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How do you create a moving average in SQL?

Current table:

Date             Clicks 
2012-05-01       2,230
2012-05-02       3,150
2012-05-03       5,520
2012-05-04       1,330
2012-05-05       2,260
2012-05-06       3,540
2012-05-07       2,330

Desired table or output:

Date             Clicks    3 day Moving Average
2012-05-01       2,230
2012-05-02       3,150
2012-05-03       5,520          4,360
2012-05-04       1,330          3,330
2012-05-05       2,260          3,120
2012-05-06       3,540          3,320
2012-05-07       2,330          3,010
share|improve this question
    
What database system are you using? –  George W Bush May 17 '12 at 14:57
    
@BrianWebster: he said that in a comment to my (now deleted) post: He is using Hive. But you removed the tag for it. –  a_horse_with_no_name May 17 '12 at 15:48
    
Ok, fixed - I honestly didn't realize that was a database system –  George W Bush May 17 '12 at 15:52

9 Answers 9

up vote 7 down vote accepted

One way to do this is to join on the same table a few times.

select
 (Current.Clicks 
  + isnull(P1.Clicks, 0)
  + isnull(P2.Clicks, 0)
  + isnull(P3.Clicks, 0)) / 4 as MovingAvg3
from
 MyTable as Current
 left join MyTable as P1 on P1.Date = DateAdd(day, -1, Current.Date)
 left join MyTable as P2 on P2.Date = DateAdd(day, -2, Current.Date)
 left join MyTable as P3 on P3.Date = DateAdd(day, -3, Current.Date)

Adjust the DateAdd component of the ON-Clauses to match whether you want your moving average to be strictly from the past-through-now or days-ago through days-ahead.

  • This works nicely for situations where you need a moving average over only a few data points.
  • This is not an optimal solution for moving averages with more than a few data points.
share|improve this answer
    
left join those. (see the first two have none) –  Crisfole May 16 '12 at 19:01
    
Agreed, with isnull()'s –  George W Bush May 16 '12 at 19:03
1  
Isn't doing 4 joins going to be a pretty costly operation for large tables? –  Donny P May 16 '12 at 20:13
    
Depends on the data, but in my experience this is a pretty speedy operation. –  George W Bush May 16 '12 at 20:14

This is an Evergreen Joe Celko question. I ignore which DBMS platform is used. But in any case Joe was able to answer more than 10 years ago with standard SQL.

Joe Celko SQL Puzzles and Answers citation: "That last update attempt suggests that we could use the predicate to construct a query that would give us a moving average:"

SELECT S1.sample_time, AVG(S2.load) AS avg_prev_hour_load
FROM Samples AS S1, Samples AS S2
WHERE S2.sample_time
BETWEEN (S1.sample_time - INTERVAL 1 HOUR)
AND S1.sample_time
GROUP BY S1.sample_time;

Is the extra column or the query approach better? The query is technically better because the UPDATE approach will denormalize the database. However, if the historical data being recorded is not going to change and computing the moving average is expensive, you might consider using the column approach.

MS SQL Example:

CREATE TABLE #TestDW
( Date1 datetime,
  LoadValue Numeric(13,6)
);

INSERT INTO #TestDW VALUES('2012-06-09' , '3.540' );
INSERT INTO #TestDW VALUES('2012-06-08' , '2.260' );
INSERT INTO #TestDW VALUES('2012-06-07' , '1.330' );
INSERT INTO #TestDW VALUES('2012-06-06' , '5.520' );
INSERT INTO #TestDW VALUES('2012-06-05' , '3.150' );
INSERT INTO #TestDW VALUES('2012-06-04' , '2.230' );

SQL Puzzle query:

SELECT S1.date1,  AVG(S2.LoadValue) AS avg_prev_3_days
FROM #TestDW AS S1, #TestDW AS S2
WHERE S2.date1
    BETWEEN DATEADD(d, -2, S1.date1 )
    AND S1.date1
GROUP BY S1.date1
order by 1;
share|improve this answer
    
Thanks for the info - but I'm having a hard time translating this to see how it solves the question. Can you give the query you would use for the table in the question? –  Donny P May 16 '12 at 20:58
    
This is even better as it can be modified to find out Moving average of N months.. –  Faiz Nov 14 '12 at 16:22
select *
        , (select avg(c2.clicks) from #clicks_table c2 
            where c2.date between dateadd(dd, -2, c1.date) and c1.date) mov_avg
from #clicks_table c1
share|improve this answer

Use a different join predicate:

