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.

If anyone can help, it would be much appreciated.

The problem is that I can't seem to refer to anything outside of the subquery!?

SELECT * FROM currentcalls AS c
LEFT JOIN custprices ON c.rateid = custprices.rateid
LEFT JOIN (SELECT * FROM costprices 
    WHERE costprices.ratetype = custprices.ratetype
      AND (costprices.providerid = c.providerid OR costprices.providerid=0)
    ORDER BY costprices.providerid DESC LIMIT 1) AS new1 ON new1.ratetype = custprices.ratetype

3 Tables:

currentcalls (rateid, providerid)
custprices (rateid, ratetype)
costprices (ratetype,providerid)

We want ALL rows from currentcalls, and a single row from cust and cost prices. rateid has a unique row, so custprices is fine.

Unfortunately though, the costprice for a particular providerid may not exist (in which case I want to use providerid=0), or if it DOES exist, then I don't want the providerid=0 results. Either way, I do not want multiple rows (from costprice) returned.

SAMPLE DATA (pricing_information represents multiple fields that I want to select)

currentcalls (rateid, providerid)
              345       2
custprices (rateid, ratetype)
              345     123
costprices (ratetype,providerid, pricing_information)
              123       0           ????A
              123       1           ????B
              123       2           ????C
              123       3           ????D

I want the result to be:

rateid,providerid,rateid,ratetype,ratetype,providerid,pricing_information
  345      2       345     123     123       2           ??????C

And if the providerid doesn't exist, then the result should be

  345      2       345     123     123       0           ??????A

(For each row in the current calls table there should only be 1 instance of custprices which is easy because the ID is unique, but the trouble is getting only ONE instance of pricing_information, relevent to the providerid and ratetype)

share|improve this question
    
Can you make sqlfiddle with sample data and expected result. –  Bulat Mar 3 '13 at 12:24
    
Updated - thanks :) –  Alex Mar 3 '13 at 12:40
    
Updated again for the "When providerid doesn't exist" results –  Alex Mar 3 '13 at 12:42
add comment

1 Answer

up vote 0 down vote accepted

give this a try,

SELECT  c.rateid, 
        c.providerid, 
        new1.ratetype, 
        new1.pricing_information
FROM    currentcalls AS c
        LEFT JOIN custprices d
            ON c.rateid = d.rateid
        LEFT JOIN 
        (
            SELECT  a.*
            FROM    costprices a
                    INNER JOIN
                    (
                        SELECT  ratetype, MAX(x.providerid) min_provid
                        FROM    costprices x
                                INNER JOIN currentcalls y
                                  ON x.providerid IN (y.providerid, 0)
                    ) b ON  a.ratetype = b.ratetype AND
                            a.providerid = b.min_provid
        ) AS new1 ON new1.ratetype = d.ratetype;
share|improve this answer
    
When I tried that, it did only return one row, however it returned the row with providerid=0 instead of the row with providerid=1 (The data in currentcalls table as providerid=1) –  Alex Mar 3 '13 at 12:18
    
sorry for that. change MIN(providerid) into MAX(providerid) –  John Woo Mar 3 '13 at 12:19
    
Just to explain further: I only want it to return the lowest providerid (i.e 0) if it can't match currentcalls.providerid to costprices.providerid (But at the same time, it must always match currentcalls.ratetype to costprices.ratetype) –  Alex Mar 3 '13 at 12:20
    
I actually tried MAX(providerid) as well, and it chose the highest providerid for that ratetype in costprices (which is higher that the currentcalls.providerid value) –  Alex Mar 3 '13 at 12:21
    
It seems to me that where you have "a.providerid = b.min_provid" - shouldn't that reference the currentcalls.providerid somehow? –  Alex Mar 3 '13 at 12:24
show 11 more comments

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.