146

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

14 Answers 14

181

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

n <- length(x)
sort(x,partial=n-1)[n-1]
  • 3
    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
  • 2
    speed.......... – Rob Hyndman Jun 26 '13 at 5:44
  • 5
    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. – sriramn Oct 17 '13 at 16:37
  • 3
    The descreasing argument is not compatible with partial sorting. – Rob Hyndman Aug 17 '15 at 22:15
  • 5
    Though the decreasing argument is not compatible with partial sorting, you could always -sort(-x, partial=n-1)[n-1]; it is logically the same thing and takes considerably less time than sort(x, decreasing=TRUE)[n-1]. – r2evans Jan 27 '17 at 0:47
46

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)] )
  • It would seem surprising if this was any faster than sorting the whole vector and taking the n-1th value! – jwg Aug 17 '15 at 15:20
  • @jwg This is O(n) so it has to be faster than sorting on large datasets. – Museful Jul 30 '16 at 19:02
  • Works better with NAs than other the accepted answer - just use the 'na.rm = TRUE' as an argument for the 'min' function. – Yair Daon Aug 14 '17 at 22:07
  • 1
    It seems to me you can get some considerable speed improvement with a small modification: max(x[-which.max(x)]) – sindri_baldur Aug 10 '18 at 14:12
26

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)
  • 1
    Cool. This usage is particularly useful maxN(1:10, 1:3) (I would have set the default N to 1) – PatrickT Oct 26 '17 at 12:05
15

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]
  • 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
  • This might be the second fastest way if the methods were ordered by time and the fastest N extracted. I also like it because it is very clear code compared to the accepted solution. – Pete Dec 8 '15 at 1:55
  • The theoretical best and the accepted method (hopefully) runs in O(L) time, not O(log L). This one runs in O(L log L). – Valentas May 14 '18 at 6:36
9

Rfast has a function called nth_element that does exactly what you ask and is faster than all of the implementations discussed above

Also the methods discussed above that are based on partial sort, don't support finding the k smallest values

Rfast::nth(x, 5, descending = T)

Will return the 5th largest element of x, while

Rfast::nth(x, 5, descending = F)

Will return the 5th smallest element of x

Benchmarks below against most popular answers.

For 10 thousand numbers:

N = 10000
x = rnorm(N)

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]
}

microbenchmark::microbenchmark(
    Rfast = Rfast::nth(x,5,descending = T),
    maxn = maxN(x,5),
    order = x[order(x, decreasing = T)[5]]
)

Unit: microseconds
  expr      min       lq      mean   median        uq       max neval
 Rfast  160.364  179.607  202.8024  194.575  210.1830   351.517   100
  maxN  396.419  423.360  559.2707  446.452  487.0775  4949.452   100
 order 1288.466 1343.417 1746.7627 1433.221 1500.7865 13768.148   100

For 10 million numbers:

N = 1e6
x = rnorm(N)

microbenchmark::microbenchmark(
    Rfast = Rfast::nth(x,5,descending = T),
    maxN = maxN(x,5),
    order = x[order(x, decreasing = T)[5]]
)

Unit: milliseconds
  expr      min        lq      mean   median        uq       max neval
 Rfast  89.7722  93.63674  114.9893 104.6325  120.5767  204.8839   100
  maxN 150.2822 207.03922  235.3037 241.7604  259.7476  336.7051   100
 order 930.8924 968.54785 1005.5487 991.7995 1031.0290 1164.9129   100
  • 3
    Nice! Normally when I see a relatively low-rep user add an answer to a popular old question it's pretty low-quality. This, on the other hand, is an excellent addition. I made a couple readability edits, but it looks great! – Gregor Nov 5 '18 at 22:50
  • 1
    It bears mentioning that Rfast::nth can return multiple elements (e.g. 8th and 9th largest elements) as well as the indices of those elements. – Jasha Dec 1 '18 at 18:28
4

For nth highest value,

sort(x, TRUE)[n]
  • 8
    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
3

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 
1

When I was recently looking for an R function returning indexes of top N max/min numbers in a given vector, I was surprised there is no such a function.

And this is something very similar.

The brute force solution using base::order function seems to be the easiest one.

topMaxUsingFullSort <- function(x, N) {
  sort(x, decreasing = TRUE)[1:min(N, length(x))]
}

But it is not the fastest one in case your N value is relatively small compared to length of the vector x.

