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..or do I have to give

P.nk <- factorial(n) / factorial(n-k)

or

P.nk <- choose(n,k) * factorial(k)

Thank you.

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1  
As others have said, there is a straight permutations function in gregmisc (gtools in the new parsed gregmisc packages). But, that and all other package functions I've found are really for generating permutations, not for just giving the total number of permutations. Therefore, they tend to be slow. I've benchmarked just such functions before. Your option 2 here is far and away the fastest, much faster than any package functions I've found. It also has a higher upper limit for calculations than your first option. –  John May 20 '10 at 15:20
    
Thanks for the useful information –  Brani May 21 '10 at 6:39
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3 Answers 3

up vote 7 down vote accepted

I don't know of any existing function. Your first suggestion will fail with large n. Your second idea should work fine when written as a function:

perm <- function(n,k){choose(n,k) * factorial(k)}

Then perm(500,2) will give 249500 for example.

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First suggestion could be rewrite as exp(lfactorial(n) - lfactorial(n-k)). But I will use second too. –  Marek May 20 '10 at 10:31
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I think the gregmisc package provides these functions.

library(gregmisc)
permutations(n=4,r=4)

Mailing list reference: [R] permutation

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1  
Actually, what is asked would be given by: dim(permutations(n,k))[1] –  George Dontas May 20 '10 at 9:18
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Check out nsamp(n,k,ordered=T) in the 'prob' package

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nsamp(500,2,ordered=TRUE) encounter problem state in Rob answer (value out of range). –  Marek May 20 '10 at 10:28
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