Обсуждение: Average New Users Per DOW
I'm not sure how to create a result where I get the average number of new users per day of the week. My issues are that days that did not have any new users will not be factored into the average, giving an overinflated result.
This is what I started with:
WITH userdays AS(SELECT u.created::DATE AS created,to_char(u.created,'Dy') AS d,COUNT(*) AS totalFROM users uGROUP BY 1,2),userdays_avg AS(SELECT extract('dow'FROM created) AS nDay,d AS "Day",AVG(total) AS "New Users"FROM userdaysGROUP BY 1,2ORDER BY 1)SELECT "Day", "New Users"FROM userdays_avgORDER BY nDay;
But you can see it wont give correct results since (for example) Monday's with no new users will not be counted in the average as 0.
TIA
R.
> I'm not sure how to create a result where I get the average number of > new users per day of the week. My issues are that days that did not > have any new users will not be factored into the average This is a pretty common problem with time-series queries when there is sparse data. My go-to solution is to use generate_series---in your case from 0 to 6---then do a left join from there to your actual data. Paul
Thanks Paul, I guess I'm not sure how a generate_series between 0 to 6 would solve this problem. Wouldn't I have to generate a series based on the date range (by day) and then group by DOW _after_ that? Can you give me an example of how I'd do it with a series based on 0 to 6?
On Mon, Jul 6, 2015 at 10:58 AM, Paul Jungwirth <pj@illuminatedcomputing.com> wrote:
> I'm not sure how to create a result where I get the average number of
> new users per day of the week. My issues are that days that did not
> have any new users will not be factored into the average
This is a pretty common problem with time-series queries when there is sparse data. My go-to solution is to use generate_series---in your case from 0 to 6---then do a left join from there to your actual data.
Paul
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Wouldn't I have to generate a series based on the date range (by day) and then group by DOW _after_ that?
You are correct.
WITH userdays (dow, user_count) AS ( existing_query, more or less )
, day_counts (dow, count_of_days) AS ( SELECT generate_series(user_earliest_created_date, user_most_recent_created_date) )
SELECT dow, coalesce(user_count, 0) / count_of_days
FROM day_counts
LEFT JOIN userdays USING (dow)
;
David J.
> Thanks Paul, I guess I'm not sure how a generate_series between 0 to 6
> would solve this problem. Wouldn't I have to generate a series based on
> the date range (by day) and then group by DOW _after_ that? Can you give
> me an example of how I'd do it with a series based on 0 to 6?
Looks like David Johnston beat me to it! :-) But this is what I had in mind:
SELECT s.d AS dow,
COUNT(u.id) c
FROM generate_series(0, 6) s(d)
LEFT OUTER JOIN users u
ON EXTRACT(dow FROM created) = s.d
GROUP BY dow
ORDER BY dow
;
You can also get human-readable DOW names by creating a 7-row CTE table
and joining to it based on the numeric dow.
Paul
Paul, I'm sure I'm missing something but it seems like your approach will not work. It's because the LEFT OUTER JOIN is on the numeric day of the week. So if you had this query going over weeks or months of data wouldn't you have the same issue with the days that had no new users not being factored into the AVG? I ended up doing something like this, which seems to work pretty well.
WITH usersByDay AS (SELECT cDate, COUNT(*) AS totalFROM (SELECT generate_series({CALENDAR_INTERVAL.START}::DATE,{CALENDAR_INTERVAL.END}::DATE,interval '1 day')::DATE AS cDate) AS cLEFT OUTER JOIN users u ON u.created::DATE = c.cDateGROUP BY cDate),avgUsersByDOW AS (SELECT extract('dow' FROM cDate) AS nDay,to_char(cDate,'Dy') AS "Day",ROUND(AVG(total), 2) AS "New Users"FROM usersByDayGROUP BY 1, 2ORDER BY 1)SELECT "Day", "New Users" FROM avgUsersByDOW ORDER BY nDay
On Mon, Jul 6, 2015 at 11:30 AM, Paul Jungwirth <pj@illuminatedcomputing.com> wrote:
Thanks Paul, I guess I'm not sure how a generate_series between 0 to 6
would solve this problem. Wouldn't I have to generate a series based on
the date range (by day) and then group by DOW _after_ that? Can you give
me an example of how I'd do it with a series based on 0 to 6?
