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I am trying to create a function to test if a given integer is a prime number, I tried using the following:

tpn <- function(prime.num){

    if(prime.num==2){
        print("PRIME")
    } else {

    if(prime.num%%(2:(prime.num-1))!=0){
        print("PRIME")

    } else { 
        print("NOT PRIME")

}}}

This doesn't work, although I cant understand why. I am checking to see if the given number can be divided by any of the integers up to this number with no remainders. If it cant, then the number is prime.

Another solution I found was:

tpn <- function(pn){

    if(sum(pn/1:pn==pn%/%1:pn)==2)
            print("prime")

}

This does work. Although I cant get my head around what "sum(pn/1:pn==pn%/%1:pn)==2" is actually testing for.

Any help would be very much appreciated!

Thanks, Daniel.

share|improve this question
    
Have you tried breaking it down into pieces? If you did, you'd see that if only accepts a single argument, for one thing (in your first example). In the second one, a few parentheses would help, so go to the help page ?Syntax to see which operations happen first. – Carl Witthoft Nov 4 '13 at 12:27
    
Perhaps a duplicate of stackoverflow.com/q/3789968/321622 or stackoverflow.com/q/3858636/321622 – John Nov 4 '13 at 12:36
up vote 11 down vote accepted

A number a is divisible by a number b if the result of the division a / b is equal to the result of the integer division a %/% b. Any integer pn can be divided by at least two numbers: 1 and pn. Prime numbers are those than can only be divided by those two. Breaking out the code:

  1. pn / 1:pn are the results of the divisions by 1, 2, ..., pn
  2. pn %/% 1:pn are the results of the integer divisions by 1, 2, ..., pn
  3. sum(pn / 1:pn == pn %/% 1:pn) are how many of these are equal, i.e., the number of integer divisors of pn. If this number is 2, you have a prime.

What was wrong with your code: if needs to test if something is TRUE or FALSE but you were passing it a whole vector. Also, your logic was wrong. It should have been:

is.prime <- function(num) {
   if (num == 2) {
      TRUE
   } else if (any(num %% 2:(num-1) == 0)) {
      FALSE
   } else { 
      TRUE
   }
}

And once you've settled on returning a logical, you can make your code a lot shorter:

is.prime <- function(n) n == 2L || all(n %% 2L:floor(sqrt(n)) != 0)

(which incorporates @Carl's comment about not checking all numbers.)

share|improve this answer
1  
Well, so much for turning my comment into an answer :-( . FWIW, I'll mention that testing 2:prime.num-1 is incredibly wasteful, as you can stop at roughly sqrt(prime.num) – Carl Witthoft Nov 4 '13 at 12:29
    
Thank you so much, you made this very clear! if only you could be my R lecturer :D – user2952367 Nov 4 '13 at 12:37
4  
So I know this is way late, but the shorter version says that 3 is not prime because floor(sqrt(n)) in this case is 1. – raptortech97 Aug 7 '14 at 17:09

I just tried the is.prime code example. But with this 3 is not prime ;o)

The improved version uses ceiling instead of the floor operation.

is.prime <- function(n) n == 2L || all(n %% 2L:ceiling(sqrt(n)) != 0)

Best!

share|improve this answer

You may also use the isprime() function in the matlab package. It works also with vector arguments:

library(matlab)

as.logical(isprime(7))
as.logical(isprime(42))

#> as.logical(isprime(7))
#[1] TRUE
#> as.logical(isprime(42))
#[1] FALSE
share|improve this answer

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