HDU-3348 coins

HDU-3348 coins

Description

"Yakexi, this is the best age!" Dong MW works hard and get high pay, he has many 1 Jiao and 5 Jiao banknotes(纸币), some day he went to a bank and changes part of his money into 1 Yuan, 5 Yuan, 10 Yuan.(1 Yuan = 10 Jiao)
"Thanks to the best age, I can buy many things!" Now Dong MW has a book to buy, it costs P Jiao. He wonders how many banknotes at least,and how many banknotes at most he can use to buy this nice book. Dong MW is a bit strange, he doesn't like to get the change, that is, he will give the bookseller exactly P Jiao.

Input

T(T<=100) in the first line, indicating the case number.
T lines with 6 integers each:
P a1 a5 a10 a50 a100
ai means number of i-Jiao banknotes.
All integers are smaller than 1000000.

Output

Two integers A,B for each case, A is the fewest number of banknotes to buy the book exactly, and B is the largest number to buy exactly.If Dong MW can't buy the book with no change, output "-1 -1".

Sample Input

3
33 6 6 6 6 6
10 10 10 10 10 10
11 0 1 20 20 20

Sample Output

6 9
1 10
-1 -1

题意

给你一些1角，5角，10角，50角，100角的硬币，数量不等，有一个要凑的钱数P，用硬币去凑出P

问所用硬币的最少数量和最多数量分别是多少，如果不能凑出输出-1 -1

题解

最少数量贪心比较容易想，我们优先用面额大的去凑即可，最多数量直接贪心不好搞，我们需要转化一下思路，我们把手上的钱所能凑出的总钱数计算出来，用总钱数减去要凑的钱数得到一个钱数\(P^{''}\)

这样用最少的钱数凑出\(P\)即为用最多的钱数凑出\(P^{''}\)，然后再用钱的总数量减去这个数量即为最少数量的钱币凑出\(P\)

AC代码

#include<iostream>
#include<stdio.h>
using namespace std;
int p, a1, a5, a10, a50, a100;
int calc(int x) {
    int num100 = x / 100 < a100 ? x / 100 : a100;
    x -= 100 * num100;
    int num50 = x / 50 < a50 ? x / 50 : a50;
    x -= 50 * num50;
    int num10 = x / 10 < a10 ? x / 10 : a10;
    x -= 10 * num10;
    int num5 = x / 5 < a5 ? x / 5 : a5;
    x -= 5 * num5;
    int num1 = x;
    if (num1 > a1) return -1;
    else return num1 + num5 + num10 + num50 + num100;
}
int main() {
    int t;
    scanf("%d", &t);
    while (t--) {
        scanf("%d%d%d%d%d%d", &p, &a1, &a5, &a10, &a50, &a100);
        int sum = a1 + a5 * 5 + a10 * 10 + a50 * 50 + a100 * 100;
        int sum1 = a1 + a5 + a10 + a50 + a100;
        if (calc(p) == -1) cout << "-1 -1" << endl;
        else {
            cout << calc(p) << " ";
            cout << sum1 - calc(sum - p) << endl;
        }
    }
    return 0;
}