• Codeforces 1003D(贪心)


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    题面:

    D. Coins and Queries
    time limit per test
    2 seconds
    memory limit per test
    256 megabytes
    input
    standard input
    output
    standard output

    Polycarp has nn coins, the value of the ii-th coin is aiai. It is guaranteed that all the values are integer powers of 22 (i.e. ai=2dai=2d for some non-negative integer number dd).

    Polycarp wants to know answers on qq queries. The jj-th query is described as integer number bjbj. The answer to the query is the minimum number of coins that is necessary to obtain the value bjbj using some subset of coins (Polycarp can use only coins he has). If Polycarp can't obtain the value bjbj, the answer to the jj-th query is -1.

    The queries are independent (the answer on the query doesn't affect Polycarp's coins).

    Input

    The first line of the input contains two integers nn and qq (1n,q21051≤n,q≤2⋅105) — the number of coins and the number of queries.

    The second line of the input contains nn integers a1,a2,,ana1,a2,…,an — values of coins (1ai21091≤ai≤2⋅109). It is guaranteed that all aiai are integer powers of 22 (i.e. ai=2dai=2d for some non-negative integer number dd).

    The next qq lines contain one integer each. The jj-th line contains one integer bjbj — the value of the jj-th query (1bj1091≤bj≤109).

    Output

    Print qq integers ansjansj. The jj-th integer must be equal to the answer on the jj-th query. If Polycarp can't obtain the value bjbj the answer to the jj-th query is -1.

    Example
    input
    Copy
    5 4
    2 4 8 2 4
    8
    5
    14
    10
    
    output
    Copy
    1
    -1
    3
    2

    题目描述:

        给你n个硬币,每个硬币的面值都为2的幂次方。先有q个询问,每个询问给出一个数b,问你至少用多少个硬币才能使得他们的面值凑成b。若不能凑出,则输出-1。

    题目分析:

        因为题目中所给的硬币的面值都是2的倍数,因此,若我们要使得用最少的硬币凑出一个数,我们则应该贪心的从最大的2的倍数进行枚举,优先选取大的硬币,并将该数除以该面值。而若将这个过程做完后还不能使得原来的数为0,则输出-1。

    代码:

    #include <bits/stdc++.h>
    using namespace std;
    map<int,int>mp;//用map来存储硬币的面额
    int main()
    {
        int n,q;
        cin>>n>>q;
        for(int i=0;i<n;i++){
            int num;
            scanf("%d",&num);
            mp[num]++;
        }
        int ans=0;
        while(q--){
            int num;
            ans=0;
            scanf("%d",&num);
            for(int i=1<<30;i>=1;i>>=1){
                if(mp.count(i)==0) continue;//如果不存在i的面额
                else{
                    int x=min(mp[i],num/i);//取面额i和num/i中的最小值
                    num-=x*i;
                    ans+=x;
                }
            }
            if(num){
                puts("-1");
                continue;
            }
            else cout<<ans<<endl;
        }
        return 0;
    }
    

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  • 原文地址:https://www.cnblogs.com/Chen-Jr/p/11007271.html
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