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I've got a table in SQL Server that represents doctor/patient encounters. One of the columns is a datetime field that represents when the encounter began. There is another field that represents the SCHEDULED time for the encounter.

I'm trying to write a query to isolate one encounter (for a given day) that meets the following criteria:

  1. If any encounters have begun, the LAST encounter to begin, -- OR --
  2. If NO encounters have begun, the FIRST scheduled encounter

So, I kind of want the following:

SELECT 
    TOP 1 * 
FROM 
    TABLE 
ORDER BY 
    CASE WHEN STARTED IS NULL THEN 0 ELSE 1 END DESC, 
    IF STARTED IS NULL
        SCHEDULED ASC
    ELSE
        STARTED DESC

I realize that I can't do that exactly, but I was wondering if I'm missing some other way to do this.

Other information:

  1. All encounters to be compared will occur on the same calendar day.
  2. This is part of a larger query where I'm partitioning by the room in which the encounter occurred/is scheduled.
  3. As long as I can accurately identify that one encounter, I don't care about the rest of the encounters in that room.
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3 Answers 3

Try sorting like this:

SELECT 
    TOP 1 * 
FROM 
    TABLE 
ORDER BY 
    CASE WHEN STARTED IS NULL THEN 0 ELSE 1 END, 
    STARTED DESC, 
    SCHEDULED ASC
share|improve this answer
    
If you check the answer that I posted, you'll see a lot of similarity to your suggestion, but it turns out that the CASE statement isn't necessary (because I'm sorted STARTED DESC). Of course, the CASE statement WOULD be necessary if I was wanting non-null STARTED values at the top of the list, but still sorted ASC. –  mbm29414 Dec 4 '12 at 13:48
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Nicked the sorting method from Johann

Select Top 1
  *
From (
  Select
    0 As X,
    *
  From
    Encounter
  Where
    -- started after 00:00:00 today (maybe Started > GetDate() will suffice)
    Started >= DateAdd(day, DateDiff(day, 0, GetDate()), 0) And 
    -- started before 00:00:00 tomorrow
    Started < DateAdd(day, 1 + DateDiff(day, 0, GetDate()), 0)
  Union All
  Select
    1 As X,
    *
  From
    Encounter
  Where
    -- Sechduled after 00:00:00 today
    Scheduled >= DateAdd(day, DateDiff(day, 0, GetDate()), 0) And 
    -- started before 00:00:00 tomorrow
    Scheduled < DateAdd(day, 1 + DateDiff(day, 0, GetDate()), 0) 
  ) a
Order By
  X,
  Started Desc,
  Scheduled Asc

With the assumption that started is always on the same day as scheduled, and scheduled is not nullable, this is equivalent to:

Select Top 1
  *
From
  Encounter
Where
  -- Sechduled after 00:00:00 today
  Scheduled >= DateAdd(day, DateDiff(day, 0, GetDate()), 0) And 
  -- started before 00:00:00 tomorrow
  Scheduled < DateAdd(day, 1 + DateDiff(day, 0, GetDate()), 0) 
Order By
  Case When Started Is Null Then 0 Else 1 End,
  Started Desc,
  Scheduled;

http://sqlfiddle.com/#!3/9cc65/3

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up vote 0 down vote accepted

I'm not sure whether it was particularly clear in my question, but based on the specific criteria of my scenario, the answer was a lot easier than I thought.

Basically, it boils down to the fact that I want to split the rows into 2 groups:

  1. Rows with a non-null value in the STARTED column, and
  2. Rows with a null value in the STARTED column.

Also important is the fact that there is ALWAYS a valid value in the SCHEDULED field.

I want to sort group #1 by their STARTED values in descending order and group #2 by their SCHEDULED values in ascending order.

Then, I want the first entry from group #1, or - if group #1 is empty - the first entry from group #2. No other entries are important for this problem.

Because group #1 is desired to be sorted in descending order, the following solution is what I've used:

SELECT 
    TOP 1 * 
FROM 
    TABLE 
ORDER BY 
    STARTED DESC,
    SCHEDULED ASC

In my testing, this gives me the row with the latest STARTED value, or the row with the earliest SCHEDULED value, if all rows have a null STARTED value.

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