SELECT current.date
       ,avg(periods.clicks)
FROM current left outer join current as periods
       ON current.date BETWEEN dateadd(d,-2, periods.date) AND periods.date
GROUP BY current.date HAVING COUNT(*) >= 3

The having statement will prevent any dates without at least N values from being returned.

share|improve this answer

assume x is the value to be averaged and xDate is the date value:

SELECT avg(x) from myTable WHERE xDate BETWEEN dateadd(d, -2, xDate) and xDate

share|improve this answer

General template for rolling averages that scales well for large data sets

WITH moving_avg AS (
  SELECT 0 AS [lag] UNION ALL
  SELECT 1 AS [lag] UNION ALL
  SELECT 2 AS [lag] UNION ALL
  SELECT 3 AS [lag] --ETC
)
SELECT
  DATEADD(day,[lag],[date]) AS [reference_date],
  [otherkey1],[otherkey2],[otherkey3],
  AVG([value1]) AS [avg_value1],
  AVG([value2]) AS [avg_value2]
FROM [data_table]
CROSS JOIN moving_avg
GROUP BY [otherkey1],[otherkey2],[otherkey3],DATEADD(day,[lag],[date])
ORDER BY [otherkey1],[otherkey2],[otherkey3],[reference_date];

And for weighted rolling averages:

WITH weighted_avg AS (
  SELECT 0 AS [lag], 1.0 AS [weight] UNION ALL
  SELECT 1 AS [lag], 0.6 AS [weight] UNION ALL
  SELECT 2 AS [lag], 0.3 AS [weight] UNION ALL
  SELECT 3 AS [lag], 0.1 AS [weight] --ETC
)
SELECT
  DATEADD(day,[lag],[date]) AS [reference_date],
  [otherkey1],[otherkey2],[otherkey3],
  AVG([value1] * [weight]) / AVG([weight]) AS [wavg_value1],
  AVG([value2] * [weight]) / AVG([weight]) AS [wavg_value2]
FROM [data_table]
CROSS JOIN weighted_avg
GROUP BY [otherkey1],[otherkey2],[otherkey3],DATEADD(day,[lag],[date])
ORDER BY [otherkey1],[otherkey2],[otherkey3],[reference_date];
share|improve this answer
    
interesting approach for weighted. Wouldn't work (well) for more discrete time points (timestamp rather date) though –  msciwoj May 25 at 9:38
    
@msciwoj Outside of academic exercises, what purpose would a fixed weight rolling average over non-uniform intervals have? Wouldn't you either histo the data first or calculate weight as a function of interval size? –  Anon May 26 at 21:26
    
by all means uniform. You just throw to the appropriate weight bucket depending on the distance from the current time point. For instance "take weight=1 for datapoints within 24hrs from current datapoint; weight=0.5 for datapoints within 48hrs…". That case it matters how much consecutive datapoints (like 6:12am and 11:48pm ) are distant from each other… A use case I can think of would be an attempt to smooth the histogram wherever datapoints are not dense enough –  msciwoj May 27 at 22:22
select t2.date, round(sum(ct.clicks)/3) as avg_clicks
from
(select date from clickstable) as t2,
(select date, clicks from clickstable) as ct
where datediff(t2.date, ct.date) between 0 and 2
group by t2.date

Example here.

Obviously you can change the interval to whatever you need. You could also use count() instead of a magic number to make it easier to change, but that will also slow it down.

share|improve this answer

For the purpose, I'd like to create an auxiliary/dimensional date table like

create table date_dim(date date, date_1 date, dates_2 date, dates_3 dates ...)

while date is the key, date_1 for this day, date_2 contains this day and the day before; date_3...

Then you can do the equal join in hive.

Using a view like:

select date, date               from date_dim
union all
select date, date_add(date, -1) from date_dim
union all
select date, date_add(date, -2) from date_dim
union all
select date, date_add(date, -3) from date_dim
share|improve this answer

NOTE: THIS IS NOT AN ANSWER but an enhanced code sample of Diego Scaravaggi's answer. I am posting it as answer as the comment section is insufficient. Note that I have parameter-ized the period for Moving aveage.

declare @p int = 3
declare @t table(d int, bal float)
insert into @t values
(1,94),
(2,99),
(3,76),
(4,74),
(5,48),
(6,55),
(7,90),
(8,77),
(9,16),
(10,19),
(11,66),
(12,47)

select a.d, avg(b.bal)
from
       @t a
       left join @t b on b.d between a.d-(@p-1) and a.d
group by a.d
share|improve this answer

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