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I have one table of peoples names and I have another table of pledges these people have made.

They might pledge money against item 1,2,3 or 4.

Each time a pledge is made an entry is made in the pledge table with the id of the person and the pledge number they made.

I would like a query that gets a count of distinct people that made pledges for both 1 and 2 for example.

How can this be achieved?

Many thanks

Dave

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Have a look at the edited answer. Adriaan –  Adriaan Stander Jan 13 '10 at 17:03

1 Answer 1

You could try this using the EXISTS

SELECT     COUNT(DISTINCT PersonID) DistinctCountPersons
FROM       pledges p
WHERE     EXISTS(SELECT * FROM pledges WHERE PersonID = p.PersonID AND ItemID = 1)
AND     EXISTS(SELECT * FROM pledges WHERE PersonID = p.PersonID AND ItemID = 2)

EDIT

Regarding the second part of the query, you can try

SELECT  p.PersonID,
        pp.PersonName,
        SUM(p.Pledge) TotalPledged
FROM    pledges p INNER JOIN
        people pp ON p.PersonID = pp.PersonID
WHERE   EXISTS(SELECT * FROM pledges WHERE PersonID = p.PersonID AND ItemID = 1)
AND     EXISTS(SELECT * FROM pledges WHERE PersonID = p.PersonID AND ItemID = 2)
GROUP BY p.PersonID,pp.PersonName
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That's fantastic, and quick!! Seems to do exactly what I need, although I'm not entirely sure I understand how it is working. My sql knowledge is a little basic! Thanks anyway –  Dave Jan 13 '10 at 15:18
    
Can I pick your brain a little further please. We have this part working now which is a big help, but now the query needs to go a bit further. There is another table that contains the person's name linked by the personID column. We would now like to get a list of names of people that match the two criteria and also how much they had pledged as a total (this is contained in the pledges table and they may make multiple pledges for the same item). Many thanks Dave –  Dave Jan 13 '10 at 16:41
    
I have updated the answer, have a look, and let me know if this helps, or if yuo require any further help. astander. –  Adriaan Stander Jan 13 '10 at 16:43
    
That's awesome, all is working perfectly. Thank you so much. –  Dave Jan 13 '10 at 17:26
    
Only a pleasure. Glad I could help X-) –  Adriaan Stander Jan 13 '10 at 17:30

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