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I was solving a puzzle, where im required to find the largest Prime Factor of a composite number entered by the user. I thought of something and have tried it out, but it doesn't manage to detect the largest prime factor amongst the factors of the composite number.

I'm appending my code below, I'd be grateful if anyone could help me out here to get to detect the largest prime no. amongst the factors and print it.

// Accept a composite number from user and print its largest prime factor.

#include<stdio.h>
void main()
{
    int i,j,b=2,c;
    printf("\nEnter a composite number: ");
    scanf("%d", &c);
    printf("Factors: ");

    for(i=1; i<=c/2; i++)
    {
        if(c%i==0)
        {
            printf("%d ", i);
            for(j=2; j<=i/2; j++) //since a numbr cand be divisible by a number greated than its half
            {               if(i%j > 0) 
                    b = i;
                else if(i==3)
                    b = 3;
            }
        }
    }
    printf("%d\nLargest prime factor: %d\n", c, b);
}
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1  
I don't get this. The point in doing puzzles like this is for you to acquire the skill to come up with code to solve a problem. Letting somebody else do it is utterly pointless. –  Hans Passant Aug 12 '10 at 17:27
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6 Answers 6

The trick is, find the smallest prime factor, and divide the composite number c by it to obtain the largest prime factor.

The trick is to find the smallest factor F (starting from 2) where C / F is prime. Then, C / F will be the largest prime factor of C.

Edit: It looks like you also want to list all the factors. The problem is, in your inner loop that tests for primality, you set the largest prime to i for numbers that are divisible with anything. In other words, try something like this:

is_prime = true;

for (j = 2; j <= x / 2; j++) {
    if (i % j == 0)
        is_prime = false;
}

if (is_prime)
    largest_prime = x;

Note that you could actually stop sooner than x divided by 2. You could stop at the square root of x. However, the sqrt() function in <math.h> is a bit messy to work with in your case because it works with floating point numbers, not integers.

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4  
This works only when c has exactly two prime factors –  Tom Sirgedas Aug 12 '10 at 16:37
1  
This just finds the largest factor, since the smallest factor will always be prime. –  Justin Ardini Aug 12 '10 at 16:49
    
Oops, thanks for pointing that out. Fixed. –  Joey Adams Aug 12 '10 at 16:54
1  
instead of j <= sqrt(i) you can check j*j <= i (which is the same check, using only integer math) –  Tom Sirgedas Aug 12 '10 at 17:06
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To find the prime factorization, you'd normally find all the factors between 2 and sqrt(N). You'd divide the composite by each of those to obtain the rest of the factors. Then recurse to find the prime factors of each of those.

When you're done, you'll have a list of all the prime factors. Getting the largest item in the list should be fairly trivial.

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"Then recurse to find the prime factors of each of those" - that doesn't sound right –  Tom Sirgedas Aug 12 '10 at 16:50
    
I think he means to recursively apply to get out more factors of the resulting smaller number. For example, if the input is 52, one could take out a 2 and with 26 still take out another 2 as 52 = 4 X 13 and 4 = 2 X 2. –  JB King Aug 12 '10 at 16:53
    
@JB: yes -- that's what I had in mind. As I sit back and think about it, I'm not entirely sure it's the right way to do things, but it's what I had in mind anyway... –  Jerry Coffin Aug 12 '10 at 17:00
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In your inner loop, you're setting b = i if there does exist a number that isn't a factor of i. You need to set b = i if there doesn't exist a number that is a factor of i.

(by "number", I mean "an integer between 2 and sqrt(i)" of course)

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Factorization is a classic number theory problem. You can find many factorization algorithms in number theory textbooks. Some of them are available on wiki http://en.wikipedia.org/wiki/Integer_factorization

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Hey thanks for the input friends, i worked out something and now the program prints the greatest prime factor of the composite number ,provided that the composite number is lesser than 52, while for higher ranges above this, it doesn't print the right output. I'm Appending the code, please see if you guys could help me around

#include<stdio.h>

void main() { int i,j,b=2,c; printf("\nEnter a composite number: "); scanf("%d", &c); printf("Factors: ");

for(i=1; i<=c/2; i++)
{
    if(c%i==0)
    {
        printf("%d ", i);
        for(j=1; j<=i; j++) //since a numbr cand be divisible by a number greated than its half
        {               if(i%j > 0)
                b = i; //b stores the largest prime factor
            if(b%3==0)
                b = 3;
                else if(b%2==0)
                b=2;
              else if(b%5==0)
                b=5;
                }
    }
}


printf("%d\nLargest prime factor: %d\n", c, b);

}

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as in i imagine the program can take two sorts of input : 1) when the composite number is lesser than 52 ( I could say the present code deals with this case) 2) when the composite number is greater than 52 , lesser than 100 (this case is not coded) If someone could illustrate the code for the second part, it would be great ! –  Arun Aug 12 '10 at 18:06
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In Python, Something like this will do:

import math
import itertools

# largest prime factor of a composite number
def primality(num):
    for i in range(2,int(math.sqrt(num))+1):
        if num%i ==0:
             return 0
    return 1

if __name__ == '__main__':
    number = 600851475143
    for i in itertools.count(2,1):
            if number%i == 0:
                if number%10 in [7,9,1,3] and primality(number/i):
                    print number/i
                    break

What I have done to check primality is the neat square root technique.

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