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  • HD2058The sum problem

    The sum problem

    Time Limit: 5000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)
    Total Submission(s): 12422 Accepted Submission(s): 3757

    Problem Description

    Given a sequence 1,2,3,......N, your job is to calculate all the possible sub-sequences that the sum of the sub-sequence is M.

    Input

    Input contains multiple test cases. each case contains two integers N, M( 1 <= N, M <= 1000000000).input ends with N = M = 0.

    Output

    For each test case, print all the possible sub-sequence that its sum is M.The format is show in the sample below.print a blank line after each test case.

    Sample Input

    20 10 50 30 0 0

    Sample Output

    [1,4] [10,10] [4,8] [6,9] [9,11] [30,30]

    这也是一道水题,不过一开始没看懂题意,后面读了几遍就懂了。

    题目给两个数N,M,要求找出从1开始到N里的子序列的和是M,并全部输出,一开始可能会想到求和公式,首项加末项乘以项数除以二,公式里有两个变量,题目告知M可以是一个很大的数,如果利用公式直接穷举去遍历所有的数的话的话会溢出,所以要换个角度去想。

    考虑子串的长度为j,首项为i的数列满足要求,则(i+i+j-1)*j/2=m,==>(2*i-1+j)*j=2m,其中2*i-1>0;

    所以j*j<2*m;j<sqrt(2*m);这样确定子串的长度了;

    利用j和m,求出i的表达式,接下来就很简单了:

    #include<iostream>
    #include<cmath>
    using namespace std;
    int main(){
        int n,m,i;
        while(cin>>n>>m && !(n==0 && m==0)){
           int j = sqrt((double)2*m);
            for(j;j>=1;j--){   //去掉douubl会在提交时显示编译错误,要声明函数重载时的类型
                 i =(2*m/j+1-j)/2;
                if((2*i-1+j)*j/2==m)
                    cout<<"["<<i<<","<<i+j-1<<"]"<<endl;
            }
            cout<<endl;
        }
        return 0;
    }
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  • 原文地址:https://www.cnblogs.com/LZYY/p/3286261.html
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