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Can anyone post a SQL query for Calculating Total No. of Orders per Day?

Here are the Columns along with their data in my Database.


order_id    order_placed_date	order_total  
 - 1    12/30/2008 12:06:24 AM	2499.99  
 - 2    2/3/2009 1:57:17 AM	199.99  
 - 3    2/3/2009 1:58:27 AM	449.99  
 - 4    5/3/2009 1:58:48 AM	299.99  
 - 5    6/3/2009 2:00:31 AM	359.94
 - 6    6/3/2009 2:01:47 AM	279.97
 - 7    6/3/2009 2:02:31 AM	1359.94
 - 9    7/1/2009 2:21:18 PM	5099.98
 - 10   7/1/2009 2:21:36 PM	2621.97
 - 11   7/2/2009 2:22:18 PM	2169.95
 - 12   7/3/2009 2:23:29 PM	2249.95
 - 13   7/4/2009 2:24:24 PM	5509.95
 - 14   7/5/2009 12:15:17 AM	449.99
 - 15   7/5/2009 12:18:08 AM	2299.99
 - 16   7/5/2009 12:18:28 AM	3999.99
 - 17   7/5/2009 12:18:45 AM	1939.99
 - 18   7/5/2009 11:58:07 PM	39.99
 - 19   7/6/2009 12:00:42 AM	1899.99
 - 20   7/6/2009 12:01:00 AM	3999.99
 - 21   7/7/2009 12:06:38 AM	199.99
 - 22   7/7/2009 12:08:31 AM	1143.97
 - 23   7/7/2009 12:09:13 AM	449.99
 - 26   7/15/2009 1:30:03 PM	5469
 - 27   7/15/2009 2:14:24 PM	329.97
 - 28   7/15/2009 6:18:47 PM	5469
 - 29   7/15/2009 10:17:36 PM	39.99


For e.g. there are 2 orders in the month of Febuary 2009

 - 2    2/3/2009 1:57:17 AM	    199.99  
 - 3    2/3/2009 1:58:27 AM	    449.99

I need a sql query which would calculate and show the total amount per day. So for 3rd of Feb 2009, the total would be 699.98

I need to display Total Order Amount per day in a Chart

If it would be easier to do it with PHP, do mention it as well.


UPDATE:
I would like to clarify that I needed the Total Amount Per Day in the Present Month. I forgot to mention that in my initial question.

So i udpated Peter's query to get Total No. of Orders + Total Amount per Day in this Month.

Please, let me know if it needs any correction or is there a better and shorter way of doing it.


SELECT date(order_placed_date), COUNT(order_id) AS num_orders, SUM(order_total) AS daily_total
FROM orders
WHERE order_placed_date>=date_sub(current_date, INTERVAL 31 DAY)
GROUP BY date(order_placed_date)
share|improve this question
    
would the day be a parameter? or would it be tied to today? or would it return a table of "date" / "total for that day"? –  NikolaiDante Jul 15 '09 at 18:33

4 Answers 4

up vote 8 down vote accepted

MySQL's date() function will return a DATEIME or TIMESTAMP value without any hour/minute/second info - which means you reduce the accuracy to the day of the value.

So all you need to do is group by that and then add your aggregate functions to the right columns.

SELECT date(order_placed_date)
     , COUNT(id) AS num_orders
     , SUM(order_total) AS daily_total
  FROM [Table]
 GROUP BY date(order_placed_date)
share|improve this answer
1  
Needs a from statement –  Dennis Baker Jul 15 '09 at 18:41
    
haha, thanks. Added ;) –  Peter Bailey Jul 15 '09 at 18:42
    
Excellent, worked like a charm. Now i just have to forward it to my chart. –  Ibn Saeed Jul 15 '09 at 18:52
SELECT date(order_placed_date)
     , COUNT(id) AS num_orders
     , SUM(order_total) AS daily_total
  FROM orders
 GROUP BY 1

Just copied Peter's answer but altered it so it will work. Plus shortcuted the group by.

share|improve this answer

A group by is your friend here. It can aggregate on grouped rows. An example query would be:

SELECT order_placed_date, SUM(order_total)
  FROM orders
 GROUP BY order_placed_date

Of course, in your example you'd probably want to extract just the day/month/year part using the DATE() function, and group by that.

share|improve this answer
    
This won't work because the order placed fate is a datetime field and will group by seconds. He also asked for SUM not AVG. –  Dennis Baker Jul 15 '09 at 18:40
    
I noticed that a minute after posting the answer and edited accordingly. –  MoshiBin Jul 15 '09 at 21:39

I don't know what it is in MYSSQL but in MSSQL it would be this,

select 
datepart(yyyy, order_placed_date), 
datepart(mm, order_placed_date), 
datepart(dd, order_placed_date),
sum(order_total)
from orders
group by datepart(yyyy, order_placed_date), datepart(mm, order_placed_date), datepart  (dd, order_placed_date)
share|improve this answer

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