Looks like David Johnston beat me to it! :-) But this is what I had in mind:
SELECT s.d AS dow,
COUNT(u.id) c
FROM generate_series(0, 6) s(d)
LEFT OUTER JOIN users u
ON EXTRACT(dow FROM created) = s.d
GROUP BY dow
ORDER BY dow
;
You can also get human-readable DOW names by creating a 7-row CTE table and joining to it based on the numeric dow.
Paul
Please follow list conventions and either respond inline or bottom-post.
Paul, I'm sure I'm missing something but it seems like your approach will not work. It's because the LEFT OUTER JOIN is on the numeric day of the week. So if you had this query going over weeks or months of data wouldn't you have the same issue with the days that had no new users not being factored into the AVG? I ended up doing something like this, which seems to work pretty well.WITH usersByDay AS (SELECT cDate, COUNT(*) AS totalFROM (SELECT generate_series({CALENDAR_INTERVAL.START}::DATE,{CALENDAR_INTERVAL.END}::DATE,interval '1 day')::DATE AS cDate) AS cLEFT OUTER JOIN users u ON u.created::DATE = c.cDateGROUP BY cDate),
I am fairly certain this does not give you the correct results. Specifically, the minimum value for each cDate is going to be 1 since count(*) counts NULLs. count(u) should probably work.
SELECT dt, count(uid), count(*)
FROM generate_series('2015-01-01'::date, '2015-01-05'::date, '1 day'::interval) gs (dt)
LEFT JOIN (VALUES ('2015-01-01'::date, 1), ('2015-01-01',2),('2015-01-02',3)) users (dt, uid)
USING (dt)
GROUP BY dt
;
David J.
I am fairly certain this does not give you the correct results. Specifically, the minimum value for each cDate is going to be 1 since count(*) counts NULLs. count(u) should probably work.
Yes you are right, I forgot to change COUNT(*) to COUNT(id), as you mention COUNT(u.*) will also work. I just couldn't get the idea of generating a sequence form 0 to 6 to work correctly. The approach I'm using seems to give the correct results (with COUNT(u.id)).I am fairly certain this does not give you the correct results. Specifically, the minimum value for each cDate is going to be 1 since count(*) counts NULLs. count(u) should probably work.
Correct. generate_series(0,6) won't work since there is no context as whether it is supposed to cover a single week or multiple years or anything in between.
Any non-null column can be supplied to the count() function: count ignores nulls. In this case you want to ignore the placeholder null that you are creating during the left join. My original suggestion avoided these extra placeholder values and instead forces you to process the master date range and the user-by-date pieces separately and then substitute 0 for any master date where the corresponding user-by-date was missing. If performance were important it may be worth testing both versions otherwise my guess is this version is more readable (for you).
David J.
On 7/6/15, Robert DiFalco <robert.difalco@gmail.com> wrote:
> I'm not sure how to create a result where I get the average number of new
> users per day of the week. My issues are that days that did not have any
> new users will not be factored into the average, giving an overinflated
> result.
>
> This is what I started with:
>
> WITH userdays AS
> (SELECT u.created::DATE AS created,
> to_char(u.created,'Dy') AS d,
> COUNT(*) AS total
> FROM users u
> GROUP BY 1,2),
> userdays_avg AS
> (SELECT extract('dow'
> FROM created) AS nDay,
> d AS "Day",
> AVG(total) AS "New Users"
> FROM userdays
> GROUP BY 1,2
> ORDER BY 1)
> SELECT "Day", "New Users"
> FROM userdays_avg
> ORDER BY nDay;
>
>
> But you can see it wont give correct results since (for example) Monday's
> with no new users will not be counted in the average as 0.
One way to handle this is to union your query with one that has a
generate_series (0,6) for the DOW column and nulls for the other
columns, then treat both that and your original query as a subquery
and do your averages, since nulls are not included in either count()
or average() aggregates:
select dow, count(*), avg(some_column) from (
select extract ('dow' from some_date) as dow, some_number from some_table
union select generate_series(0,6) as dow, null as some_number) as x
group by 1 order by 1
--
Mike Nolan
nolan@tssi.com
One way to handle this is to union your query with one that has a> But you can see it wont give correct results since (for example) Monday's
> with no new users will not be counted in the average as 0.
generate_series (0,6) for the DOW column and nulls for the other
columns, then treat both that and your original query as a subquery
and do your averages, since nulls are not included in either count()
or average() aggregates:
select dow, count(*), avg(some_column) from (
select extract ('dow' from some_date) as dow, some_number from some_table
union select generate_series(0,6) as dow, null as some_number) as x
group by 1 order by 1
I'm not seeing how this is at all useful.
