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I have created the following tables with ranks for a data set:

Position  Index IndexL IndexH Amount Rank
1          2.5    2      3     2000   1     
1          2.5    2      3     3000   2
1          2.5    2      3     4000   3
1          2.5    2      3     5000   4
1          2.5    2      3     6000   5

2          1.5    1      2     2500   1     
2          1.5    1      2     4500   2
2          1.5    1      2     6700   3
2          1.5    1      2     8900   4
2          1.5    1      2     9900   5

Now I want to find the percentile based on the ranks created using the indices such that I get the following output :

Position Amount 
1         3000+(4000-3000)*(2.5-2)
2         2500+(4500-2500)*(1.5-1)

Can someone help me with this. I am kinda new to SQL world.

Thanks, Monica

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I have seen today similar question –  jaczes Aug 7 '13 at 13:25
    
Did you expect one row for each distinct value of Position in result? –  ThinkJet Aug 7 '13 at 14:10
    
yes. Each position will have 1 row –  Monica Aug 7 '13 at 16:49

2 Answers 2

I think you can do what you want with the percentile_cont() aggregation function. It looks like you want the median:

SELECT position,
       PERCENTILE_CONT(0.5) WITHIN GROUP (ORDER BY Amount) as Median
from t
group by position;

You can read more about it here.

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Hi do i still need to use Percectile_cont now that I have already calculated ranks. I think using the ranks 2 and 3 and interpolating the value in between them should give me the result right ? –  Monica Aug 7 '13 at 14:00
    
@Monica . . . You are probably better off using percentile_cont() -- if you can get away with it. You have to do an aggregation anyway, to get only one row per position. (If you want the median on each row, you can also use percentile_cont() as an analytic function.) –  Gordon Linoff Aug 7 '13 at 14:15

You can have Oracle assign a percentile for you using the NTILE analytic function:

SELECT
  position,
  amount,
  NTILE(100) OVER (PARTITION BY POSITION ORDER BY amount)
FROM myTable

I'm not sure if the result will match your calculations (I'm a bit hazy on some of my statistics). If not, please try the PERCENTILE_CONT solution proposed by @GordonLinoff, or else you can try the PERCENT_RANK analytic function - just replace NTILE(100) in the query above with PERCENT_RANK().

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Hi I have already calculated ranks using row_number and paritition which is in the first table. Now in order to get the final output I only need to use the data in this table and do the calculation as shown - like for Position 1, take the Amount with ranks 2 and 3 (IndexL and IndexH) and inetpolate the value using the ratio. –  Monica Aug 7 '13 at 13:45
    
You can get following values with the LEAD function: LEAD(Amount) OVER (PARTITION BY Position ORDER BY Rank). That will return null for the last row in the partition though, so if you want to default it to something do LEAD(Amount, 1, your-default-value). I'm afraid I don't understand your expected output - is that everything you want to see or just two sample rows? –  Ed Gibbs Aug 7 '13 at 14:11

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