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I have a complex query(containing multiple joins, unions) that returns a set of rows containing id, day, hr, amount. The output of the query looks like this:

id day    hr  amount 
1   1      1   10       
1   1      2   25       
1   1      3   30        
1   2      1   10       
1   2      2   40       
1   2      2   30        
2   1      1   10       
2   1      2   15        
2   1      3   30       
2   2      1   10       
2   2      2   20      
2   2      2   30  

I need to find cumulative total for each id, for every hour of the day. The output should be like this:

id day    hr  amount cumulative total
1   1      1   10       10
1   1      2   25       35
1   1      3   30       65 
1   2      1   10       10
1   2      2   40       50
1   2      2   30       80 
2   1      1   10       10
2   1      2   15       25 
2   1      3   30       55
2   2      1   10       10
2   2      2   20       30
2   2      2   30       60

My initial query that produces the first output looks like this:

select id, day, hr, amount from
( //multiple joins on multiple tables)a
left join
(//unions on multiple tables)b
on a.id=b.id;

What's sql query to get the cumulative sum as described in the second output? SET should not be used in the solution.

Thanks.

share|improve this question
    
Before more convoluted (but possible) solutions: have you considered (a) if WITH ROLLUP is enough for your needs, and (b) how more easily this may be attainable in application code rather then SQL? –  Wrikken Jul 15 '13 at 21:47
2  
@Wrikken: a) WITH ROLLUP adds extra rows to the output, I need it in the form of a column, is it possible to achieve it using WITH ROLLUP? b) I agree that it will be simpler in the application code, but I'm faced with a situation where it has to be done in the SQL itself. –  user1051577 Jul 15 '13 at 21:56
    
I would use a stored procedure that does something like this: 1. Create a temp table with the result of your query, 2. Add a column to the temp table, 3. Update each row of the temp table with the cumulative sum. –  Barranka Jul 15 '13 at 21:59
    
What you ask this way "I need to find cumulative total for each id, for every hour of the day" is NOT what the table displays. You have ID 1, DAY 2, HR 2 twice in your sample output. It doesn't seem to be possible to solve it that way without using variables, as you don't actually have a Primary Key to use in that table. –  Mosty Mostacho Jul 15 '13 at 22:12
1  
The answers provided for the "duplicate question" are insufficient; the queries in those answers will not produce the resultset specified in this question. (One big issue is that those queries do not produce a running total for each group, and reset it for the next group, as specified in this question. Those queries only produce a running total for the entire set. This is significantly different question. –  spencer7593 Jul 16 '13 at 14:01

2 Answers 2

MySQL doesn't provide the type analytic function you would use to get a running "cumulative sum", like the analytic functions available in other DBMS (like Oracle or SQL Server.)

But, it is possible to emulate some analytic functions, using MySQL.

There are (at least) two workable approaches:

One is to use a correlated subquery to get the subtotal. This approach can be expensive on large sets, and complicated if the predicates on the outer query are complicated. It really depends on how complicated that "multiple joins on multiple tables" is. (Unfortunately, MySQL also does not not support CTEs either.)

The other approach is to make use of MySQL user variables, to do some control break processing. The "trick" here is to the results from your query sorted (using an ORDER BY) and then wrapping your query in another query.

I'll give an example of the latter approach.

Because of the order that MySQL performs operations, the cumulative_total column needs to be computed before the value from id and day from the current row are saved into user variables. It's just easiest to put this column first.

The inline view aliased as i (in the query below) is just there to initialize the user variables, just in case these are already set in the session. If those already have values assigned, we want to ignore their current values, and the easiest way to do that is to initialize them.

Your original query gets wrapped in parenthesis, and is given an alias, c in the example below. The only change to your original query is the addition of an ORDER BY clause, so we can be sure that we process the rows from the query in sequence.

The outer select checks whether the id and day value from the current row "match" the previous row. If they do, we add the amount from the current row to the cumulative subtotal. If they don't match, then we reset the the cumulative subtotal to zero, and add the amount from the current row (or, more simply, just assign the amount from the current row).

After we have done the computation of the cumulative total, we save the id and day values from the current row into user variables, so they are available when we process the next row.

For example:

SELECT IF(@prev_id = c.id AND @prev_day = c.day
         ,@cumtotal := @cumtotal + c.amount
         ,@cumtotal := c.amount) AS cumulative_total
     , @prev_id  := c.id  AS `id`
     , @prev_day := c.day AS `day`
     , c.hr
     , c.amount AS `amount'
  FROM ( SELECT @prev_id  := NULL
              , @prev_day := NULL
              , @subtotal := 0
       ) i
  JOIN (

         select id, day, hr, amount from
         ( //multiple joins on multiple tables)a
         left join
         (//unions on multiple tables)b
         on a.id=b.id

         ORDER BY 1,2,3
       ) c

If it's necessary to return the columns in a different order, with cumulative total as the last column, then one option is to wrap that whole statement in a set of parens, and use that query as an inline view:

SELECT d.id
     , d.day
     , d.hr
     , d.amount
     , d.cumulative_total
FROM (
       // query from above
     ) d
share|improve this answer
    
you can write a simple query... look at the answer below, it is a simply query that does the trick. –  SQL.injection Jul 15 '13 at 22:58
    
In the simple query, the OP original query would need to be specified twice, in place of "foo". (If any change is made to the original query, it will need to be modified in two places.) The output from the simple query does not meet the specification, at least in the case of the fifth row in the OP example, since there are two rows id=1 day=2 hr=2. According to the spec, the subtotal of the fifth row should not include the amount from the sixth row. –  spencer7593 Jul 15 '13 at 23:08
    
+1 Quite a nice approach! –  Barranka Jul 15 '13 at 23:15
    
This solution solved my problem! Thanks! –  user1051577 Jul 15 '13 at 23:47
1  
N.B. The answers provided in the question that was marked as a "duplicate" will not produce the resultset you specified. Those will produce a running total for the entire set, and not for each group. Those queries also do not handle the duplicate instances of the grouping key. –  spencer7593 Jul 16 '13 at 14:05

here you go, here is your culminative total...

select f1.id, f1.day, f1.hr, f1.amount, sum(f2.amount) as culminative_total from foo f1
 inner join foo f2 on (f1.day = f2.day and f1.id=f2.id)
 where f2.hr <= f1.hr
 group by f1.id, f1.day, f1.hour;
share|improve this answer
2  
This does not return the specified resultset if there are duplicates of (id, day, hr), as in the fifth and sixth rows in the OP example. In the OP case, foo is not a simple table, but rather a query that involves multiple tables. This query will need to be specified twice (in place of foo), which means MySQL will materialize that query twice. Unfortunately, MySQL does not yet support Common Table Expressions (CTE) which would be one way to avoid duplicating the subquery. –  spencer7593 Jul 15 '13 at 23:14
    
very sharp indeed :) didn't noticed that detail in the initial data –  SQL.injection Jul 15 '13 at 23:17
    
If we did have a guarantee of uniqueness (on the columns we need for the join), then the semi-join approach used by the query in this answer would return the specified result. –  spencer7593 Jul 15 '13 at 23:30
    
yeah, I know. I didn't noticed the duplicates when I did my initial inspection of the problem... –  SQL.injection Jul 16 '13 at 7:59

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