0
SELECT (
    (SUM(t_price) - SUM(a_dvpay)) - (
        SELECT SUM(inst_amount)
        FROM installment
        WHERE uid = user_info.uid
    )        
) AS remaining
FROM user_info
WHERE faculty_id = @faculty_id
GROUP BY uid;

This SQL query return the remaining result in multiple rows. I want to sum the values of remaining as Total remaining. SQL Query Result

  • Alias the result and sum that column – Sourav Sachdeva Oct 9 '17 at 4:15
  • 1
    mysql and sql-server refers different, pls. choose any one of them. – Yogesh Sharma Oct 9 '17 at 4:19
  • what is the expected result ? – Squirrel Oct 9 '17 at 4:23
  • Check the screen shot you will clear what i want...my expected result is 165450 + 22000 = 187450 – Sam Malik Oct 9 '17 at 4:29
1

Remove the Group By clause.

SELECT ((sum(t_price) - sum(a_dvpay))-(select sum(inst_amount) from installment where uid=user_info.uid)) as remaining  FROM user_info WHERE (faculty_id = @faculty_id)**strong text**
0

So it will be the sum of the amount(s) inside installment table, and I assume that not all members under a given faculty_id has a record there. In order to cater that, I used COALESCE to handle NULLS in the installment table:

SELECT ui.uid, 
    (SUM(ui.t_price) - SUM(ui.a_dvpay)) - SUM(COALESCE(i.inst_amount, 0)) `remaining`
FROM user_info ui
    LEFT JOIN installment i ON i.uid = ui.uid
WHERE faculty_id = @faculty_id
GROUP BY ui.uid;
  • faculty id is same in all cases '1'..but your query give different result on my expectation. – Sam Malik Oct 9 '17 at 4:26
  • You can check using the formula you have given, I just replicate the formula that you have used in the question – Avidos Oct 9 '17 at 4:32
0

I found a solution that return what you needed:

SELECT SUM(remaining) FROM (
    SELECT sum(t_price - a_dvpay) as remaining  
    FROM user_info
    WHERE faculty_id = 1
    UNION
    SELECT -SUM(COALESCE(inst_amount,0))
    FROM installment inst
    WHERE uid IN (SELECT DISTINCT user_info.uid FROM user_info WHERE faculty_id = 1)
) x

Test it: http://sqlfiddle.com/#!9/e6d341/11

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