Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I am trying to solve Project Euler 14 and the output is always zero.

The basic Idea is n/2 when n is even and 3n + 1 when n is odd. Then if m/2 < n or m < n (where m/2 or m is previous number whose number had already been calculated) give the number of iterations as iterations stored. I am storing the iterations of previous numbers.

using namespace std;

bool ok=true;
unsigned long int p[1000001]; //initialization of array p to store iterations
unsigned long int q[2]={1,1}; // initialization of two element array to store the max sequence number
unsigned long int x=0;

int Colltz(unsigned long int num,unsigned long int count) { // function starts
    unsigned long int j=num;
    p[0]=0; //Initial iterations for 1 and 2
    p[1]=1; // Initial value for 1
    p[2]=2; // Initial val for 3
    while(ok) { // while loop

        if((j%2==0)&&(j/2>num)) { //(to check whether j is available in the array if not it divides it further until j/2<num

        if((j%2==0)&&((j/2)<num)) { // since j/2 the arry should contin the number and the collatz vlue is +1

        if ((j%2)!=0) { //if it is odd
        if(j<num) { // if j < num then j is Collatz of j is calculated and added
        if((p[num]>=q[1])) {
            q[0]=num; // to get the max count
    }// end of while loop
    return q[1];

int main() {
    unsigned long int i=3;
    unsigned long int j=0;
    int counted=1;

    while(i<6) {

So basically my function should take in the number (for which I have initialized count to 0) and then find out whether it is even or odd and if it is even whether it is greater than n or less and then follow steps accordingly and if it is odd whether it is less than n and calculate accordingly.

share|improve this question
Consult this wiki page, fix appropriately, you will likely get more quality responses. –  ChrisCM Aug 2 '13 at 15:42
Welcome to Stack Overflow! I'd like to help you, but I don't understand how you are trying to solve the problem. I tried a standard brute force approach and I was able to get the result in less than a second. –  Paolo Moretti Aug 2 '13 at 16:33
your code is a bit of mess (to me) you are re-initializing p[0-2] in function that should be in array declaration/definition and the rest of p is unknown non-handled!!! The meaning and location of ok evades me. and now the most important you set p[num] but never use it to speed up the search you should ad if statement at start of function something like if (p[num]!=0) return p[num] or count=p[num] do not have the will to determine your function interface. also that will works only if you reset the p[] array to zero values first !!! if this does not help add comment and i post code in answer –  Spektre Sep 24 '13 at 11:01

1 Answer 1

Your code seems a little bit messed up! Check my solution and see whether that helps :

#include <stdio.h>
unsigned long int Collatz(unsigned long int);

int main()
    unsigned long int n,i,bingo;
    int ChainLen=0;

        if((n=Collatz(i)) > ChainLen)

    return 0;

unsigned long int Collatz(unsigned long int x)
    return 1;
        return 1 + Collatz(x/2);
    return 1 + Collatz(x * 3 + 1);
share|improve this answer

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.