Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

how to find the second highest value in rows of a matrix. my matrix has NA values. looking for the highest values poses no problems but looking for the second highest returns an error.

new_class <- max.col(memb)### for first highest value

n<- length(memb[i,k])
sort(memb,partial=n-1)[n-1]

Error in sort.int(x, na.last = na.last, decreasing = decreasing, ...) : 
  index 27334 outside bounds

and also how to find the column with the second highest value

share|improve this question

1 Answer 1

up vote 5 down vote accepted

Try this:

# create amatrix with NA values
a <- runif(n=30)
a[sample(30,10)] <- NA
memb <- matrix(a, ncol=3)
memb
              [,1]      [,2]       [,3]
 [1,] 0.8534791 0.4881141 0.99065285
 [2,] 0.7340371 0.7439187 0.13665397
 [3,] 0.3355996        NA 0.24051520
 [4,]        NA 0.6561470 0.15877743
 [5,]        NA 0.3649768 0.84415732
 [6,]        NA        NA         NA
 [7,]        NA 0.1018859 0.75347257
 [8,] 0.3918607        NA 0.04462168
 [9,] 0.4653950 0.4043837 0.75119324
[10,]        NA        NA 0.54516193

# find second highest value (while omitting NA values)
apply(memb, 1, function(x){sort(na.omit(x), decreasing=F)[2]})


  [1] 0.85347909 0.73403712 0.24051520 0.15877743 0.36497678         NA 0.10188592
 [8] 0.04462168 0.46539497         NA

To find the position (column) of the second highest value, use order (as suggested by BrodieG)

apply(memb, 1, function(x){order(na.omit(x), decreasing=T)[2]})
 [1]  1  1  2  2  1 NA  1  2  1 NA

Note that if there is only one non-NA value in the row, this returns NA

share|improve this answer
    
Thanks, your suggestion works wonderfully. also, how could i find the column value of that result –  Noella Jan 31 '14 at 16:09
1  
@Noella instead of sort, user order –  BrodieG Jan 31 '14 at 16:15

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.