8

The query below is based on a complicated view and the view works as I want it to (I'm not going to include the view because I don't think it will help with the question at hand). What I can't get right is the drugCountsinFamilies column. I need it to show me the number of distinct drugNames for each drug family. You can see from the first screencap that there are three different H3A rows. The drugCountsInFamilies for H3A should be 3 (there are three different H3A drugs. )

enter image description here

You can see from the second screen cap that what's happening is the drugCountsInFamilies in the first screen cap is catching the number of rows that the drug name is listed on.
enter image description here

Below is my question, with comments on the part that is incorrect

select distinct
     rx.patid
    ,d2.fillDate
    ,d2.scriptEndDate
    ,rx.drugName
    ,rx.drugClass
    --the line directly below is the one that I can't figure out why it's wrong
    ,COUNT(rx.drugClass) over(partition by rx.patid,rx.drugclass,rx.drugname) as drugCountsInFamilies
from 
(
select 
    ROW_NUMBER() over(partition by d.patid order by d.patid,d.uniquedrugsintimeframe desc) as rn
    ,d.patid
    ,d.fillDate
    ,d.scriptEndDate
    ,d.uniqueDrugsInTimeFrame
    from DrugsPerTimeFrame as d
)d2
inner join rx on rx.patid = d2.patid
inner join DrugTable as dt on dt.drugClass=rx.drugClass
where d2.rn=1 and rx.fillDate between d2.fillDate and d2.scriptEndDate
and dt.drugClass in ('h3a','h6h','h4b','h2f','h2s','j7c','h2e')
order by rx.patid

SSMS gets mad if I try to add a distinct to the count(rx.drugClass) clause. Can it be done using window functions?

  • @ littlebobbytables I can't use count(distinct rx.drugClass) over(partition by...) without getting an error. – wootscootinboogie Nov 20 '12 at 20:07
  • @LittleBobbyTables that won't work because I need two different drugs in the same class. If the same drugName is listed twice, it's also in the same class, but I need to count it once. – wootscootinboogie Nov 20 '12 at 20:09
  • Your request doesn't make sense, because you have rx.drugClass in the partitioning clause. Hence, count(distinct rx.drugClass) will always return 1. – Gordon Linoff Nov 20 '12 at 20:13
  • I didn't think that was right, but I tried everything under the sun partitioning wise to make it give me the correct answer. I'll probably end up just using a derived table, but I was hoping I could figure it out this way. – wootscootinboogie Nov 20 '12 at 20:19
18

Doing a count(distinct) as a windows function requires a trick. Several levels of tricks, actually.

Because your request is actually truly simple -- the value is always 1 because rx.drugClass is in the partitioning clause -- I will make an assumption. Let's say you want to count the number of unique drug classes per patid.

If so, do a row_number() partitioned by patid and drugClass. When this is 1, within a patid, , then a new drugClass is starting. Create a flag that is 1 in this case and 0 in all other cases.

Then, you can simply do a sum with a partitioning clause to get the number of distinct values.

The query (after formatting it so I can read it), looks like:

