Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

i have a DB with all transactions of my online webshop, and im trying to make a query to print out a simple financial statement.

it will be printed in a table like this:

<th>month</th>
<th>number of sales</th>
<th>money in</th>
<th>money out</th>
<th>result</th>

the query that fails with: #1111 - Invalid use of group function

SELECT 
month(transaction_date) as month,
count(incoming_amount > '0') as number_of_sales,
sum(incoming_amount / 1.25) as money_in,
sum(outgoing_amount) as money_out,
sum((incoming_amount / 1.25) - sum(outgoing_amount)) as result
FROM myDB WHERE year(timestamp) = '2011' order by id desc");

Can anyone point me in the right direction?

share|improve this question
    
Do you really have a table called myDB ? –  ypercube Aug 31 '11 at 13:18

3 Answers 3

up vote 2 down vote accepted
SELECT 
month(transaction_date) as month,
sum(if(incoming_amount>0,1,0)) as number_of_sales,
sum(incoming_amount)/1.25 as money_in,
sum(outgoing_amount) as money_out,
sum((incoming_amount/1.25)-outgoing_amount) as result
FROM myDB 
WHERE timestamp>='2011-01-01 00:00:00' AND timestamp<='2011-12-11 23:59:59'
GROUP BY month;
  1. you need to specify a column when using aggregate function
  2. year(timestamp) does not make use on mysql index (if you have define an index on timestamp)
  3. aggregate function on count(incoming_amount > '0') is incorrect
  4. sum does not looks correct too
share|improve this answer

Add group by statement:

SELECT 
month(transaction_date) as month,
count(incoming_amount > '0') as number_of_sales,
sum(incoming_amount / 1.25) as money_in,
sum(outgoing_amount) as money_out,
sum((incoming_amount / 1.25) - sum(outgoing_amount)) as result
FROM myDB WHERE year(timestamp) = '2011' GROUP BY month order by id desc");
share|improve this answer
    
thanks! ofcourse.. –  Kristian Rafteseth Aug 31 '11 at 12:49

Building on @ajreal's answer, you can speed this query up by reusing previously calculated values like so:

SELECT s.*,
       (s.money_in - s.money_out) as result 
FROM
  (
  SELECT 
    month(transaction_date) as month,
    /*  year(transaction_date) as year   */  
    sum(incoming_amount>0) as number_of_sales, -- true = 1, false = 0.
    sum(incoming_amount)/1.25 as money_in,
    sum(outgoing_amount) as money_out,
  FROM myDB 
  WHERE transaction_date BETWEEN '2011-01-01 00:00:00' AND '2011-12-31 23:59:59'
  GROUP BY /*year,*/ month DESC;
  ) AS s

If you select beyond the year, uncomment the relevant sections.
Note you can add a DESC modifier to group by to get the most recent results first.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.