Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a set of coins 1,2, 4, 10, 20, 40, 100, 200, 400, 1000, 2000 cents. I want to find out how many ways to pays for a certain amount (<= 6000). My current solution in c++ is using dynamic programming is as followed:

long long d[6010];
int coin[] = {1, 2, 4, 10, 20, 40, 100, 200, 400, 1000, 2000};
d[0] = 1;
for (int i = 0; i < 11; i++) {  // iterate through all coins
    for (int j = 1; j <= 6000; j++)
        d[j] += d[j - coin[i]];
printf("%lld\n", d[20]);

However my output is incorrect: -956301262. Is it because of any overflow problem?

share|improve this question
2  
In first place, this is not C++ code but C. –  user529758 Mar 6 '13 at 6:57
7  
j - coin[i] can come out negatvie. –  Pubby Mar 6 '13 at 6:57
    
Thanks @Pubby for your answer. I have been able to fixed the problem. –  Minh Pham Mar 6 '13 at 6:59
    
My answer for amount = 5999 is 1684271704. However according to Algorithmist it should be 181000196059736. Any idea why? PS: I multiply the original amount by 20 for conveniences. –  Minh Pham Mar 6 '13 at 7:05
    
Thats why I stored it in a long long array. The original set of coins is five time the value of each in the coin value (in cents), to make it more space efficient, I reduce the coin value and the required amount by 5 times. When I read an amount, it is a float and the unit is dollar. Converting to cents: 100*amount/5 = 20 *amount. –  Minh Pham Mar 6 '13 at 7:17

3 Answers 3

You have to use two-dimensional array of size 6001x11 (in your case) to store all possible values. Start with d[0][0] and iterate until d[6000][10] which will contain the final answer.

share|improve this answer

I don't see how your algorithm should work, I would have gone recursively over each denomination from higher to lower (looping over the different amount). While using a lookup table, presumably similar to your d.

Something along the lines of:

howmanyways(sorted_denominations_set_starting_with_1, target amount):
if this is already in the lookup table return the result
else if sorted_denominations_set_starting_with_1 is {1}, then return target amount
else loop over 0 to target amount/last_set_element
   return the sum of results for howmanyways(sorted_denominations_set_starting_with_1 without the largest element, target amount-last_set_element*loop_index)
keep whatever you return in the lookup table

and return howmanyways({1, 2, 4, 10, 20, 40, 100, 200, 400, 1000, 2000}, target amount);

share|improve this answer
    
So you mean I should change the outer loop to: for (int i = 10; i >= 0; i--)? I tried and the result is identical. –  Minh Pham Mar 6 '13 at 7:13
    
I've added pseudo code, I hope that helps –  Ofir Mar 6 '13 at 7:21

Your loops are backwards. The coin-denomination loop should be your inner loop.

Your array assignment also just doesn't make sense. You're currently just summing the values of change that differ from your target by a particular denomination of coin.

You should probably have a vector of vectors as your data structure. Each time you're running through your inner loop, you should be inserting a new vector into your data structure. This vector should be a set of coins which has a sum equal to the value of interest.

share|improve this answer

Your Answer

 
discard

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.