On the other side if the N is really small, you can use base::whichMax function iteratively and in each iteration you can replace found value by -Inf

# the input vector 'x' must not contain -Inf value 
topMaxUsingWhichMax <- function(x, N) {
  vals <- c()
  for(i in 1:min(N, length(x))) {
    idx      <- which.max(x)
    vals     <- c(vals, x[idx]) # copy-on-modify (this is not an issue because idxs is relative small vector)
    x[idx]   <- -Inf            # copy-on-modify (this is the issue because data vector could be huge)
  }
  vals
}

I believe you see the problem - the copy-on-modify nature of R. So this will perform better for very very very small N (1,2,3) but it will rapidly slow down for larger N values. And you are iterating over all elements in vector x N times.

I think the best solution in clean R is to use partial base::sort.

topMaxUsingPartialSort <- function(x, N) {
  N <- min(N, length(x))
  x[x >= -sort(-x, partial=N)[N]][1:N]
}

Then you can select the last (Nth) item from the result of functions defiend above.

Note: functions defined above are just examples - if you want to use them, you have to check/sanity inputs (eg. N > length(x)).

I wrote a small article about something very similar (get indexes of top N max/min values of a vector) at http://palusga.cz/?p=18 - you can find here some benchmarks of similar functions I defined above.

1

head(sort(x),..) or tail(sort(x),...) should work

0
topn = function(vector, n){
  maxs=c()
  ind=c()
  for (i in 1:n){
    biggest=match(max(vector), vector)
    ind[i]=biggest
    maxs[i]=max(vector)
    vector=vector[-biggest]
  }
  mat=cbind(maxs, ind)
  return(mat)
}

this function will return a matrix with the top n values and their indices. hope it helps VDevi-Chou

0

This will find the index of the N'th smallest or largest value in the input numeric vector x. Set bottom=TRUE in the arguments if you want the N'th from the bottom, or bottom=FALSE if you want the N'th from the top. N=1 and bottom=TRUE is equivalent to which.min, N=1 and bottom=FALSE is equivalent to which.max.

FindIndicesBottomTopN <- function(x=c(4,-2,5,-77,99),N=1,bottom=FALSE)
{

  k1 <- rank(x)
  if(bottom==TRUE){
    Nindex <- which(k1==N)
    Nindex <- Nindex[1]
  }

  if(bottom==FALSE){
    Nindex <- which(k1==(length(x)+1-N))
    Nindex <- Nindex[1]
  }

  return(Nindex)
}
0

dplyr has the function nth, where the first argument is the vector and the second is which place you want. This goes for repeating elements as well. For example:

x = c(1,2, 8, 16, 17, 20, 1, 20)

Finding the second largest value:

 nth(unique(x),length(unique(x))-1)

[1] 17
  • 1
    is this fast ... ? – Ben Bolker Feb 8 '18 at 14:56
  • 1
    internally this uses x[[order(order_by)[[n]]]] - so it requires sorting the whole vector. So it won't be as fast as the accepted answer. – Ben Bolker Feb 8 '18 at 14:58
  • The accepted answer also uses "sort" – Noale Feb 8 '18 at 15:27
  • 4
    but it uses sort with the partial= argument (which changes everything) – Ben Bolker Feb 8 '18 at 15:29
  • @BenBolker which implies Paolo's or Rob's answer could be used to improve dplyr::nth()? bench::mark(max(x[-which.max(x)]), x[[order(-x)[[2]]]] ), nth()seems almost 10 times slower, where length(x) is 3 million. – sindri_baldur Aug 10 '18 at 14:20
-1

You can identify the next higher value with cummax(). If you want the location of the each new higher value for example you can pass your vector of cummax() values to the diff() function to identify locations at which the cummax() value changed. say we have the vector

v <- c(4,6,3,2,-5,6,8,12,16)
cummax(v) will give us the vector
4  6  6  6  6  6  8 12 16

Now, if you want to find the location of a change in cummax() you have many options I tend to use sign(diff(cummax(v))). You have to adjust for the lost first element because of diff(). The complete code for vector v would be:

which(sign(diff(cummax(v)))==1)+1
  • I think you misunderstand the question. The goal is to find, say, the second highest value. How does this help to get you from v to 12... and for the third highest to 8? – Frank Mar 18 '16 at 16:26
-2

You can use the sort keyword like this:

sort(unique(c))[1:N]

Example:

c <- c(4,2,44,2,1,45,34,2,4,22,244)
sort(unique(c), decreasing = TRUE)[1:5]

will give the first 5 max numbers.

protected by thelatemail Mar 20 '18 at 5:43

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