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The question I need to answer is this "What is the maximum number of page requests we have ever received in a 60 minute period?"

I have a table that looks similar to this:

date_page_requested      date;
page                     varchar(80);

I'm looking for the MAX count of rows in any 60 minute timeslice.

I thought analytic functions might get me there but so far I'm drawing a blank.

I would love a pointer in the right direction.

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What granularity for the 60 minute period? If a page request happened at '2011-09-15 08:30:59.535', should the 60 minute period be aligned on the '08', the '30', the '59', or the '535' (the hour, minute, second, or millisecond)? –  Mike Sherrill 'Cat Recall' Sep 16 '11 at 21:38

5 Answers 5

up vote 2 down vote accepted

You have some options in the answer that will work, here is one that uses Oracle's "Windowing Functions with Logical Offset" feature instead of joins or correlated subqueries.

First the test table:

Wrote file afiedt.buf

  1  create table t pctfree 0 nologging as
  2  select date '2011-09-15' + level / (24 * 4) as date_page_requested
  3  from dual
  4* connect by level <= (24 * 4)
SQL> /

Table created.

SQL> insert into t values (to_date('2011-09-15 11:11:11', 'YYYY-MM-DD HH24:Mi:SS'));

1 row created.

SQL> commit;

Commit complete.

T now contains a row every quarter hour for a day with one additional row at 11:11:11 AM. The query preceeds in three steps. Step 1 is to, for every row, get the number of rows that come within the next hour after the time of the row:

  1  with x as (select date_page_requested
  2          , count(*) over (order by date_page_requested
  3              range between current row
  4                  and interval '1' hour following) as hour_count
  5      from t)

Then assign the ordering by hour_count:

  6  , y as (select date_page_requested
  7          , hour_count
  8          , row_number() over (order by hour_count desc, date_page_requested asc) as rn
  9      from x)

And finally select the earliest row that has the greatest number of following rows.

 10  select to_char(date_page_requested, 'YYYY-MM-DD HH24:Mi:SS')
 11      , hour_count
 12  from y
 13* where rn = 1

If multiple 60 minute windows tie in hour count, the above will only give you the first window.

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Thank you very much. Several of these produced "correct" results, but this one produces those results incredibly fast, meaning I'll be able to adapt it to run over a much larger time frame quite successfully. –  rhacer Sep 19 '11 at 16:50

This should give you what you need, the first row returned should have the hour with the highest number of pages.

select number_of_pages
      ,hour_requested
from (select to_char(date_page_requested,'dd/mm/yyyy hh') hour_requested
            ,count(*) number_of_pages
      from pages
      group by to_char(date_page_requested,'dd/mm/yyyy hh')) p
order by number_of_pages
share|improve this answer
    
That would work beautifully if the 60 minute time frames all began at the top of the hour (e.g., 15:00) and ended at the bottom of the hour (e.g., 15:59) but what if the 60 minute span of greatest activity was 22:29 to 23:28? –  rhacer Sep 16 '11 at 21:28

How about something like this?

SELECT TOP 1
       ranges.date_start,
       COUNT(data.page) AS Tally
  FROM (SELECT DISTINCT 
               date_page_requested AS date_start,
               DATEADD(HOUR,1,date_page_requested) AS date_end
          FROM @Table) ranges
  JOIN @Table data
    ON data.date_page_requested >= ranges.date_start
   AND data.date_page_requested < ranges.date_end
 GROUP BY ranges.date_start
 ORDER BY Tally DESC
share|improve this answer
    
Note that that's SQL Server (T-SQL), but you should get the idea. –  groundh0g Sep 16 '11 at 21:31
    
Nice. Addind SELECT TOP 1 and ORDER BY Tally DESC will give only the top answer. –  ypercube Sep 16 '11 at 21:46
    
@ypercube: done. –  groundh0g Sep 16 '11 at 21:53

For PostgreSQL, I'd first probably write something like this for a "window" aligned on the minute. You don't need OLAP windowing functions for this.

select w.ts, 
       date_trunc('minute', w.ts) as hour_start, 
       date_trunc('minute', w.ts) + interval '1' hour as hour_end,
       (select count(*) 
        from weblog 
        where ts between date_trunc('minute', w.ts) and 
                        (date_trunc('minute', w.ts) + interval '1' hour) ) as num_pages
from weblog w
group by ts, hour_start, hour_end
order by num_pages desc

Oracle also has a trunc() function, but I'm not sure of the format. I'll either look it up in a minute, or leave to see a friend's burlesque show.

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WITH ranges AS
    ( SELECT
          date_page_requested          AS StartDate,
          date_page_requested + (1/24) AS EndDate,
          ROWNUMBER() OVER(ORDER BY date_page_requested) AS RowNo 
      FROM 
          @Table
    ) 

SELECT 
    a.StartDate                 AS StartDate,
    MAX(b.RowNo) - a.RowNo + 1  AS Tally 
FROM 
    ranges a
  JOIN
    ranges b 
      ON  a.StartDate <= b.StartDate
      AND b.StartDate < a.EndDate
GROUP BY a.StartDate
       , a.RowNo
ORDER BY Tally DESC

or:

WITH ranges AS
    ( SELECT
          date_page_requested          AS StartDate,
          date_page_requested + (1/24) AS EndDate,
          ROWNUMBER() OVER(ORDER BY date_page_requested) AS RowNo 
      FROM 
          @Table
    ) 

SELECT 
    a.StartDate                      AS StartDate,
    ( SELECT MIN(b.RowNo) - a.RowNo  
      FROM ranges b
      WHERE b.StartDate > a.EndDate
    )                                AS Tally
FROM 
    ranges a
ORDER BY Tally DESC
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