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A class went to a school trip. And, as usually, all N kids have got their backpacks stuffed with candy. But soon quarrels started all over the place, as some of the kids had more candies than others. Soon, the teacher realized that he has to step in: "Everybody, listen! Put all the candies you have on this table here!"

Soon, there was quite a large heap of candies on the teacher's table. "Now, I will divide the candies into N equal heaps and everyone will get one of them." announced the teacher.

"Wait, is this really possible?" wondered some of the smarter kids.

Problem specification

You are given the number of candies each child brought. Find out whether the teacher can divide the candies into N exactly equal heaps. (For the purpose of this task, all candies are of the same type.)

Input specification

The first line of the input file contains an integer T specifying the number of test cases. Each test case is preceded by a blank line.

Each test case looks as follows: The first line contains N : the number of children. Each of the next N lines contains the number of candies one child brought.

Output specification

For each of the test cases output a single line with a single word "YES" if the candies can be distributed equally, or "NO" otherwise.

Example

Input:

2

5
5
2
7
3
8

6
7
11
2
7
3
4

Output:

YES
NO

The problem is simple but the case is that SPOJ judges are using very very large inputs. I have used unsigned long long as datatype, yet it shows wc..

Here's my code:

#include<iostream>
using namespace std;
int main()
{
    unsigned long long c=0,n,k,j,testcases,sum=0,i;
    char b[10000][10];
    cin>>testcases;
    while(testcases-->0)
    {
        sum=0;
        cin>>n;
        j=n;
        while(j-->0)
        {
            cin>>k;
            sum+=k;
        }
        if(sum%n==0)
        {
            b[c][0]='Y';b[c][1]='E';b[c][2]='S';b[c][3]='\0';
            c++;
        }
        else
        {
            b[c][0]='N';b[c][1]='O';b[c][2]='\0';
            c++;
        }
    }
    for(i=0;i<c;i++)
        cout<<"\n"<<b[i];
    return 0;
}
share|improve this question
    
How exactly have you implemented this with unsigned long long? –  sharptooth Oct 16 '09 at 13:52
    
large in case of file size or large in case of datatype? –  Tobias Langner Oct 16 '09 at 13:52
    
@vaibhav- is the input a file or is it cin statements? –  TStamper Oct 16 '09 at 13:57
    
large are the inputs.. they dont include file.. we have to take the inputs from the user.. –  vaibhav Oct 16 '09 at 13:58
2  
Those are some lucky kids... 10^64 candies! –  James McNellis Oct 16 '09 at 14:08

5 Answers 5

up vote 3 down vote accepted

Easy. Don't add up the number of candies. Instead, keep a count of kids, a count of candies per kid. (CCK), and a count of extra candies (CEC. When you read a new line, CK += 1; CEC += newCandies; if (CEC > CK) CCK += (CEC / CK); CEC %= CK;

share|improve this answer
    
I don't think you need a count of candies per kid (which might be another source of overflow). Maintaining the number of 'extra' candies after each child is sufficient. –  Andrew Song Oct 16 '09 at 14:13
    
and what should be the datatypre of ck,cec ?? should it be unsigned long long? –  vaibhav Oct 16 '09 at 14:13
    
Whatever it needs to be, really. I wouldn't be surprised if it worked with an unsigned int, though. –  Andrew Song Oct 16 '09 at 14:16
    
Actually, the number of candies per kid is an average. As such, it's never larger than the largest single contribution. So, if no kid brings more than UINT_MAX candies, then the average will also be less then UINT_MAX. –  MSalters Oct 19 '09 at 8:23

Does a line like this not concern you?

b[c][0]='Y';b[c][1]='E';b[c][2]='S';b[c][3]='\0';

Would it not be simpler to write??

strcpy(b[c], "YES");
share|improve this answer
    
yet both of them would do the same.. –  vaibhav Oct 16 '09 at 14:04
    
Wouldn't it be easier just to directly output the string? There are only two choices... –  Andrew Song Oct 16 '09 at 14:04
1  
It would be even simpler to write cout << "YES\n"; –  Lukáš Lalinský Oct 16 '09 at 14:05
    
we don't have to instatnly give "yes" or "no".. we have to store it for every input and display all at the end.. its necessary to store our answers.. –  vaibhav Oct 16 '09 at 14:07
2  
@vaibhav: do you? I wonder. The spec doesn’t say so and it would be quite unorthodox. So I’m inclined to just say no, you’ve misunderstood the specs. –  Konrad Rudolph Oct 16 '09 at 14:11

You can do this question without summing all the candies. Just calculate the remainder off each child's heap (which will be smaller than N). This way, the number won't grow too large and overflow.

I won't write out a solution since this is a contest problem, but if you're stuck I can give some more hints.

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If you have input that is larger than unsigned long long, then they probably want you to implement custom functions for arbitrary-precision arithmetic (or the problem can be solved without using the large integers). If the input fits the largest native integer type, but your algorithm requires larger integer, it's most likely time to think about a different algorithm. :)

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2  
Given the simple nature of the assignment, it would seem odd to me that it would involve arbitrary-precision arithmetic. –  David Thornley Oct 16 '09 at 14:05
    
I didn't mean this specific problem in answer. I wanted to cover all cases that might happen in such programming contest problems. This problem falls into the second part => use a different algorithm. –  Lukáš Lalinský Oct 16 '09 at 14:07

If you're reading in from cin, you can only read in values that will fit into some sort of integer variable. It's possible that the sum would overflow.

However, you don't have to add the numbers up. You can add the remainders (from dividing by N) up, and then see if the sum of the remainders is N.

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