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.

Hi I'm working with data depending mostly on the day of the week. Data is formatted in a table Date - position - count/number. There are multiple different positions. I was able to sort my data for a each day of the week using.

select MOD(to_char(time, 'J'),7),  
       sum(COUNT))                  
 from TABLE
where time > sysdate -x
group by to_char(time, 'J')
order by to_char(time, 'J');

This outputs daily sums according to day of the week.

Now I'm able to get an average for a single day of a week in a year. This code outputs an average for only Sunday

SELECT AVG(asset_sums)  
  FROM  (
          select MOD(to_char(time, 'J'),7), 
                 sum(COUNT)) as asset_sums
            from table
           where time > sysdate -365
             and MOD(TO_CHAR(time, 'J'), 7) + 1 IN (7)
           group by to_char(time, 'J')
           order by to_char(time, 'J') 
        );

My goal is to be able to get a table with daily sum compared with yearly average for that particular day of the week. For example yearly average number for Mondays is 57 , Tuesdays 60. This week my Monday is 59 and Tuesday is 57. Output of the table is Monday +2, Tuesday -3. What is the easiest way / most efficient ? Thanks for your help.

Edit : Format of my data

Date : yyyy-mm-dd | Place : xxxx | Number( of customers) 0 to 10000

   2013-09-16 | AAAA | 1534
   2013-09-16 | AAAB | 534
   2013-09-17 | AAAA | 1434
   2013-09-17 | AAAC | 834
   2013-09-18 | AAAA | 134
   2013-09-18 | AAAD | 183

Needed output

2013-09-16 | Day of the week | Sum | Average monday this year | Difference Sum-AVG

2013-09-16 | 1 (= Monday) | 2068 | 2015| 53

share|improve this question
5  
It would be easier for someone to answer if you provide example date and desired output. –  zero323 Sep 16 '13 at 12:59
    
You might what to consider "time > add_month(sysdate,-12)" instead of "time > sysdate-365" –  David Aldridge Sep 16 '13 at 13:20

3 Answers 3

up vote 0 down vote accepted

For clarity I will use subquery factoring. First, select the current weeks data. Next, subquery the sum for the day over the current week. Then, subquery the sum for each day over the past year. Then, average the daily sum of each day for each day of the week. Finally, join the two and display the difference.

with

this_week as (
    select 
        time
    from table
    where time > x - 7
    group by time
),

this_week_dly_sum as (
    select 
        to_char(time, 'd') day,
        sum(count) sum
    from this_week
    group by to_char(time, 'd')
),

this_year_dly_sum as (
    select 
        time,
        sum(count) sum
    from ghcnd_data
    where time > x - 365
    group by time
),

this_year_dly_avg as (
    select
        to_char(day, 'd'),
        avg(sum) avg
    from this_year_dly_sum
    group by to_char(day, 'd')
)

select
    this_week.time,
    to_char(this_week.time, 'day') day of week,
    this_week_dly_sum.sum,
    this_year_dly_avg.avg,
    this_week_dly_sum.sum - this_year_dly_avg.avg difference    
from this_week
inner join this_week_dly_sum
    on to_char(this_week.time, 'd') = this_week_dly_sum.day
inner join this_year_dly_avg
    on to_char(this_week.time, 'd').day = this_year_dly_avg.
group by time
;
share|improve this answer

You can use analytic function for this.

select date1,  to_char(date1, 'd'), 
       sum(val) over(partition by to_char(date1, 'd')),
       avg(val) over(partition by to_char(date1, 'd')), 
       sum(val) over(partition by to_char(date1, 'd'))-
       avg(val) over(partition by to_char(date1, 'd'))
from table1
time > add_month(sysdate,-12);
share|improve this answer

This will give you daily counts for the last year:

SELECT TRUNC(time, 'DD') AS date,
       SUM(count) AS asset_sum
  FROM yourtable
 WHERE time > SYSDATE - 365
 GROUP BY TRUNC(time, 'DD')

You can modify it to additionally return averages per day of the week for the specified range:

SELECT TRUNC(time, 'DD') AS date,
       SUM(count) AS asset_sum,
       AVG(SUM(count)) OVER
         (PARTITION BY TO_CHAR(TRUNC(time, 'DD'), 'D')) AS asset_sum_avg
  FROM yourtable
 WHERE time > SYSDATE - 365
 GROUP BY TRUNC(time, 'DD')

At this point you have all the initial data you need but probably for more days than necessary. You can use the above query as a derived table to limit the rows to just those where date > SYSDATE - x:

  WITH last_year_by_day AS
       (
       SELECT TRUNC(time, 'DD') AS date,
              SUM(count) AS asset_sum,
              AVG(SUM(count)) OVER
                (PARTITION BY TO_CHAR(TRUNC(time, 'DD'), 'D')) AS asset_sum_avg
         FROM yourtable
        WHERE time > SYSDATE - 365
        GROUP BY TRUNC(time, 'DD')
       )
SELECT date,
       TO_CHAR(TRUNC(time, 'DD'), 'D') AS day_of_week,
       asset_sum,
       asset_sum_avg,
       asset_sum - asset_sum_avg AS asset_sum_diff
  FROM last_year_by_day
 WHERE date > SYSDATE - x
;

As some expressions are being repeated multiple times, it can be a good idea to re-factor the query to avoid the repetition. Here's one way:

  WITH last_year AS
       (
       SELECT TRUNC(time, 'DD') AS date,
              TO_CHAR(time, 'D') AS day_of_week,
              count
         FROM yourtable
        WHERE time > SYSDATE - 365
       ),
       last_year_by_day AS
       (
       SELECT date,
              day_of_week,
              SUM(count) AS asset_sum,
              AVG(SUM(count)) OVER (PARTITION BY day_of_week) AS asset_sum_avg
         FROM last_year
        GROUP BY date, day_of_week
       )
SELECT date,
       day_of_week,
       asset_sum,
       asset_sum_avg,
       asset_sum - asset_sum_avg AS asset_sum_diff
  FROM last_year_by_day
 WHERE date > SYSDATE - x
;

One last note is about TO_CHAR('D'), which is used to obtain the day_of_week values. Since you are using a different method for the same results, you may not be aware that the results of TO_CHAR('D') are affected by the NLS_TERRITORY setting. You may want to use an ALTER SESSION statement to set NLS_TERRITORY to the value that would cause TO_CHAR('D') to return 1 for Monday, 2 for Tuesday etc. Here is the list of territories supported.

share|improve this answer

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.