution if you have lots of data)

def someControllerMethod() {
    def points = Point.list().groupBy{ it.user } //<-- or use a findAllBy or criteria
    def data = [];
    points.each{ point,values ->
        data << ['USER':point.user, 'CONSUMED':values.count{ it.consumed }, 'UNCONSUMED':values.count{ !it.consumed } ]
    }

   println("this is what it looks like ${data}");
   return data //<-- is a list of maps that should be easy to render in your gsp
}

Please note that I just did the coding off the top of my head and didn't verify the syntax

Hope this helps.

share|improve this answer
    
Thank you for the answer. Hope there is better way to do it in grails without using a stored procedure... –  Fabiano Taioli Apr 19 '12 at 13:10
    
If you want to summarize data or do reporting with any ORM it's usually* a better idea to let the database do the work. I did provided two solutions because if your only dealing with a small amount of data there is no reason to use a stored procedure. –  Michael J. Lee Apr 19 '12 at 13:16
add comment

Add a named query on that domain and use GROUP BY to group your users. You can use COUNT in your select clause

share|improve this answer
1  
Please provide some code. How do count the different values of one property? –  aiolos Apr 19 '12 at 12:25
1  
Can you explain better? –  Fabiano Taioli Apr 19 '12 at 12:32
    
with a as (select user_name, COUNT(*) as consumed from usertlb where consumed = 'true' group by user_name), b as (select user_name, COUNT(*) as not_consumed from usertlb where consumed = 'false' group by user_name) select a.user_name, a.consumed, b.not_consumed from a, b where a.user_name = b.user_name; This I tried in SQL, but should work with HQL as well –  chethan Apr 19 '12 at 13:28
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.