0

I have a table like this in postgresql. Each row shows a customer subscribed our products. For example, Customer 1 paid a 1 month subscription at 2019-07-03.

date       product period subscriber_id units
2019-07-03       A 1Month             1     1
2019-07-02       A  1Year             2     1
2019-07-01       B  1Year             1     1
2019-06-30       B 1Month             3     1
2019-06-30       A 1Month             4     1
2019-06-03       B 1Month             4     1
2019-06-03       A 1Month             1     1

I want to calculate total valid different subscribers on each day, the result will look like

base_date product total_distinct_count 
2019-07-03      A                    3
2019-07-03      B                    3
2019-07-02      A                    3
2019-07-02      B                    3
2019-07-01      A                    2
2019-07-01      B                    3
2019-06-30      A                    2
2019-06-30      B                    1

...

There are 3 different customers (1, 2, 4) who still subscribe product A at 2019-07-03 in first row. I've tried to use on each day and ,

SELECT date, COUNT(DISTINCT(subscribers_id))
-- do some conditions
GROUP BY date, product

I don't know how to group by with this condition. If there is a better way to solve this problem. I will very appreciate !!!

7
  • Why distinct? If you are trying to calculate metrics on which days give the most business, does it matter if the user purchase multiple subscriptions? Also, yes a group by date (no timestamp) and product is what you want.
    – Jay
    Jul 3 '19 at 16:58
  • Because I want to check how many different valid subscribers are on each day
    – Barry
    Jul 3 '19 at 17:23
  • I can monitor the change of my subscribers every day
    – Barry
    Jul 3 '19 at 17:28
  • By product? Seems like you have the right SQL then.
    – Jay
    Jul 3 '19 at 18:08
  • yes, but I don't know how to do to get the result
    – Barry
    Jul 3 '19 at 23:04
1

This is pretty straightforward if you use date ranges.

CREATE TABLE SUBSCRIPTION (
  date date,
  product text,
  period interval,
  subscriber_id int,
  units int
);

INSERT INTO SUBSCRIPTION VALUES 
 ('2019-07-03', 'A' , '1 month', 1, 1),
 ('2019-07-02', 'A', '1 year', 2, 1),
 ('2019-07-01', 'B', '1 year', 1, 1),
 ('2019-06-30', 'B', '1 month', 3, 1),
 ('2019-06-30', 'A', '1 month', 4, 1),
 ('2019-06-03', 'B', '1 month', 4, 1),
 ('2019-06-03', 'A', '1 month', 1, 1);

-- First, get the list of dateranges, from 2019-06-03 to 2019-07-03 (or whatever you want)
WITH dates as (
  SELECT daterange(t::date, (t + interval '1' day)::date, '[)')
  FROM generate_series('2019-06-03'::timestamp without time zone,
                       '2019-07-03', 
                       interval '1' day) as g(t)
)
  SELECT lower(daterange)::date, count(distinct subscriber_id)
  FROM dates
  LEFT JOIN subscription ON daterange <@
                             daterange(subscription.date,
                                       (subscription.date + period)::date)
  GROUP BY daterange
  ;
   lower    | count
------------+-------
 2019-06-03 |     2
 2019-06-04 |     2
 2019-06-05 |     2
 2019-06-06 |     2
 2019-06-07 |     2
 2019-06-08 |     2
 2019-06-09 |     2
 2019-06-10 |     2
 2019-06-11 |     2
 2019-06-12 |     2
 2019-06-13 |     2
 2019-06-14 |     2
 2019-06-15 |     2
 2019-06-16 |     2
 2019-06-17 |     2
 2019-06-18 |     2
 2019-06-19 |     2
 2019-06-20 |     2
 2019-06-21 |     2
 2019-06-22 |     2
 2019-06-23 |     2
 2019-06-24 |     2
 2019-06-25 |     2
 2019-06-26 |     2
 2019-06-27 |     2
 2019-06-28 |     2
 2019-06-29 |     2
 2019-06-30 |     3
 2019-07-01 |     3
 2019-07-02 |     4
 2019-07-03 |     4
(31 rows)

You could improve performance by storing (and indexing) the subscription valid time as a daterange instead of calculating it in the query.

EDIT: As Jay pointed out, I forgot to group by product:

WITH dates as (
  SELECT daterange(t::date, (t + interval '1' day)::date, '[)')
  FROM generate_series('2019-06-03'::timestamp without time zone,
                       '2019-07-03',
                       interval '1' day) as g(t)
)
  SELECT lower(daterange)::date, product, count(distinct subscriber_id)
  FROM dates
  LEFT JOIN subscription ON daterange <@
                             daterange(subscription.date,
                                       (subscription.date + period)::date)
  GROUP BY daterange, product
  ;
   lower    | product | count
------------+---------+-------
 2019-06-03 | A       |     1
 2019-06-03 | B       |     1
 2019-06-04 | A       |     1
 2019-06-04 | B       |     1
 2019-06-05 | A       |     1
 2019-06-05 | B       |     1
 2019-06-06 | A       |     1
 2019-06-06 | B       |     1
 2019-06-07 | A       |     1
 2019-06-07 | B       |     1
 2019-06-08 | A       |     1
 2019-06-08 | B       |     1
 2019-06-09 | A       |     1
 2019-06-09 | B       |     1
 2019-06-10 | A       |     1
 2019-06-10 | B       |     1
 2019-06-11 | A       |     1
 2019-06-11 | B       |     1
 2019-06-12 | A       |     1
 2019-06-12 | B       |     1
 2019-06-13 | A       |     1
 2019-06-13 | B       |     1
 2019-06-14 | A       |     1
 2019-06-14 | B       |     1
 2019-06-15 | A       |     1
 2019-06-15 | B       |     1
 2019-06-16 | A       |     1
 2019-06-16 | B       |     1
 2019-06-17 | A       |     1
 2019-06-17 | B       |     1
 2019-06-18 | A       |     1
 2019-06-18 | B       |     1
 2019-06-19 | A       |     1
 2019-06-19 | B       |     1
 2019-06-20 | A       |     1
 2019-06-20 | B       |     1
 2019-06-21 | A       |     1
 2019-06-21 | B       |     1
 2019-06-22 | A       |     1
 2019-06-22 | B       |     1
 2019-06-23 | A       |     1
 2019-06-23 | B       |     1
 2019-06-24 | A       |     1
 2019-06-24 | B       |     1
 2019-06-25 | A       |     1
 2019-06-25 | B       |     1
 2019-06-26 | A       |     1
 2019-06-26 | B       |     1
 2019-06-27 | A       |     1
 2019-06-27 | B       |     1
 2019-06-28 | A       |     1
 2019-06-28 | B       |     1
 2019-06-29 | A       |     1
 2019-06-29 | B       |     1
 2019-06-30 | A       |     2
 2019-06-30 | B       |     2
 2019-07-01 | A       |     2
 2019-07-01 | B       |     3
 2019-07-02 | A       |     3
 2019-07-02 | B       |     3
 2019-07-03 | A       |     3
 2019-07-03 | B       |     2
1
  • This is incorrect. He wants it “by” product. You are missing a group by on product.
    – Jay
    Jul 6 '19 at 19:59

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.