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I know there are many topics on this in different forums too but my problem is this:

Q 1. For Euler problem 7 (finding 10001st prime) this is my code which I thought of on my own.

#include <stdio.h>
int main()
    int i,j,k=0,m=0,num;
    printf("%d %d",num,m);

This problem should display 10000th prime (m<10001) but it displays the 10001st prime, why is that?

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I don't know why your program does what it does, but Project Euler is all about solving "smarter" not "harder", here are a few tips about finding primes going from simple to complex: 1)j only needs to test up to j*j <= i once you get past that point you have tested every potential divisor. 2) start j at 3 then increment j by 2, you don't need to test every even number. 3) get rid of m, just continue on with the next i when you find i%j==0. 4) Learn about seives and use one. –  Scott Chamberlain Nov 2 '13 at 5:26
Well, you could use induction. Show that it works for m<M, starting with M = 1. Then show that it works for M → M+1. (Online demo of your code.) –  Kay Nov 2 '13 at 5:27

2 Answers 2

up vote 3 down vote accepted

The loop breaks when m is 10001 which is reason for it printing 10001 for m. Since m starts from 0, it prints the 10001st prime. In your code, loop runs from 0...10000 (10001 times).

Change the condition to m<10000 i.e. loop runs from 0...9999 (10000 times) and m at the end of the loop will have 10000.

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Try to implement Sieve of Eratosthenes because it will skip checking of all the multiples of prime number.

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