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.

I have the following table:

CREATE table DataDiff (CLI tinyint, id tinyint, date datetime, countable bit)
insert into DataDiff values (234,1,convert(datetime,'17/12/1997',103),1)
insert into DataDiff values (234,2,convert(datetime,'09/07/1998',103),0)
insert into DataDiff values (234,3,convert(datetime,'11/08/1998',103),1)
insert into DataDiff values (234,4,convert(datetime,'29/12/1998',103),0)
insert into DataDiff values (234,5,convert(datetime,'01/02/1999',103),1)
insert into DataDiff values (234,6,convert(datetime,'03/02/1999',103),0)
insert into DataDiff values (234,7,convert(datetime,'03/02/1999',103),1)
insert into DataDiff values (234,8,convert(datetime,'29/03/1999',103),0)
insert into DataDiff values (234,9,convert(datetime,'29/03/1999',103),1)
insert into DataDiff values (234,10,convert(datetime,'31/03/1999',103),0)

I am having a hard time rewriting, without RBAR, a UDF to count the days from ID=1 up to ID=2 then from ID=3 to ID=4 and so on, always starting the count when COUNTABLE=1 and stopping when COUNTABLE=0 and then return the sum for a given CLI.

The length in days of the five intervals pictured is:

ID=2 - ID=1  = 204
ID=4 - ID=3  = 140
ID=6 - ID=5  = 2
ID=8 - ID=7  = 54
ID=10 -ID=9  = 2

for a total of 402 "countable" days from the total of 469 days between ID=1 and ID=10

share|improve this question
    
What if you have an odd number of days? –  Justin Satyr Jan 16 '12 at 19:51
    
@Justin Satyr Do you mean if the last COUNTABLE=1 ? Well in this case it counts up to the present day. –  Lynx Kepler Jan 16 '12 at 20:07
    
You really didn't define what COUNTABLE is. –  Justin Satyr Jan 16 '12 at 20:30
1  
What means IS_AVAILABLE ? –  pistipanko Jan 16 '12 at 20:35
    
@Justin Satyr COUNTABLE is just a marker to know when a date must start being counted and when the count must stop. It refers to procedures to start/stop sending editions in magazine subscription. –  Lynx Kepler Jan 16 '12 at 21:29

1 Answer 1

up vote 3 down vote accepted

Try:

select t1.cli ,
       sum(t1.countable  * 
           datediff(day, t1.[DATE], coalesce(t2.[DATE],getdate())) ) daycount
from DataDiff t1
left join DataDiff t2 on t1.cli = t2.cli and t1.id+1 = t2.id
group by t1.cli

(Assumes that if the last recorded date for the cli is countable, then it should be counted up to the current date.)

share|improve this answer
    
This may be a bit off-topic, sorry, but just to be sure I understand your idea well and perhaps to be also sure to make myself clear enough in similar cases in the future: when you ("you" = "people who speak English as their first language") say "up to… (some date)", does that have any implication as to whether the "some date" is included into or excluded from the range, or is there no such implication by default? I used to think there was an implication and the date was included, but if I were now to judge by your query, it would seem in fact just the other way. –  Andriy M Jan 16 '12 at 21:33
    
@AndriyM: I think "up to" would tend to mean including the last date, but this would not necessarily be definite - context could provide clarification. In this case, I have assumed that the current date is the next applicable date. –  Mark Bannister Jan 16 '12 at 21:49
    
Oh, so in the end it's up to one's context, I see. :) Makes sense, thank you very much! –  Andriy M Jan 16 '12 at 21:58
1  
Still, as to your solution, I'd like to point out that your query would not count the current date, because in fact it does not count the last dates (which are effectively the start dates of uncountable periods). And that's exactly how I would count it (i.e. excluding the last days, like you do). –  Andriy M Jan 16 '12 at 22:02
    
tough I didn't thoroughly understood your logic, it appears to be a nice piece if code, but it gives me incorrect results 864, as opposed to a expected 402. I've edited the question text to make it clearer. –  Lynx Kepler Jan 17 '12 at 19:25

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.