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Suppose I've got a data set with n rows and p columns such that each entry in the data set contains a real number. I am looking for a way to rank the p columns within each row. The output of this ranking should be a length-p vector of ranks that accounts for ties.

So, let's say my data set has 5 columns. The first row could be something like row 1 = {10, 13, 3, 3, -4}. I'd like to perform some operations on this row and in the end get back the result row 1 ranks = {3, 4, 2, 2, 1}. The second row could be something like row 2 = {8, 3, -6, 5, 2} and the result on this row should be row 2 ranks = {5, 3, 1, 4, 2}.

Is this functionality implemented in SAS? I've generated code that doesn't account for ties, but they occur often enough that it would take an unreasonable amount of time to correct the row rankings that were done incorrectly.

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How about proc rank? –  itzy Jan 7 '13 at 19:32
    
@itzy proc rank ranks within columns, not rows. –  Max Jan 7 '13 at 19:36
    
Do you have/use IML? –  Joe Jan 7 '13 at 19:49
    
@Joe I have IML available but I do not use it. –  Max Jan 7 '13 at 20:15
    
I'd be curious of the ultimate use of this in your programming. How you intend to use it would drive the ultimate non-matrix solution (ie, non-IML or R)... it could easily be solved either by creating a new dataset with just the ranks (like IML would as a matrix), or by adding new variables (like Bob's solution), or by adding new rows with the ranks... even a normalized structure might be best for some uses of the resulting data. –  Joe Jan 7 '13 at 20:24

4 Answers 4

up vote 5 down vote accepted

Interesting question; here is one possible solution:

data have;
   p1=10; p2=13; p3=3;  p4=3; p5=-4; output;
   p1=8;  p2=3;  p3=-6; p4=5; p5=2;  output;
run;

data want;
   set have;
   array p(*) p1-p5;
   array c(*) c1-c5;
   array r(*) r1-r5;

   /* Copy vector to temp array and sort */
   do i=1 to dim(p); 
      c(i) = p(i); 
      end;
   call sortn(of c(*));

   /* Search new sorted array for the original position */
   do i=1 to dim(c);
      if i = 1 then rank=1;
      else if c(i) ne c(i-1) then rank + 1;
      do j=1 to dim(p);
         if p(j) = c(i) then do;
            r(j) = rank;
            end;
         end;
      end;

   /* PUT statement to see result in log */
   put +3 p(*)
     / +3 c(*)
     / +3 r(*);

   drop i j rank c1-c5;
run;
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(+1) This works amazingly well! –  Max Jan 7 '13 at 20:14
    
Very nicely written. –  Robert Penridge Jan 7 '13 at 22:00

Sounds to me like you'll need several arrays to do this.

  1. Array 1: Array to store the ranks
  2. Array 2: Array to sort the values
  3. Array 3: The original un-altered data

I don't have time right now to write the code but using someething like this would do a lot of the heavy lifting:

http://support.sas.com/kb/24/754.html

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It looks like @BobDuell wrote this code so I've accepted his answer. I do appreciate your response though. –  Max Jan 7 '13 at 20:14
    
Yup - hope it helped! –  Robert Penridge Jan 7 '13 at 22:01

Might as well add this even though OP said he doesn't use IML in case others find this useful searching for it. IML is really the easiest way to solve this problem, since its fundamentally a vector/matrix problem...

proc iml;
p={10 13 3 3 -4, 5 6 5 2 3};
r=j(2,5,.);
print p r;
do i = 1 to nrow(p);
  r[i,]=ranktie(p[i,]);
end;
print p r;
quit;

It does treat tries slightly differently from the OP, and thus would need some work to make it exactly like the solution requested - but in general, 1,2.5,2.5,4,5 [or 1,2,2,4,5] is probably what you really want, not 1,2,2,3,4. 4 and 5 should stay 4 and 5, not move up to 3 and 4, when 2 and 3 tie.

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Is there an easy way to input and output a data set using PROC IML? –  Max Jan 7 '13 at 21:00
    
There is - support.sas.com/documentation/cdl/en/imlug/63541/PDF/default/… chapter 7. IML is pretty different from SAS, though - it's much more similar to R, if you are familiar with that. –  Joe Jan 7 '13 at 21:29
    
I am much more familiar with R than SAS. I used R for almost 4 years before switching over. I believe IML and I will become very good friends... –  Max Jan 7 '13 at 22:33
    
Excellent. IML also allows you to call R functions (and, I believe, even use R syntax) so that might ease your introduction into SAS some. –  Joe Jan 8 '13 at 2:46

Just for fun, given the OP's answer to wanting a new dataset with ranks, here's the PROC RANK method. Probably not faster than a data step, but perhaps simpler and easier to use in multiple situations, and with the added advantage that you can't really make a mistake in the coding (without it actually crashing).

data have;
input id x1-x5;
datalines;
1 10 13 3 3 -4
2 5 6 5 2 3
;;;;
run;

proc transpose data=have out=temp;
by id;
var x1-x5;
run;
proc rank data=temp out=temprank;
var col1;
by id;
run;
proc transpose data=temprank out=want(drop=_name_ _label_);
by id;
var col1;
id _name_;
run;
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