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There are quotas for hotels per day in a table. How to get number of days when hotel is daily available?

q_id    q_hotel q_date  q_value
1   1   2013-02-01  1
2   1   2013-02-02  1
3   1   2013-02-03  1
4   1   2013-02-04  0
5   1   2013-02-05  2
6   1   2013-02-06  3
7   1   2013-02-07  3
8   1   2013-02-08  2
9   1   2013-02-09  0
10  1   2013-02-10  0
11  1   2013-02-11  1
12  1   2013-02-12  1

Wanted output:

q_hotel q_date  days_available
1   2013-02-01  3
1   2013-02-02  2
1   2013-02-03  1
1   2013-02-04  0
1   2013-02-05  4
1   2013-02-06  3
1   2013-02-07  2
1   2013-02-08  1
1   2013-02-09  0
1   2013-02-10  0
1   2013-02-11  2
1   2013-02-12  1

For now I can get number of days if there is zero quote after needed date exists - I find closest unavailable day and calculate dates difference.
http://sqlfiddle.com/#!12/1a64c/14

    select q_hotel
  ,q_date
  ,(select extract(day from (min(B.q_date)-A.q_date)) from Table1 B where B.q_date>A.q_date
   and B.q_value=0 and A.q_value<>0)
from Table1 A

But there is a problem when I don't have a zero closing date.

share|improve this question
    
What have you tried? –  Blachshma Feb 14 '13 at 13:05
    
sqlfiddle.com/#!12/1a64c/14 –  revoua Feb 14 '13 at 13:55
1  
What's q_value? Not a super-informative column name.... Number of vacancies? As for the question, it sounds like you want to find "for each day within the covered range, the number of consecutive subsequent days in which at least one vacancy is available." CorrecT? –  Craig Ringer Feb 14 '13 at 15:19
    
Also, is it guaranteed that the entries in the input table will be contiguous? i.e. Will there ever be "2013-02-01" followed by "2013-02-03", skipping an entry for "2013-02-02"? If so, should zero vacances be assumed for 02? –  Craig Ringer Feb 14 '13 at 15:24
    
Contiguous - not guaranteed, missing dates means zero vacances. q_value - yes, number of vacancies. –  revoua Feb 14 '13 at 15:43

1 Answer 1

up vote 1 down vote accepted

Here is a solution:

select
    a.q_date
,   a.q_hotel
,   case
        when
            a.q_value = 0
        then
            0
        else
        (
            select
                extract
                ( day from
                    min ( b.q_date ) - a.q_date + interval '1 day'
                )
            from    table1 b
            where   b.q_date >= a.q_date
            and     b.q_hotel = a.q_hotel
            and not exists
            (
                select  1
                from    table1 c
                where   c.q_date = b.q_date + interval '1 day'
                and     b.q_hotel = a.q_hotel
                and     q_value <> 0
            )
        )
    end as days_available
from    table1 a
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