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I am looking to make a select statment that selects all the distinct items in a row, and provides the totals of each result

SELECT DISTINCT [Column 16] FROM [tab]

and thats how far my TSQL goes

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Give us some sample data and a sample result set. –  Adrian Lynch Aug 22 '11 at 14:03

2 Answers 2

Are you looking for

SELECT [Column 16], COUNT(*) 
FROM [tab]
GROUP BY [Column 16]
--WITH ROLLUP (if you need to the total )
ORDER BY COUNT(*) 

You can append DESC keyword to the end of the query, i.e. ORDER BY COUNT(*) DESC if you want your resultset to be ordered in descending order, or ASC for ascending (ascending is default, you can omit it).

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OP is looking for Totals.. not Count –  Raj More Aug 22 '11 at 14:07
    
@Raj More: I'm not sure I follow... What is total for a field? It might be a sum, but sum requires argument ( SUM(some_other_column), and I don't see anything in the question about which column to should be added. –  a1ex07 Aug 22 '11 at 14:08
    
Thank you thats perfect last question how would I order by size of results ? –  Mike Aug 22 '11 at 14:10
1  
@Mike: ` ORDER BY COUNT(*) ` at the end –  a1ex07 Aug 22 '11 at 14:12
    
Agree with the answer basically (+1), but I think the way you are showing how to use DESC or ASC may be confusing for those not familiar with the syntax. –  Andriy M Aug 23 '11 at 6:47

When you GROUP BY, you get a distinct list of [Column 16]. Then you can use an aggregate function with it.

SELECT [Column 16], Sum ( [Column To Sum] ) Total_T1
FROM [tab]
Group By [Column 16]

If you want to group by multiple columns they should appear in the select and in the GROUP BY

SELECT [Column 16], [Column 17], Sum ( [Column To Sum] ) Total_T1
FROM [tab]
Group By [Column 16], [Column 17]

You can also specify multiple aggregations (these do not appear in the group by clause

SELECT [Column 16], [Column 17], 
      Sum ( [Column To Sum] ) Total_T1,
      Count ( [Column To Sum] ) NumOf_T1,
      Avg ( [Column To Sum] ) Avg_T1,
      Min ( [Column To Sum] ) Min_T1,
      Max ( [Column To Sum] ) Max_T1
FROM [tab]
Group By [Column 16], [Column 17]
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