83

I have a table that looks like this:

id   count
1    100
2    50
3    10

I want to add a new column called cumulative_sum, so the table would look like this:

id   count  cumulative_sum
1    100    100
2    50     150
3    10     160

Is there a MySQL update statement that can do this easily? What's the best way to accomplish this?

9 Answers 9

116

Using a correlated query:


  SELECT t.id,
         t.count,
         (SELECT SUM(x.count)
            FROM TABLE x
           WHERE x.id <= t.id) AS cumulative_sum
    FROM TABLE t
ORDER BY t.id

Using MySQL variables:


  SELECT t.id,
         t.count,
         @running_total := @running_total + t.count AS cumulative_sum
    FROM TABLE t
    JOIN (SELECT @running_total := 0) r
ORDER BY t.id

Note:

  • The JOIN (SELECT @running_total := 0) r is a cross join, and allows for variable declaration without requiring a separate SET command.
  • The table alias, r, is required by MySQL for any subquery/derived table/inline view

Caveats:

  • MySQL specific; not portable to other databases
  • The ORDER BY is important; it ensures the order matches the OP and can have larger implications for more complicated variable usage (IE: psuedo ROW_NUMBER/RANK functionality, which MySQL lacks)
9
  • I would add "ORDER BY t.id ASC" to the main query, just to make sure it'll always work
    – Wacek
    Apr 1, 2010 at 22:20
  • My first thought also was to add ORDER BY. But it does not matter. Until addition turns into non-associative, at least :)
    – Dercsár
    Apr 2, 2010 at 7:24
  • @OMG Poines: I think you need to use a SELECT in the JOIN (SELECT @running_total := 0) part of the variables example. Apr 28, 2010 at 6:48
  • 1
    for "using a correlated query" where does your table x come from ? Sep 12, 2016 at 15:40
  • Unless there is optimization happening internally, the correlated subquery is the equivalent of a triangular join performing in O(N^2) time--which will not scale.
    – Marc L.
    Dec 2, 2016 at 16:18
98

If performance is an issue, you could use a MySQL variable:

set @csum := 0;
update YourTable
set cumulative_sum = (@csum := @csum + count)
order by id;

Alternatively, you could remove the cumulative_sum column and calculate it on each query:

set @csum := 0;
select id, count, (@csum := @csum + count) as cumulative_sum
from YourTable
order by id;

This calculates the running sum in a running way :)

7
  • 7
    Use a cross join to define the variable without needing to use SET.
    – OMG Ponies
    Apr 1, 2010 at 22:12
  • My table has 36 million records, so this was really helpful to speed things up! Apr 2, 2010 at 1:20
  • Note that ordering by cumulative_sum might force full table scan.
    – matt
    Sep 25, 2012 at 9:23
  • 1
    This does work and seems quite fast; any suggestions how this can be extended to do a cumulative sum in a group? e.g. group by Name or similar, and then do a cumulative sum only for records with the same name
    – zaitsman
    Aug 31, 2017 at 12:36
  • 1
    Prefer answer of OLAP function in MySQL 8.0+, as stated in stackoverflow.com/a/52278657/3090068
    – Yuki Inoue
    Sep 19, 2018 at 7:03
34

MySQL 8.0/MariaDB supports windowed SUM(col) OVER():

SELECT *, SUM(cnt) OVER(ORDER BY id) AS cumulative_sum
FROM tab;

Output:

┌─────┬──────┬────────────────┐
│ id  │ cnt  │ cumulative_sum │
├─────┼──────┼────────────────┤
│  1  │ 100  │            100 │
│  2  │  50  │            150 │
│  3  │  10  │            160 │
└─────┴──────┴────────────────┘

db<>fiddle

1
  • 2
    I am looking for Cumulative sum using windows function.Thank you. Aug 30, 2019 at 6:13
3
UPDATE t
SET cumulative_sum = (
 SELECT SUM(x.count)
 FROM t x
 WHERE x.id <= t.id
)
1
  • 3
    Although the OP did ask for an update, this is denormalized and will probably be inconvenient to maintain correctly. Apr 1, 2010 at 22:05
3
select Id, Count, @total := @total + Count as cumulative_sum
from YourTable, (Select @total := 0) as total ;
2
  • 4
    Please explain your answer Oct 27, 2015 at 0:26
  • The answer works and is one liner. It also initializes/resets the variable to zero at the begining of select. Feb 13, 2017 at 14:41
2

Sample query

SET @runtot:=0;
SELECT
   q1.d,
   q1.c,
   (@runtot := @runtot + q1.c) AS rt
FROM
   (SELECT
       DAYOFYEAR(date) AS d,
       COUNT(*) AS c
    FROM  orders
    WHERE  hasPaid > 0
    GROUP  BY d
    ORDER  BY d) AS q1
1

You could also create a trigger that will calculate the sum before each insert

delimiter |

CREATE TRIGGER calCumluativeSum  BEFORE INSERT ON someTable
  FOR EACH ROW BEGIN

  SET cumulative_sum = (
     SELECT SUM(x.count)
        FROM someTable x
        WHERE x.id <= NEW.id
    )

    set  NEW.cumulative_sum = cumulative_sum;
  END;
|

I have not tested this

0
1

select id,count,sum(count)over(order by count desc) as cumulative_sum from tableName;

I have used the sum aggregate function on the count column and then used the over clause. It sums up each one of the rows individually. The first row is just going to be 100. The second row is going to be 100+50. The third row is 100+50+10 and so forth. So basically every row is the sum of it and all the previous rows and the very last one is the sum of all the rows. So the way to look at this is each row is the sum of the amount where the ID is less than or equal to itself.

2
  • 2
    While this might solve the problem, it's better to explain it a bit so it will benefit others :)
    – Tiw
    Feb 22, 2019 at 2:40
  • this isn't a co-related subquery or a subquery for that matter... co-related subquery follows SELECT ...., (SELECT .... FROM table2 WHERE table2.id = table1.id ) FROM table1 what you have is a window query.. Feb 23, 2019 at 23:47
0
  select t1.id, t1.count, SUM(t2.count) cumulative_sum
    from table t1 
        join table t2 on t1.id >= t2.id
    group by t1.id, t1.count

Step by step:

1- Given the following table:

select *
from table t1 
order by t1.id;

id  | count
 1  |  11
 2  |  12   
 3  |  13

2 - Get information by groups

select *
from table t1 
    join table t2 on t1.id >= t2.id
order by t1.id, t2.id;

id  | count | id | count
 1  | 11    | 1  |  11

 2  | 12    | 1  |  11
 2  | 12    | 2  |  12

 3  | 13    | 1  |  11
 3  | 13    | 2  |  12
 3  | 13    | 3  |  13

3- Step 3: Sum all count by t1.id group

select t1.id, t1.count, SUM(t2.count) cumulative_sum
from table t1 
    join table t2 on t1.id >= t2.id
group by t1.id, t1.count;


id  | count | cumulative_sum
 1  |  11   |    11
 2  |  12   |    23
 3  |  13   |    36
1
  • Added some step by step to understand the final query May 20, 2020 at 14:13

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