I want fetch all employees salary difference for last two months.
Sample DATA: http://sqlfiddle.com/#!9/02bfb/1
Expected Output:
Query I tried:
SELECT tab1.name, tab1.emp_id
FROM a_test tab1 join a_test tab2
on tab1.id = tab2.id
group by tab1.emp_id
As I indicated in my comment a join seems to be the best solution for this:
SELECT a.emp_id,
a.salary-b.salary AS diff,
CONCAT(a.salary,' - ',b.salary) as diff_str
FROM a_test AS a
JOIN a_test AS b
ON a.emp_id = b.emp_id AND a.month_id-1 = b.month_id
WHERE a.month_id = (SELECT MAX(month_id) FROM a_test)
I've added the last line to return only the difference of the last two months. I could have done WHERE a.month_id = MONTH(NOW()) but I chose to select the last month from the data table. Note that the subquery here is not inefficient, because it is only ran once.
The result is:
emp_id diff diff_str
1 -26000 27000 - 53000
2 9000 32000 - 23000
by using join and as you stated last two month that why i use now() and month function and if month column contain month number
select t1.emp_id,t1.name,(t1.salary-t2.salary) as sal_diff from
(
select *
from a_test
where month=Month(now())
) as t1
left join
(
select * from a_test
where month=month(now())-1
) as t2
on t1.emp_id=t2.emp_id
but if you use month name then use MONTHNAME in your month column then query will be
select t1.emp_id,t1.name,(t1.salary-t2.salary) as sal_diff from
(
select *
from a_test
where month=MONTHNAME(STR_TO_DATE(month(now()), '%m'))
) as t1
left join
(
select * from a_test
where month=MONTHNAME(STR_TO_DATE(month(now())-1, '%m'))
) as t2
on t1.emp_id=t2.emp_id
You can try this:
select (parent.salary - (select ch.salary from a_test as ch where ch.emp_id = parent.emp_id order by id desc limit 1,1)) as diff, emp_id, name, salary, month from a_test as parent where month = 'feb';
Sql Fiddle: http://sqlfiddle.com/#!9/52a019/2
You can add/update where condition in main and sub query to have month dynamically. like below:
where month = MONTHNAME(CURRENT_DATE())
