64

I am using count and group by to get the number of subscribers registered each day:

  SELECT created_at, COUNT(email)  
    FROM subscriptions 
GROUP BY created at;

Result:

created_at  count
-----------------
04-04-2011  100
05-04-2011   50
06-04-2011   50
07-04-2011  300

I want to get the cumulative total of subscribers every day instead. How do I get this?

created_at  count
-----------------
04-04-2011  100
05-04-2011  150
06-04-2011  200
07-04-2011  500
104

With larger datasets, window functions are the most efficient way to perform these kinds of queries -- the table will be scanned only once, instead of once for each date, like a self-join would do. It also looks a lot simpler. :) PostgreSQL 8.4 and up have support for window functions.

This is what it looks like:

SELECT created_at, sum(count(email)) OVER (ORDER BY created_at)
FROM subscriptions
GROUP BY created_at;

Here OVER creates the window; ORDER BY created_at means that it has to sum up the counts in created_at order.


Edit: If you want to remove duplicate emails within a single day, you can use sum(count(distinct email)). Unfortunately this won't remove duplicates that cross different dates.

If you want to remove all duplicates, I think the easiest is to use a subquery and DISTINCT ON. This will attribute emails to their earliest date (because I'm sorting by created_at in ascending order, it'll choose the earliest one):

SELECT created_at, sum(count(email)) OVER (ORDER BY created_at)
FROM (
    SELECT DISTINCT ON (email) created_at, email
    FROM subscriptions ORDER BY email, created_at
) AS subq
GROUP BY created_at;

If you create an index on (email, created_at), this query shouldn't be too slow either.


(If you want to test, this is how I created the sample dataset)

create table subscriptions as
   select date '2000-04-04' + (i/10000)::int as created_at,
          'foofoobar@foobar.com' || (i%700000)::text as email
   from generate_series(1,1000000) i;
create index on subscriptions (email, created_at);
5
  • This is great intgr, only that my subscriptions table contains a lot of duplicate email rows. So what over is doing is sum-ming the count numbers, but I still need to recalculate the unique emails on every subsequent date. – khairul Apr 18 '11 at 9:53
  • I updated my answer with a DISTINCT ON subquery. It's still a lot faster than Andriy's answer -- can process a million rows within a few seconds -- but perhaps more complicated. – intgr Apr 18 '11 at 13:55
  • Nice tip on the generate_series function! – Endy Tjahjono Apr 19 '11 at 6:33
  • 2
    Note that DISTINCT ON can also be turned into an equivalent query with GROUP BY; in this case, SELECT email, MIN(created_at) as created_at FROM subscriptions GROUP BY email. Which is more efficient will probably vary, although ready-sorted sub-query from the DISTINCT ON seems to give some advantage to the sort needed by the Window function. – IMSoP May 29 '13 at 11:51
  • I'd like to have this on a per month basis, how would I need to change this query? I'm having real problems with that. – herrherr Jan 22 '18 at 6:50
8

Use:

SELECT a.created_at,
       (SELECT COUNT(b.email)
          FROM SUBSCRIPTIONS b
         WHERE b.created_at <= a.created_at) AS count
  FROM SUBSCRIPTIONS a
0
2
SELECT
  s1.created_at,
  COUNT(s2.email) AS cumul_count
FROM subscriptions s1
  INNER JOIN subscriptions s2 ON s1.created_at >= s2.created_at
GROUP BY s1.created_at
3
  • I've tried the sum(s2.count) and the console gives an error: 'aggregate function calls cannot be nested' – khairul Apr 18 '11 at 6:43
  • I meant that to be COUNT(s2.email), sorry. Please see my edited solution. – Andriy M Apr 18 '11 at 6:49
  • Thanks buddy! I was working with a more complicated query, and your structure is easy to understand (and thus, to implement). – khairul Apr 18 '11 at 7:20
2

I assume you want only one row per day and you want to still show days without any subscriptions (suppose nobody subscribes for a certain date, do you want to show that date with the balance of the previous day?). If this is the case, you can use the 'with' feature:

with recursive serialdates(adate) as (
    select cast('2011-04-04' as date)
    union all
    select adate + 1 from serialdates where adate < cast('2011-04-07' as date)
)
select D.adate,
(
    select count(distinct email)
    from subscriptions
    where created_at between date_trunc('month', D.adate) and D.adate
)
from serialdates D
2
  • Thanks, that with function could be useful too. Learnt something new. – khairul Apr 18 '11 at 7:53
  • 2
    Instead of serialdates you can use the built-in function: generate_series(timestamp '2011-04-04', timestamp '2011-04-07', interval '1 day') – intgr Apr 18 '11 at 13:53
-3

The best way is to have a calendar table: calendar ( date date, month int, quarter int, half int, week int, year int )

Then, you can join this table to make summary for the field you need.

1
  • 2
    That has nothing to do with getting a running total. – a_horse_with_no_name Jul 18 '14 at 9:58

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