hdu 4956 Poor Hanamichi BestCoder Round #5(数学题)

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题目链接:http://acm.hdu.edu.cn/showproblem.php?pid=4956


Poor Hanamichi

Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 32768/32768 K (Java/Others)
Total Submission(s): 7    Accepted Submission(s): 4

Problem Description
Hanamichi is taking part in a programming contest, and he is assigned to solve a special problem as follow: Given a range [l, r] (including l and r), find out how many numbers in this range have the property: the sum of its odd digits is smaller than the sum of its even digits and the difference is 3.

A integer X can be represented in decimal as:

The odd dights are and are even digits.

Hanamichi comes up with a solution, He notices that:
mod 11 = -1 (or 10), mod 11 = 1,
So X mod 11
=
=
= sum_of_even_digits – sum_of_odd_digits
So he claimed that the answer is the number of numbers X in the range which satisfy the function: X mod 11 = 3. He calculate the answer in this way :
Answer = (r + 8) / 11 – (l – 1 + 8) / 11.

Rukaw heard of Hanamichi’s solution from you and he proved there is something wrong with Hanamichi’s solution. So he decided to change the test data so that Hanamichi’s solution can not pass any single test. And he asks you to do that for him.
 
Input
You are given a integer T (1 ≤ T ≤ 100), which tells how many single tests the final test data has. And for the following T lines, each line contains two integers l and r, which are the original test data. (1 ≤ l ≤ r ≤ )
 
Output
You are only allowed to change the value of r to a integer R which is not greater than the original r (and R ≥ l should be satisfied) and make Hanamichi’s solution fails this test data. If you can do that, output a single number each line, which is the smallest R you find. If not, just output -1 instead.
 
Sample Input
3 3 4 2 50 7 83
 
Sample Output
-1 -1 80
 

Source


题意:

首先给出一个范围 [l, r],问是否能从中找到一个数证明 Hanamichi’s solution 的解法(对于某个数 X,偶数位的数字之和 -  奇数位的数字之和  = 3  并且 这个 X 满足 X mod 11 = 3 )是错的。

也就是在范围里寻找是否存在不能同一时候满足:①偶数位的数字之和 -  奇数位的数字之和  = 3。 ②X mod 11 = 3。


代码例如以下:

#include <cstdio>
typedef __int64 LL;

bool Judge(LL tt)
{
    LL sumo = 0, sume = 0;
    LL i = -1;
    while(tt)
    {
        i++;
        LL t = tt%10;
        if(i%2)
            sumo += t;
        else
            sume += t;
        tt /= 10;
    }
    if(sume - sumo == 3)
        return true;
    return false;
}
int main()
{
    int T;
    LL l, r;
    LL i, j;
    scanf("%d",&T);
    while(T--)
    {
        scanf("%I64d%I64d",&l,&r);
        for(i = l; ; i++)
        {
            if(i%11 == 3)
                break;
        }
        for(j = i; j <= r; j+=11)
        {
            if(!Judge(j))
                break;
        }
        if(j > r)
            printf("-1\n");
        else
            printf("%I64d\n",j);
    }
    return 0;
}


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