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I have a SQL table, one row is the revenue in the specific day, and I want to add a new column in the table, the value is the incremental (could be positive or negative) revenue between a specific day and the previous day, and wondering how to implement by SQL?

Here is an example,

original table,

...
Day1 100
Day2 200
Day3 150
...

new table (add incremental column at the end, and for first column, could assign zero),

Day1 100 0
Day2 200 100
Day3 150 -50

I am using MySQL/MySQL Workbench.

thanks in advance, Lin

  • You might want to simulate a LEAD or LAG function: stackoverflow.com/questions/29556063/mysql-lag-lead-function – A Hocevar Sep 2 '15 at 7:06
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    Do your table have a primary key or unique key column. – Praveen Sep 2 '15 at 7:10
  • @Praveen, yes, have an auto-incremental integer transaction ID column, to make it simple, I ignore it in my question. Any advice is appreciated. :) – Lin Ma Sep 2 '15 at 7:11
3
SELECT a.day, a.revenue , a.revenue-COALESCE(b.revenue,0) as previous_day_rev 
FROM DailyRevenue a 
LEFT JOIN DailyRevenue b on a.day=b.day-1

the query assume that each day has one record in the table. If there could be more than 1 row for each day you need to create a view that sums up all days grouping by day.

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    no, it is the same table, a and b are only two different aliases to allow a self-join – A Hocevar Sep 2 '15 at 7:25
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    Table a and Table b are the same table. The table joins itself :). a and b are just alias to the same table. – Nir-Z Sep 2 '15 at 7:26
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    Replace 'table' with DailyRevenue (your table name) – Nir-Z Sep 2 '15 at 7:28
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    As an aside, this approach assumes day is numeric, and sequential with no gaps. It will also fail to print either the first or last day (not sure which and I have a headache so not the best time to be trying to look at edge cases!) – Jon Marnock Sep 3 '15 at 4:41
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    If the day is datetime, just use dateadd function (assuming that the time of all days in the same). About the edge case there is only one: the last row which wont have a match in table b. In this case left join will return null in b.revenue so use COALESCE(b.revenue,0). – Nir-Z Sep 3 '15 at 6:06
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If you're okay with re-ordering the columns slightly, something like this is pretty simple to understand:

SET @prev := 0;
SELECT day, revenue - @prev AS diff, @prev := revenue AS revenue
FROM revenue ORDER BY day ASC;

The trick is that we calculate the difference to the previous first, then set the previous to the current and display it as the current in one step.

Note, this depends on the order being correct since the calculations are done during the returning of the rows, so you need to make sure you have an ORDER BY clause that returns the days in the correct order.

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    = in MySQL does a comparison, so we need := to do assignment (otherwise @prev = revenue would return either a 0 or a 1, depending on if it did or didn't match). – Jon Marnock Sep 2 '15 at 8:46
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    I should probably also add a short warning about setting and reading variables in the same statement as per dev.mysql.com/doc/refman/5.5/en/user-variables.html - technically the order is undefined. If you really want to do this safely, the best way is in your code that reads the returned query results. – Jon Marnock Sep 3 '15 at 4:47
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    Sorry, I just meant that if you're looking for a much more stable approach to doing this, you should just have your query return only the day and the amount, and then in your PHP or C# or whatever programming language you're using, have it calculate the difference to the previous day's amount as it iterates over the resultset it gets returned from the mysql libraries. – Jon Marnock Sep 3 '15 at 8:02
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    Yes to both :) I guess what I'm saying is, the above has worked for at least a decade, and I see no reason why it would suddenly fail to work, but you just have to be careful to understand exactly how and why the above works, and what the limitations are on how you construct the query. For example, adding having statements that refer to either of the two columns with the variables in them may break the query. – Jon Marnock Sep 7 '15 at 0:02
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    The best place to do this is in your application (not the SQL). If you must do it in the SQL for some reason, the only safe way is to do a well defined self join. This relies on proper ordering of the join keys so there's always a "prev" match, and you'll need to think about what you do for the first day (where there is no "prev" day in the join condition) - probably a left join with conditional logic in the difference column to handle the null. This of course makes the requirement for no-gaps on the day sequences even more important. – Jon Marnock Sep 7 '15 at 1:29
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Try;

select 
    t.date_col, t.val_col,
    case when t1.val_col is null then 0
    else t.val_col - t1.val_col end diff
from (
    select t.* , @r := @r + 1 lev
    from tbl t,
    (select @r := 0) r
    order by t.date_col
) t
left join (
    select t.* , @r1 := @r1 + 1 lev
    from tbl t,
    (select @r1 := 1) r
    order by t.date_col 
) t1
on t.lev = t1.lev

This will calculate value diff even if there is a missing date

  • where do you assign @r to be the value of column revenue? Thanks. – Lin Ma Sep 2 '15 at 8:06
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    Its just act as row_number.. for fist sub query starts with 1 and for second start with 2; joining them like @r = @r2 will help t.val_col - t1.val_col to evaluate, where` t1.val_col` point to next col fromt.val_col – Praveen Sep 2 '15 at 8:39
  • Hi Praveen, dumb question, why you write assignment statement ((select @r1 := 1) r) inside select-from-order by query itself? – Lin Ma Sep 2 '15 at 8:41
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    That is where @r1 is initialized – Praveen Sep 2 '15 at 9:03
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