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I am a newbie in mysql and php and not so experienced yet in making complicated queries. Thanks of some users on stackoverflow below query is now successfully working. the last bit I am missing now is to include calculating the difference between total from q1 and costs from q2 in this query. Thanks for your help in advance. cheers

Select * from ( SELECT invoice.eventid, invoice.invoiceno, event.clientid, client.clientid, clientname, 
gross_amount, vat, total, due 
FROM client, invoice, event 
WHERE event.eventid = invoice.eventid 
AND event.clientid = client.clientid) 
as q1

inner JOIN (SELECT event_ma.eventid, 
salary.staffid, Sum(cost_hour * Time_to_sec(Timediff(hours, pause))) / 3600 AS costs 
FROM salary 
JOIN event_ma ON salary.staffid = event_ma.staffid GROUP BY event_ma.eventid) 
as q2  
ON q1.eventid = q2.eventid 

GROUP BY q1.eventid
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Don't use "SELECT *". Write out the names of the columns you actually want returned... "SELECT q1.id, etc...". Then the solution to your problem may magically occur to you! –  Strawberry Apr 28 '13 at 7:18

1 Answer 1

Add the calculated field in your primary SELECT-statement:

Select *, (q1.total - q2.costs) AS difference
from ( SELECT invoice.eventid, invoice.invoiceno, event.clientid, client.clientid, clientname, 
gross_amount, vat, total, due 
FROM client, invoice, event 
WHERE event.eventid = invoice.eventid 
AND event.clientid = client.clientid) 
as q1

inner JOIN (SELECT event_ma.eventid, 
salary.staffid, Sum(cost_hour * Time_to_sec(Timediff(hours, pause))) / 3600 AS costs 
FROM salary 
JOIN event_ma ON salary.staffid = event_ma.staffid GROUP BY event_ma.eventid) 
as q2  
ON q1.eventid = q2.eventid 

GROUP BY q1.eventid
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This is perfect. Thank you. And so easy at the end. –  Sandra Grassl Apr 28 '13 at 7:32
    
Thank you. Feel free to accept this as the answer, as a higher accept rate will help you get answers in the future. –  Marty McVry Apr 28 '13 at 16:10

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