Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I have a table with the fields: resourceID,work_date,stringValue

I'm trying to build an Access query that will show a count of how many different resourceID numbers with a given stringValue occur in each week over a given date range. Using partition() seems to be the simplest approach, however, when I use the following query:

select partition([work_date],#6/6/2011#,#9/4/2011#,7),stringValue,
count(resourceID) from 
(select distinct resourceID,work_date,stringValue from myTable) as subQuery
group by partition([work_date],#6/6/2011#,#9/4/2011#,7), stringValue

then I have two problems:

-My dates end up formatted as integers, e.g.:

:40699
40700:40706
40784:40790

whereas I want them to appear as, e.g., 6/6/2011:6/12/2011 (I also don't want the :40699 value)

-resourceID gets counted more than once per week if it appears on more than one weekday; I just want it to be counted once for each stringValue if it appears at all that week. I thought the distinct qualifier would accomplish this but it didn't.

EDIT: I've solved the excess resourceID count by putting the partition in a subquery as follows:

select datePartition,stringValue,count(ID)
from (select partition() as datePartition, stringValue, ID
from (select distinct stringvalue,ID,work_date))
group by datePartition,stringvalue

and then pulling count(ID) from that subquery. Still can't figure out the date formatting, though.

share|improve this question
up vote 1 down vote accepted

To get rid of the range which ends with 40699, try revising the subquery piece. Add a WHERE condition to limit rows to work_date values >= #6/6/2011#

SELECT DISTINCT resourceID, work_date, stringValue
FROM myTable
WHERE work_date >= #6/6/2011#;

I'm not clear about your description regarding the duplicate rows from the SELECT DISTINCT. One possibility could be that at least some of your work_date values contain different time values from the same date. So two rows with the same resourceID and stringValue, but work_date values of #6/6/2011 01:00 AM# and #6/6/2011 02:00 AM#, would legitimately qualify as distinct.

If that's not the explanation, clarify your question by showing us a smallish set of data from myTable, and the resultset of that data which illustrates how you want the data evaluated.

AFAICT, the issue about Partition() presenting your date ranges as whole numbers is unavoidable. According to the help topic, Partition() expects whole numbers for its parameters. Apparently it's willing to accept your Date/Time values by casting them to whole numbers. But it's not willing/able to transform them back to date strings. You would have to transform them back yourself. A user-defined function could do it when called from a query.

Public Function WholeNumRange2Date(ByVal pRange As String)
    Const cstrFmt As String = "m/d/yyyy"
    Dim varPieces As Variant
    varPieces = Split(pRange, ":")
    WholeNumRange2Date = Format(CDate(varPieces(0)), cstrFmt) & _
        ":" & Format(CDate(varPieces(1)), cstrFmt)
End Function

An example from the Immediate Window which uses that function ...

? WholeNumRange2Date("40700:40706")
6/6/2011:6/12/2011
share|improve this answer
    
I thought about using split() too, was hoping that Access had a more elegant solution. Apparently not. Thanks for the tip about using a WHERE clause to get rid of the 40699. – sigil Sep 12 '11 at 21:12

I see 2 solutions, but I see no reason for using Partition() here !
Solution 1: use SELECT Format([DateFact];"ww-yyyy") as weekOfYear will return the week number and year: fine for grouping by week, displaying the week number.
Solution 2: use SELECT [DateFact]-Weekday([datefact]+1) as weekStarting will return first day of the week as a nicely formatted date: fine for grouping by week, displaying the week starting day.

share|improve this answer
    
Did you test Solution 2? Looks to me like it will return the last day of the previous week, not the current week. – HansUp Sep 12 '11 at 21:19
    
@Hansup: no, I did not test, you are probably right 8-/ ... One might need to add "+1" to the expression. I wanted to show the principle, which I think is better than using Partition() in this case. – iDevlop Sep 12 '11 at 21:24
    
Yes, I see your point ... +1 from me. He would have to make an adjustment to feed the starting weekday because apparently his weeks start on Mondays (#6/6/2011#) ... but that can be done. – HansUp Sep 12 '11 at 21:31

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.