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I have a table with 1 record per sale per salesperson per day

NAME  DATE
joe   1-1-13
joe   1-1-13
joe   1-1-13
dave  1-1-13
joe   1-2-13

I used this to create & populate the table

create table #sales (name varchar(10), salesdate date )
insert into #sales (name, salesdate) 
values ('joe', '01-01-2013'), ('joe','01-01-2013'), 
       ('joe', '01-01-2013'), ('dave','01-01-2013'),  
         ('joe','01-02-2013')

I want a query to pull up the percent of each salesperson's sales by day

(for example on 1-1-13 Joe sold 3 units out of 4 total for the day (75%) but I dont know how the SQL can pull up the daily total of all sales for the day regardless of salesperson

This is as close as I got.

select name, salesdate, count(*) as "dailyTotal"
from #sales
group by name, salesdate

How can I include the daily total that is so that it can be used in calculating percent total for the day?

share|improve this question
    
Wait, I am close to a solution. – Trojan.ZBOT Dec 12 '13 at 0:21

Not the most elegant way to do it, but you can try this -

select [name],[salesdate], COUNT(*) as dayTotal, 
SUM(COUNT(*)) over() as AllSales, 
(COUNT(*) * 1.0) / SUM(COUNT(*)) over() as dayPercent
FROM [dbo].[sales]
group by [name], [salesdate]

I removed the # in your table name. Btw, this code depends on OVER() clause. You can find out how to truncate the excess zeros yourself.

name    salesdate   dayTotal    AllSales    dayPercent
dave    2013-01-01  1           5           0.200000000000
joe   2013-01-01    3           5           0.600000000000
joe   2013-01-02    1           5           0.200000000000

HTH.

If that query looks too complicated to you, then look at this one first. It will give you an idea of what I am trying to do.

select [name],[salesdate], COUNT(*) as dayTotal, 
SUM(COUNT(*)) over() as AllSales
FROM [dbo].[sales]
group by [name], [salesdate]
share|improve this answer
    
Good answer, but why did you remove the # symbol? – Greenstone Walker Dec 12 '13 at 3:37
    
very good answer, I didnt know you could use sum with a blank over() clause – draca Dec 12 '13 at 16:43
    
@GreenstoneWalker - The table did not appear in studio when I used a #. So, I removed it. Maybe I did not notice it. – Trojan.ZBOT Dec 12 '13 at 19:07
    
@user2323932 - did it help ? How did you modify the code to alter the decimal part ? – Trojan.ZBOT Dec 12 '13 at 19:08
1  
Trojan, the single hash indicates a temporary table, one that is only visible to the session that created it and that is automatically dropped when the session disconnects. They are created in the tempdb database. Also, here's another "good answer" - I didn't know about a blank OVER clause either. – Greenstone Walker Dec 12 '13 at 20:42

Use a nested query to get the daily total:

BEGIN

    create table #sales (name varchar(10), salesdate date )

    insert into #sales (name, salesdate) values 
        ('joe', '01-01-2013'), 
        ('joe', '01-01-2013'), 
        ('joe', '01-01-2013'), 
        ('dave', '01-01-2013'),  
        ('joe', '01-02-2013'),
        ('dave', '01-02-2013')

    SELECT name, salesdate, COUNT(*) AS personDailyTotal, MAX(dailyTotal) AS dailyTotal, 
        (COUNT(*) * 100.0) / MAX(dailyTotal) AS [Percent]
    FROM #sales
    INNER JOIN (
        SELECT salesdate as [day], COUNT(*) as dailyTotal 
        FROM #sales 
        GROUP BY salesdate
    ) AS [Total] ON salesdate = [day]
    GROUP BY name, salesdate

END
share|improve this answer
1  
Errors - Msg 156, Level 15, State 1, Line 2 Incorrect syntax near the keyword 'Percent'. Msg 156, Level 15, State 1, Line 8 Incorrect syntax near the keyword 'ON'. – Trojan.ZBOT Dec 12 '13 at 0:38
    
Okay, bad choice of field name - just put it square brackets – Chris Lätta Dec 12 '13 at 2:12
    
There you go, added the whole script so you can see it working. Don't forget to drop the table at the end of the script as you can't paste code with a command to drop the table in it – Chris Lätta Dec 12 '13 at 2:22

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