As you said, the average function ignores the null introduced by the union so the final answer with and without the union is the same.
No matter how you work a "generate_series(0,6)" based query it will never be able to give a correct answer expect accidentally. Each actual missing date contributes a ZERO to the numerator and a ONE to the denominator in the final division that constitutes the mean-average. You must have those dates.
In a series with four Mondays ( 4, 0, 0, 8 ) the average desired is 3, not 6 (or 4). There is no way to make the denominator (number of Mondays) 4 instead of 3 by using generate_series(0,6).
David J.
On Mon, Jul 6, 2015 at 5:50 PM, David G. Johnston <david.g.johnston@gmail.com> wrote:
One way to handle this is to union your query with one that has a> But you can see it wont give correct results since (for example) Monday's
> with no new users will not be counted in the average as 0.
generate_series (0,6) for the DOW column and nulls for the other
columns, then treat both that and your original query as a subquery
and do your averages, since nulls are not included in either count()
or average() aggregates:
select dow, count(*), avg(some_column) from (
select extract ('dow' from some_date) as dow, some_number from some_table
union select generate_series(0,6) as dow, null as some_number) as x
group by 1 order by 1I'm not seeing how this is at all useful.As you said, the average function ignores the null introduced by the union so the final answer with and without the union is the same.No matter how you work a "generate_series(0,6)" based query it will never be able to give a correct answer expect accidentally. Each actual missing date contributes a ZERO to the numerator and a ONE to the denominator in the final division that constitutes the mean-average. You must have those dates.In a series with four Mondays ( 4, 0, 0, 8 ) the average desired is 3, not 6 (or 4). There is no way to make the denominator (number of Mondays) 4 instead of 3 by using generate_series(0,6).David J.
The real problem is the DOW is not the field where the missing data is, it is in the underlying date field.
Day New Users
--- ----------------------
Sun 2.0000000000000000
Mon 4.5000000000000000
Tue 2.0000000000000000
Wed 4.5000000000000000
Thu 1.00000000000000000000
Fri 3.0000000000000000
Sat 3.0000000000000000
Here's the SQL to generate the missing day and do the average function by hand:
select "Day", "New Users" from (
select dow, "Day", sum(total) / count(distinct created) as "New Users"from
(select extract(dow from created) as dow,
to_char(created,'Dy') as "Day", created, created2, total from
(select created, created as created2, count(*) as total from users
group by 1, 2
union
(select generate_series('2015-06-01 00:00'::timestamp,
'2015-06-14'::timestamp,'1 day')::date, null, 0) ) as x) as y
group by 1, 2) as z
order by dow
Day New Users
--- ----------------------
Sun 1.00000000000000000000
Mon 4.5000000000000000
Tue 2.0000000000000000
Wed 4.5000000000000000
Thu 1.00000000000000000000
Fri 3.0000000000000000
Sat 3.0000000000000000
--
Mike Nolan
nolan@tssi.comHere's a minor refinement that doesn't require knowing the range of dates in the users table:
(select created, created as created2, count(*) as total from users
group by 1, 2
union
(select generate_series(
(select min(created)::timestamp from users),
(select max(created)::timestamp from users),
'1 day')::date, null, 0) ) as x) as y
group by 1, 2) as z
order by dow
Day New Users
--- ----------------------
Sun 1.00000000000000000000
Mon 4.5000000000000000
Tue 2.0000000000000000
Wed 4.5000000000000000
Thu 1.00000000000000000000
Fri 3.0000000000000000
Sat 3.0000000000000000
--
(select created, created as created2, count(*) as total from users
group by 1, 2
union
(select generate_series(
(select min(created)::timestamp from users),
(select max(created)::timestamp from users),
'1 day')::date, null, 0) ) as x) as y
group by 1, 2) as z
order by dow
Day New Users
--- ----------------------
Sun 1.00000000000000000000
Mon 4.5000000000000000
Tue 2.0000000000000000
Wed 4.5000000000000000
Thu 1.00000000000000000000
Fri 3.0000000000000000
Sat 3.0000000000000000
--
Mike Nolan