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R offers max and min, but I do not see a really fast way to find the another value in the order apart from sorting the whole vector and than picking value x from this vector.

Is there a faster way to get the second highest value (e.g.)?

Thanks

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6 Answers 6

up vote 57 down vote accepted

Use the partial argument of sort(). For the second highest value:

n <- length(x)
sort(x,partial=n-1)[n-1]
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1  
Arr, very good and it works in all cases, would not have thought about that, thanks! –  jorgusch Mar 16 '10 at 13:18
    
What is the advantage of this method as opposed to sort(x, TRUE)[2] as described in @Abrar's answer, apart from not satisfying the constraint in the question? –  Hugh Jun 26 '13 at 3:29
1  
speed.......... –  Rob Hyndman Jun 26 '13 at 5:44
2  
I used this method, but get the following error: Error in sort.int(x, na.last = na.last, decreasing = decreasing, ...) : index 4705 outside bounds Any idea what might the issue be? Some details: My x is a numeric vector of length 4706 with some NAs in the data. I tried to get the second highest value in the vector using the exact same code as @RobHyndman suggested. –  RazorXsr Oct 17 '13 at 16:37

Slightly slower alternative, just for the records:

x <- c(12.45,34,4,0,-234,45.6,4)
max( x[x!=max(x)] )
min( x[x!=min(x)] )
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Nice thing about it being one row! Thank for adding it! –  jorgusch Mar 16 '10 at 13:14

I wrapped Rob's answer up into a slightly more general function, which can be used to find the 2nd, 3rd, 4th (etc.) max:

maxN <- function(x, N=2){
  len <- length(x)
  if(N>len){
    warning('N greater than length(x).  Setting N=length(x)')
    N <- length(x)
  }
  sort(x,partial=len-N+1)[len-N+1]
}

maxN(1:10)
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For nth highest value,

sort(x, TRUE)[n]
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2  
The OP already said in his post that this was a solution he did not want to use: "apart from sorting the whole vector and than picking value x from this vector". –  Paul Hiemstra Dec 15 '11 at 11:32

Here is an easy way to find the indices of N smallest/largest values in a vector(Example for N = 3):

N <- 3

N Smallest:

ndx <- order(x)[1:N]

N Largest:

ndx <- order(x, decreasing = T)[1:N]

So you can extract the values as:

x[ndx]
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This runs in L log L time, where L is the length of x. I think the user was hoping for a method that runs in log L time. –  arsmath Nov 12 '13 at 22:09

I found that removing the max element first and then do another max runs in comparable speed:

system.time({a=runif(1000000);m=max(a);i=which.max(a);b=a[-i];max(b)})
   user  system elapsed 
  0.092   0.000   0.659 

system.time({a=runif(1000000);n=length(a);sort(a,partial=n-1)[n-1]})
   user  system elapsed 
  0.096   0.000   0.653 
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