• poj2785 简单二分


    4 Values whose Sum is 0
    Time Limit: 15000MS   Memory Limit: 228000K
    Total Submissions: 19243   Accepted: 5744
    Case Time Limit: 5000MS

    Description

    The SUM problem can be formulated as follows: given four lists A, B, C, D of integer values, compute how many quadruplet (a, b, c, d ) ∈ A x B x C x D are such that a + b + c + d = 0 . In the following, we assume that all lists have the same size n .

    Input

    The first line of the input file contains the size of the lists n (this value can be as large as 4000). We then have n lines containing four integer values (with absolute value as large as 228 ) that belong respectively to A, B, C and D .

    Output

    For each input file, your program has to write the number quadruplets whose sum is zero.

    Sample Input

    6
    -45 22 42 -16
    -41 -27 56 30
    -36 53 -37 77
    -36 30 -75 -46
    26 -38 -10 62
    -32 -54 -6 45
    

    Sample Output

    5
    

    Hint

    Sample Explanation: Indeed, the sum of the five following quadruplets is zero: (-45, -27, 42, 30), (26, 30, -10, -46), (-32, 22, 56, -46),(-32, 30, -75, 77), (-32, -54, 56, 30).
     
    题目大意:四个数列,问你有几种可能的组合满足,a[i]+b[j]+c[k]+d[e]==0;
    思路分析:直接遍历所有情况的话,复杂度是n^4。肯定超时,本题应该采用二分做,先进行数组合并,将四个数组合成为两个n*n的数组,然后对
    其中一个排序,这样就可以用二分查找另一个数组是否存在对应的数,这样复杂度就变成了n*nlogn^2,这样就不会超时了。
    代码:
    #include <iostream>
    #include <algorithm>
    #include <cstdio>
    #include <cstring>
    #include <queue>
    #include <stack>
    #define mem(a) memset(a,0,sizeof(a))
    using namespace std;
    const int inf=0xffffff;
    const int maxn=4000+10;
    int a[maxn],b[maxn],c[maxn],d[maxn];
    int f1[maxn*maxn],f2[maxn*maxn];
    int main()
    {
        int n;
        while(scanf("%d",&n)!=EOF)
        {
            int cut=0;
            for(int i=0;i<n;i++)
                scanf("%d%d%d%d",&a[i],&b[i],&c[i],&d[i]);
            for(int i=0;i<n;i++)
            {
                for(int j=0;j<n;j++)
                {
                    f1[i*n+j]=a[i]+b[j];
                    f2[i*n+j]=c[i]+d[j];
                }
            }
            sort(f2,f2+n*n);
        for(int i=0;i<n*n;i++)
        {
            int low=0,high=n*n-1;
        while(low<=high)
        {
            int mid=(low+high)/2;
            if(f2[mid]==-f1[i])
            {
                 cut++;
                 for(int j=mid-1;j>=0;j--)
                 {
                     if(f2[j]!=-f1[i]) break;
                     cut++;
                 }
                 for(int j=mid+1;j<n*n;j++)
                 {
                      if(f2[j]!=-f1[i]) break;
                     cut++;
                 }
                 break;
            }
          else if(f2[mid]<-f1[i]) low=mid+1;
          else high=mid-1;
        }
        }
        cout<<cut<<endl;
        }
        return 0;
    }
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  • 原文地址:https://www.cnblogs.com/xuejianye/p/5485236.html
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