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The title doesn't quite capture what I mean, and this may be a duplicate.

Here's the long version: given a guest's name, their registration date, and their checkout date, how do I generate one row for each day that they were a guest?

Ex: Bob checks in 7/14 and leaves 7/17. I want

('Bob', 7/14), ('Bob', 7/15), ('Bob', 7/16), ('Bob', 7/17) 

as my result.

Thanks!

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3  
What have you tried? –  Matt Ball Jun 21 '12 at 15:26
    
3  
Generally, you don't. You have a look-up table and pick them out of there. WHERE calendar.date >= user.start_date AND calendar.date <= user.leave_date You CAN generate sets using loops, or recursive queries, but they are never as fast as using a look-up table. –  MatBailie Jun 21 '12 at 15:28
    
I asked a very similar question, but mine was hours, not days. You could change to fit your need pretty easily. stackoverflow.com/questions/10986344/… –  Limey Jun 21 '12 at 15:56
    
Please specify the version of SQL Server. I posted a solution that depends on SQL Server 2008; it may differ if you are using SQL Server 2005. –  Aaron Bertrand Jun 21 '12 at 15:58
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5 Answers

up vote 4 down vote accepted

I would argue that for this specific purpose the below query is about as efficient as using a dedicated lookup table.

DECLARE @start DATE, @end DATE;
SELECT @start = '20110714', @end = '20110717';

;WITH n AS 
(
  SELECT TOP (DATEDIFF(DAY, @start, @end) + 1) 
    n = ROW_NUMBER() OVER (ORDER BY [object_id])
  FROM sys.all_objects
)
SELECT 'Bob', DATEADD(DAY, n-1, @start)
FROM n;

Results:

Bob     2011-07-14
Bob     2011-07-15
Bob     2011-07-16
Bob     2011-07-17

Presumably you'll need this as a set, not for a single member, so here is a way to adapt this technique:

DECLARE @t TABLE
(
    Member NVARCHAR(32), 
    RegistrationDate DATE, 
    CheckoutDate DATE
);

INSERT @t SELECT N'Bob', '20110714', '20110717'
UNION ALL SELECT N'Sam', '20110712', '20110715'
UNION ALL SELECT N'Jim', '20110716', '20110719';

;WITH [range](d,s) AS 
(
  SELECT DATEDIFF(DAY, MIN(RegistrationDate), MAX(CheckoutDate))+1,
    MIN(RegistrationDate)
    FROM @t -- WHERE ?
),
n(d) AS
(
  SELECT DATEADD(DAY, n-1, (SELECT MIN(s) FROM [range]))
  FROM (SELECT ROW_NUMBER() OVER (ORDER BY [object_id])
  FROM sys.all_objects) AS s(n)
  WHERE n <= (SELECT MAX(d) FROM [range])
)
SELECT t.Member, n.d
FROM n CROSS JOIN @t AS t
WHERE n.d BETWEEN t.RegistrationDate AND t.CheckoutDate;
----------^^^^^^^ not many cases where I'd advocate between!

Results:

Member    d
--------  ----------
Bob       2011-07-14
Bob       2011-07-15
Bob       2011-07-16
Bob       2011-07-17
Sam       2011-07-12
Sam       2011-07-13
Sam       2011-07-14
Sam       2011-07-15
Jim       2011-07-16
Jim       2011-07-17
Jim       2011-07-18
Jim       2011-07-19

As @Dems pointed out, this could be simplified to:

;WITH natural AS 
(
  SELECT ROW_NUMBER() OVER (ORDER BY [object_id]) - 1 AS val 
  FROM sys.all_objects
) 
SELECT t.Member, d = DATEADD(DAY, natural.val, t.RegistrationDate) 
  FROM @t AS t INNER JOIN natural 
  ON natural.val <= DATEDIFF(DAY, t.RegistrationDate, t.CheckoutDate);
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AFAIK SQL Server's optimiser means that you don't really need the WHERE n < = (SELECT MAX()) which means that this can be even further simplified... WITH natural AS (SELECT ROW_NUMBER() OVER (ORDER BY id) - 1 AS val FROM sys.objects) SELECT t.Member, DATEADD(DAY, natural.val, t.start) FROM @t AS t INNER JOIN natural ON natural.val <= DATEDIFF(DAY, t.start, t.end) [But, even then, a straight look-up table is still going to use less CPU cycles at the very least.] –  MatBailie Jun 21 '12 at 16:33
    
