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I have a simple table that has ids in them.

1
5
22

When I do the following

select *, rank() over (order by id) as rank from my table

the rank comes back as

1
2
3

I don't understand why the ranking is contiguous? I was expecting something like

1
4
17

I would have expected the contiguous behavior from the dense_rank function.

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2  
If you use RANK() on the data {1.5, 1.5, 2.9} you'll get 1,1,3 - The first two items are tied at first, but the third item is still third. DENSE_RANK(), however, doesn't allow gaps, so that would have returned 1,1,2 (first, first, second). What is not clear is why you'd expect ranks 1,4,17 from 3 items? There are only three items, so the ranks must be 1st or 2nd or 3rd. (If there are three runners in a race, none of them rank 17th, no matter how slow they are...) Are you trying to rank your data, or work out the size of the gaps between your items? –  MatBailie Nov 20 '12 at 12:34
    
The results I am seeing seems to be what row_numer() would bring back not rank(). I was expecting 1,4,17 because I thought the rank was based on the difference, (4-1) = 3 is the rank which has more of a weigh. I'm confused on what the difference between rank() and row_numer() is then? –  stack Nov 20 '12 at 14:48
1  
Then check my example again. ROW_NUMBER() always returns 1,2,3,etc, even if two items have exactly the same value. RANK(), however, recognises that two items are tied and so you can get the results 1,1,3 (first, first, third) - Just like two competitors being tied for first place in a competition (They're both ranked first, but the next competitior is ranked third). DENSE_RANK() can't return 1, 1, 3, instead all the gaps are filled in and you get 1, 1, 2 (first, first, second). Look at the answers here, read the manual, and most of all, test it with your own data.. –  MatBailie Nov 20 '12 at 14:55
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3 Answers

All ID's are different, that is the reason for that behaviour. Ranking functions come into play when the values you order by are equal.

create table TableName(id int);
insert into TableName values(1);
insert into TableName values(5);
insert into TableName values(5);
insert into TableName values(22);
insert into TableName values(22);
insert into TableName values(22);

select *, 
rank() over (order by id) as rank,
dense_rank() over (order by id) as dense_rank,
row_number() over (order by id) as row_num
from TableName

ID  RANK    DENSE_RANK  ROW_NUM
1   1         1         1
5   2         2         2
5   2         2         3
22  4         3         4
22  4         3         5
22  4         3         6

Demo

Ranking Functions (Transact-SQL)

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Are the id's contiguous? If there are no ties, then RANK and DENSE_RANK will return the same values.

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Try this instead:

;WITH CTE
AS
(
  SELECT *, 
    RANK() OVER(ORDER BY id) as rank
  FROM tablename
 )
SELECT 
  c1.Id,
  (c1.id - ISNULL(c2.ID, 0)) rank
FROM CTE c1
LEFT JOIN cte c2 ON c1.rank - c2.rank = 1;

SQL Fiddle Demo

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