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Given an even number n>2, find prime numbers, whose sum is n. Must use function which finds prime nubmers.

Maybe can start something like this? :

for (int i = 2; i < n; i++)
{
    if (IsPrime(i) && IsPrime(n - i))
        break;
}
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i smell homework. –  Raptor Dec 5 '12 at 8:33
3  
Yup, sounds like a reasonable starting point. –  Jerry Coffin Dec 5 '12 at 8:33
1  
Yes, this algorithm should work –  icepack Dec 5 '12 at 8:34
1  
Hint: do you really need to iterate to n? –  Luchian Grigore Dec 5 '12 at 8:37
4  
The first step is to prove Goldbach's conjecture which is left as an exercise to the reader. –  Pubby Dec 5 '12 at 8:44
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3 Answers

I think its a homework, So i will give you tips to start up with:

1) To check whether a number N is prime, you can iterate till N/2 and break if you find its multiple. A nested for-loop would be the easiest solution if you don't bother much with space and time complexities.

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1  
There is a lower limit that N/2 which will save a lot of time. –  rossum Dec 12 '12 at 13:29
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I give you just an hint, not the entire solution, that will be the starting point!

This is one of the possible solution, not THE solution:

First of all, define a function that check if a number is prime:

bool isPrime(const unsigned& number) {
  for (unsigned i = 2; i < number; i++) {
     if (number % i == 0) {
       return false;
     }
   }
  return true;
 }

Define also:

struct PrimeSum {
  unsigned first;
  unsigned second; 
 };

PrimeSum searchPrimeAddend(const unsigned& number, const vector<unsigned>& v) {
   // your code to find two number iterating the vector 
}

In your main:

int main(const int argc, const char* argv[]) {
  const unsigned N = 13;
  std::vector<unsigned> primeList;
  for (unsigned i = 3; i < N; i += 2) {
    if (isPrime(i)) {
       primeList.push_back(i);
    }
  }
 PrimeSum primes = searchPrimeAddend(N, primeList);
}
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1  
Just a small nitpick: your isPrime function will not detect 2 as prime, when it is. However for the purposes of this assignment it doesn't matter since all other prime numbers are odd and the sum of an even an an odd is always odd. –  Nik Bougalis Dec 5 '12 at 9:03
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pseudo code

  • find all primes up to n and fill a container (ordered by insert or by container)
  • for the container get forward iterator 'up' and reverse iterator 'down'
  • while (up!=end && down!=rend && *up<=*down)
    • sum = *up + *down
    • if sum == n
      • save pair // found
      • ++up
    • else if sum > n
      • ++down
    • else if sum < n
      • ++up

this leaves some C++ homework to you

different solution (probably more efficient for a single run)

  • find all primes up to n/2 and fill a container (ordered by insert or by container)
  • for the container get forward iterator 'up'
  • while (up!=end)
    • other = n - *up
    • if is_prime(other)
      • save pair *up, other
    • ++up
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