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I have finished Pouring Water from SPOJ. However, the system keeps giving wrong answer. But I cannot find out where goes wrong.

Please give a hint. Test cases are also appreciated.

#include <iostream>

int countFromA (int a, int b, int c);

int main() {
    int t;
    std::cin>>t;
    std::cin.ignore(5, '\n'); // SPOJ error: iostream limit
    while (t--) {
        int a, b, c;
        std::cin>>a>>b>>c;
        if (c == 0) {
            std::cout<<"0"<<std::endl;
        }
        else if (a == c || b == c) {
            std::cout<<"1"<<std::endl;
        }
        else if ((a < c && b < c) || (a == b)) {
            std::cout<<"-1"<<std::endl;
        }
        else {
            int fromA = countFromA (a, b, c);
            int fromB = countFromA (b, a, c);
            int result;
            if (fromA == -1) {
                result = fromB;
            }
            else if (fromB == -1) {
                result = fromA;
            }
            else if (fromA <= fromB) {
                result = fromA;
            }
            else {
                result = fromB;
            }
            std::cout<<result<<std::endl;
        }
    }
}

int countFromA (int a, int b, int c) {
    int times = 0;
    int a_in = 0;
    int b_in = 0;
    // fill a
    a_in = a;
    times++;
    while (true) {
        // a->b & test
        if (a_in > (b - b_in)) {
            a_in = a_in - (b - b_in);
            b_in = b;
            times++;
            if (a_in == c) {
                return times;
            }
        }
        else {
            b_in = b_in + a_in;
            a_in = 0;
            times++;

Answer: should add a test here. I was coding in the assumption of a > b, and when reusing it, I forgot.

        }
        // fill a / empty b
        if (b_in == b) {
            b_in = 0;
        }
        else {
            a_in = a;
        }
        times++;
        // finish
        if (a_in == b - b_in) {
            return -1;
        }
    }
}

My algorithm first check special cases if else if else if, and then do the main calculation in else. For the else part, I've written a function to pour from first variable to second variable.

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1 Answer 1

up vote 3 down vote accepted

Here is a hint. Since this is a coding exercise for your benefit I won't give you the full answer.

You have 4 different operations that you might need to combine in any sequence to get your answer. Suppose that your numbers are 21, 3, 15. You need to look at both repeatedly dumping b into a until you have 15 in there, or fill a, keep pouring it into b then dumping b until you have 15 left. Your current operation just tries a single sequence of operations. You need to somehow try both from scratch then pick the best one.

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I've tried both int fromA = countFromA (a, b, c); int fromB = countFromA (b, a, c);. You see the first is a, b and the second is b, a. –  Dante is not a Geek May 31 '11 at 15:47
    
@Dante Jiang: It looks to me like countFromA won't notice if b_in winds up with the answer you are looking for after dumping all of a in. –  btilly May 31 '11 at 17:00
    
could you please kindly provide me a failing case? –  Dante is not a Geek Jun 1 '11 at 1:16
    
@Dante Jiang: Try 5, 33, 20. –  btilly Jun 1 '11 at 1:20

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