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I have a panel data set: that is, times, ids, and values. I would like to do a ranking based on value for each date. I can achieve the sort very simply by running:

select * from tbl order by date, value

The issue I have is once the table is sorted in this way, how do I retrieve the row number of each group (that is, for each date I would like there to be a column called ranking that goes from 1 to N).

Example:

Input:

Date, ID, Value
 d1, id1, 2
 d1, id2, 1
 d2, id1, 10
 d2, id2, 11

Output:

Date, ID, Value, Rank
 d1, id2, 1, 1
 d1, id1, 2, 2
 d2, id1, 10, 1
 d2, id2, 11, 2
share|improve this question
1  
Please don't name columns after SQL reserved words like DATE, even for illustrative purposes. –  pilcrow Dec 6 '11 at 5:37
    
no, date is not a reserved word (due to the fact of too many people misuse on it, mysql allow date to be non-reserved) –  ajreal Dec 6 '11 at 5:47
1  
@ajreal: Could @pilcrow possibly mean that DATE is a standard SQL reserved word? I mean, I am not sure if there is such a thing. –  Andriy M Dec 6 '11 at 7:07
    
Even if it is not reserved, it's not good practice to use date or time as table of column names. Too much confusion with the DATE() function or the DATE datatype. –  ypercube Dec 6 '11 at 7:20
1  
dev.mysql.com/doc/refman/5.0/en/reserved-words.html -- MySQL permits some keywords to be used as unquoted identifiers because many people previously used them. Examples are those in the following list: ... –  ajreal Dec 6 '11 at 7:20

3 Answers 3

up vote 1 down vote accepted

Absent window functions, you can order tbl and use user variables to compute rank over your partitions ("date" values) yourself:

SELECT "date",                                                -- D) Desired columns
       id,
       value,
       rank
  FROM (SELECT "date",                                        -- C) Rank by date
               id,
               value,
               CASE COALESCE(@partition, "date")
                 WHEN "date" THEN @rank := @rank + 1
                 ELSE             @rank := 1
               END AS rank,
               @partition := "date" AS dummy
          FROM (SELECT @rank := 0 AS rank,                    -- A) User var init
                       @partition := NULL AS partition) dummy
               STRAIGHT_JOIN
               (  SELECT "date",                              -- B) Ordering query
                         id,
                         value
                    FROM tbl
                ORDER BY date, value) tbl_ordered;

Update

So, what is that query doing?

We are using user variables to "loop" through a sorted result set, incrementing or resetting a counter (@rank) depending upon which contiguous segment of the result set (tracked in @partition) we're in.

In query A we initialize two user variables. In query B we get the records of your table in the order we need: first by date and then by value. A and B together make a derived table, tbl_ordered, that looks something like this:

rank | partition | "date" |  id  | value 
---- + --------- + ------ + ---- + -----
  0  |   NULL    |   d1   |  id2 |    1
  0  |   NULL    |   d1   |  id1 |    2
  0  |   NULL    |   d2   |  id1 |   10
  0  |   NULL    |   d2   |  id2 |   11

Remember, we don't really care about the columns dummy.rank and dummy.partition — they're just accidents of how we initialize the variables @rank and @partition.

In query C we loop through the derived table's records. What we're doing is more-or-less what the following pseudocode does:

rank      = 0
partition = nil

foreach row in fetch_rows(sorted_query):
  (date, id, value) = row

  if partition is nil or partition == date:
    rank += 1
  else:
    rank = 1

  partition = date

  stdout.write(date, id, value, rank, partition)

Finally, query D projects all columns from C except for the column holding @partition (which we named dummy and do not need to display).

share|improve this answer
    
thank you for this. i am trying to follow this query but it is a bit complicated. could you please give a little bit of a commentary on what is going on here? –  Alex Dec 7 '11 at 3:31
    
@Alex, ok. I'll edit shortly. –  pilcrow Dec 7 '11 at 3:33
    
thank you for your help. very clear explanation.. perfect for someone without much SQL experience as myself! –  Alex Dec 7 '11 at 4:22

I know this is an old question but here is a shorter answer:

SELECT w.*, if(
      @preDate = w.date,
      @rank := @rank + 1,
      @rank := (@preDate :=w.date) = w.date
    ) rank
FROM tbl w
JOIN (SELECT @preDate := '' )a
ORDER BY date, value
share|improve this answer

Would this do the trick?

select [DATE],ID,Value, 
(DENSE_RANK()  OVER (   
   PARTITION BY ID
 ORDER BY Date) )AS [DenseRank],    
ROW_NUMBER() OVER ( PARTITION BY ID ORDER BY [Date] DESC) AS RN     
from SomeTable 
share|improve this answer
    
MySQL doesn't have window functions, so this will not work. –  Adam Wenger Dec 6 '11 at 1:46
    
You might reserve an answer like this for a question about SQL Server. (Although I must say that you should also pay more attention to the question you are answering: partitioning was supposed to be done by Date, not by ID, and ordering was more likely by Value than by anything else.) –  Andriy M Dec 6 '11 at 7:31

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