select rx.patid, d2.fillDate, d2.scriptEndDate, rx.drugName, rx.drugClass,
       SUM(IsFirstRowInGroup) over (partition by rx.patid) as NumDrugCount
from (select distinct rx.patid, d2.fillDate, d2.scriptEndDate, rx.drugName, rx.drugClass,
             (case when 1 = ROW_NUMBER() over (partition by rx.drugClass, rx.patid order by (select NULL))
                   then 1 else 0
              end) as IsFirstRowInGroup
      from (select ROW_NUMBER() over(partition by d.patid order by d.patid,d.uniquedrugsintimeframe desc) as rn, 
                   d.patid, d.fillDate, d.scriptEndDate, d.uniqueDrugsInTimeFrame
            from DrugsPerTimeFrame as d
           ) d2 inner join
           rx
           on rx.patid = d2.patid inner join
           DrugTable dt
           on dt.drugClass = rx.drugClass
      where d2.rn=1 and rx.fillDate between d2.fillDate and d2.scriptEndDate and
            dt.drugClass in ('h3a','h6h','h4b','h2f','h2s','j7c','h2e')
     ) t
order by patid
  • You know a good resource for the logic behind formatting SQL? Because what I find readable and what SQL Server and others on SO say are two very different things. Thanks for the answer! :) – wootscootinboogie Nov 20 '12 at 20:21
  • @wootscootinboogie . . . My style is rather personally developed over the years (decades) I've been working with SQL. I think I describe it in Chapter 1 of "Data Analysis Using SQL and Excel". I find that when I try to adjust to radically dissimilar formats, I tend to miss important elements of the langauge. – Gordon Linoff Nov 20 '12 at 20:30
  • 2
    @GordonLinoff The case when 1 = ROW_NUMBER()... for a later summation in the next in-line view was a wonderful grand master move. – Greg Dec 16 '14 at 23:50
  • 2
    @DougPorter . . . Please do not do me the "favor" of reformatting my code. You can read about my indentation style in Chapter 1 of "Data Analysis Using SQL and Excel". It is quite intentional. – Gordon Linoff Mar 9 '17 at 3:00
19

I came across this question in search for a solution to my problem of counting distinct values. In searching for an answer I came across this post. See last comment. I've tested it and used the SQL. It works really well for me and I figured that I would provide another solution here.

In summary, using DENSE_RANK(), with PARTITION BY the grouped columns, and ORDER BY both ASC and DESC on the columns to count:

DENSE_RANK() OVER (PARTITION BY drugClass ORDER BY drugName ASC) +
DENSE_RANK() OVER (PARTITION BY drugClass ORDER BY drugName DESC) - 1 AS drugCountsInFamilies

I use this as a template for myself.

DENSE_RANK() OVER (PARTITION BY PartitionByFields ORDER BY OrderByFields ASC ) +
DENSE_RANK() OVER (PARTITION BY PartitionByFields ORDER BY OrderByFields DESC) - 1 AS DistinctCount

I hope this helps!

  • @tibtib I would suggest writing out your full response so that your goal is clear. – JoeFletch Apr 24 '18 at 9:47
  • My prior comment was not correct, so I deleted it. On a basic level, I was just noticing that the MAX of a DENSE_RANK can give the same result in a slightly more intuitive way. You would just have to wrap an aggregating MAX in a window function for correct partitioning. So, something like: SELECT class, name, MAX(MAX(dense_rank)) OVER (PARTITION BY class) FROM (SELECT class, name, DENSE_RANK() OVER (PARTITION BY class ORDER BY name)) AS ex_table GROUP BY 1, 2 – tibtib Apr 24 '18 at 21:17
  • -1 WRONG: Suppose you have three columns: time, animalId, cameraId. I want to select distinct number of cameras for each animal. This will give you 1 for all results. – FindOutIslamNow Oct 8 '18 at 8:10
  • if I PARTITION BY animalId, cameraId. Otherwise, if partitioning by a single column, will partition against all window instead of against each animal – FindOutIslamNow Oct 8 '18 at 8:20
  • @FindOutIslamNow Are you replying to my answer or to a comment on my answer? – JoeFletch Oct 9 '18 at 12:21
-2

Why would something like this not work?

SELECT 
   IDCol_1
  ,IDCol_2
  ,Count(*) Over(Partition By IDCol_1, IDCol_2 order by IDCol_1) as numDistinct
FROM Table_1
  • 1
    What does it contribute to the answers of 2012? NB: order by makes no sense in a window for count. – trincot Aug 18 '16 at 19:30
  • 1
    Is this a question or an answer? – James K Aug 18 '16 at 19:54
  • This is TOTALLY INCORRECT. Just try. – FindOutIslamNow Oct 8 '18 at 8:01

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