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I am developing some hardcoded reports from embedded Java code to Crystal Reports

there is a function that calculates "waitlists"

My Datamodel is as follows (I've left out all of the columns and tables that are not relevant)

Each table is denoted as with * and the columns are denoted with a + their relationships are
Person table 1 to * Sessions table 1 to * Outcomes table

*Person table   
    +id - primary key

*Sessions table   
    +parentid  foreign key to
    +id   - primary key

*Outcomes table
    +parentid  foreign key to
    +id -primary key

The logic is as follows ( i need this in sql(MSSQL preferred)):

Count the number of occurrences of each outcome that complies with the following

get a list of unique outcomes for each person and for each of those outcomes

if there is no session with the same name as that-outcome & is valid & also has the same parent id as that-outcome's parent session

I hope that makes sense : any help is appreciated

share|improve this question
Edit your question and note which are the PRIMARY KEYs of the tables. And which fields are used for the relationships between the tables. – ypercube Aug 11 '11 at 6:53
Is it ~ Sessions.parentid ? And ~ Outcomes.parentid ? – ypercube Aug 11 '11 at 6:54
done, and ypercube you are correct – Ray E Aug 11 '11 at 7:17
So, the last paragraph means: "if there is no session with the same name as that-outcome & is valid & also is related to the same person as that-outcome's parent session", right? – ypercube Aug 11 '11 at 7:21

1 Answer 1

up vote 0 down vote accepted

Something like that:

SELECT           AS personID
  ,           AS sessionID
  , s.session-name AS sessionName
  ,           AS outcomeID
  , o.session-name AS outcomeSessionName
FROM Person AS p
  JOIN Sessions AS s
    ON s.parentid =
  JOIN Outcomes AS o
    ON o.parentid =
      ( SELECT *
        FROM Sessions AS s2
        WHERE s2.session-name = o.session-name
          AND s2.isValid
          AND s2.parentid = s.parentid

If you also want to count these outcomes, it would be more complex query. Perhaps it's better to have another query, that counts what you want (all outcomes? per person?)

share|improve this answer
thanks for trying mate – Ray E Aug 11 '11 at 9:13

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