@Dems when I started writing my goal was to use the highest range in TOP against sys.all_objects. You're right that it could be simplified. –  Aaron Bertrand Jun 21 '12 at 16:37
    
Thanks, your query does what exactly what I was looking for. One question -- is it necessary to use MAX and MIN on the 'range' table? In this example, I'm only seeing one row generated for 'range', so there is only one candidate for either max or min (in which case I would just put the range and start date in regular variables). I'm quite impressed with your SQL chops and curious if there's some subtlety there I'm missing. –  Daniel Cotter Jun 21 '12 at 17:56
    
That is meant for the case when you're dealing with more than one user, and there may be overlapping dates. If you're only dealing with one user's single visit then you shouldn't need to use that version of the query at all. –  Aaron Bertrand Jun 21 '12 at 17:58
    
Hmm. Our production box, with thousands of guests and overlapping dates is still only returning one row for [range]. –  Daniel Cotter Jun 21 '12 at 20:19
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This may work for ya:

with mycte as
 (
     select cast('2000-01-01' as datetime) DateValue, 'Bob' as Name
     union all
     select DateValue + 1 ,'Bob' as Name
     from    mycte   
     where   DateValue + 1 < '2000-12-31'
 )
 select *
from    mycte
OPTION (MAXRECURSION 0)
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1  
That contains a "Counting Recursive CTE". See the following article for why they're so very bad even when counting small numbers. sqlservercentral.com/articles/T-SQL/74118 –  Jeff Moden Jun 25 '12 at 4:56
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I usually do this with a trick using row_number() on some table. So:

select t.name, dateadd(d, seq.seqnum, t.start_date)
from t left outer join
     (select row_number() over (order by (select NULL)) as seqnum
      from t
     ) seq
     on seqnum <= datediff(d, t.start_date, t.end_date)

The calculation for seq goes pretty fast, since no calculation or ordering is required. However, you need to be sure the table is big enough for all time spans.

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If you have a "Tally" or "Numbers" table, life get's real simple for things like this.

 SELECT Member, DatePresent = DATEADD(dd,t.N,RegistrationDate)
   FROM @t 
  CROSS JOIN dbo.Tally t
  WHERE t.N BETWEEN 0 AND DATEDIFF(dd,RegistrationDate,CheckoutDate)
;

Here's how to build a "Tally" table.

--===================================================================
--      Create a Tally table from 0 to 11000
--===================================================================
--===== Create and populate the Tally table on the fly.
 SELECT TOP 11001
        IDENTITY(INT,0,1) AS N
   INTO dbo.Tally
   FROM Master.sys.ALL_Columns ac1
  CROSS JOIN Master.sys.ALL_Columns ac2
;
--===== Add a CLUSTERED Primary Key to maximize performance
  ALTER TABLE dbo.Tally
    ADD CONSTRAINT PK_Tally_N 
        PRIMARY KEY CLUSTERED (N) WITH FILLFACTOR = 100
;
--===== Allow the general public to use it
  GRANT SELECT ON dbo.Tally TO PUBLIC
;
GO

For more information on what a "Tally" table is in SQL and how it can be used to replace While loops and the "Hidden RBAR" of reursive CTEs that count, please see the following article.

http://www.sqlservercentral.com/articles/T-SQL/62867/

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I would create a trigger to create extra records and run it upon checkout. Alternatively, you can have a daily midnight job doing the same (if you need up-to-date info in your database).

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1  
This isn't really an answer - how does the trigger "create extra records"? –  Aaron Bertrand Jun 21 '12 at 15:36
    
@AaronBertrand this is trivial programming task in any language. –  Andy Jun 21 '12 at 15:40
2  
If it were so trivial, the OP wouldn't be asking, right? And it shouldn't be hard to actually back up your answer with some code for this language? –  Aaron Bertrand Jun 21 '12 at 15:42
1  
I guess we interpret "how do I generate one row for each day that they were a guest" differently. <shrug> To me that sounds like a question about specific syntax, not "go write a query." –  Aaron Bertrand Jun 21 '12 at 16:38
2  
@Andy... You wrote "@AaronBertrand this is trivial programming task in any language". Let's see what you've got. Post the trigger code. –  Jeff Moden Jun 25 '12 at 5:00
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