hdu 3591 The trouble of Xiaoqian

时间:2023-03-09 03:18:34
hdu 3591 The trouble of Xiaoqian

hdu 3591  The trouble of Xiaoqian

题意:xiaoqi要买一个T元的东西,当前的货币有N种,xiaoqi对于每种货币有Ci个;题中定义了最小数量即xiaoqi拿去买东西的钱的张数加上店家找的零钱的张数(店家每种货币有无限多张,且找零是按照最小的数量找零的);问xiaoqi买元东西的最小数量?

多重背包+完全背包;

思路:这个最小数量是拿去买东西的张数和找零的张数之和,其实我们只需要将这两个步骤分开,开算出能买T元东西的前i最少f[i]张,这里涉及到容量问题;容量只要大于T小于最大的上线20,000即可;之后使用贪心将货币排序加上找的零钱的数量,求出最小的数量即可;

注:无解的情况分为 总的和达不到T,和当前的货币不能找开i;(i - T找零时除到了0...RE了几次);

78MS  1668K

#include<bits/stdc++.h>

using namespace std;

#define rep0(i,l,r) for(int i = (l);i < (r);i++)

#define rep1(i,l,r) for(int i = (l);i <= (r);i++)

#define rep_0(i,r,l) for(int i = (r);i > (l);i--)

#define rep_1(i,r,l) for(int i = (r);i >= (l);i--)

#define MS0(a) memset(a,0,sizeof(a))

#define MS1(a) memset(a,-1,sizeof(a))

#define inf 0x3f3f3f3f

#define lson l, m, rt << 1

#define rson m+1, r, rt << 1|1

typedef __int64 ll;

template<typename T>

void read1(T &m)

{

    T x=,f=;char ch=getchar();

    while(ch<''||ch>''){if(ch=='-')f=-;ch=getchar();}

    while(ch>=''&&ch<=''){x=x*+ch-'';ch=getchar();}

    m = x*f;

}

template<typename T>

void read2(T &a,T &b){read1(a);read1(b);}

template<typename T>

void read3(T &a,T &b,T &c){read1(a);read1(b);read1(c);}

template<typename T>

void out(T a)

{

    if(a>) out(a/);

    putchar(a%+'');

}

const int M = ;

int f[M],V,n;

int w[],num[];

void ZeroOnePack(int w,int k)

{

    for(int v = V;v >= w;v--)

        f[v] = min(f[v],f[v-w]+k);

}

void CompletePack(int w)

{

    for(int v = w;v <= V;v++)

        f[v] = min(f[v],f[v-w]+);

}

void MultiPack(int w,int num)

{

    if(w*num >= V)

        CompletePack(w);

    else{

        for(int k = ;k < num;k <<= ){

            ZeroOnePack(w*k,k);

            num -= k;

        }

        ZeroOnePack(w*num,num);

    }

}

inline int change(int a)

{

    int cnt = ;

    for(int i = n;a;i--){

        if(w[i] == ) return inf;

        cnt += a/w[i];

        a %= w[i];

    }

    return cnt;

}

int main()

{

    int t,kase = ;

    while(scanf("%d%d",&n,&t) ==  && n+t){

        int sum = ;

        rep1(i,,n) read1(w[i]);

        rep1(i,,n) read1(num[i]),sum += num[i]*w[i];

        V = min(sum,M-);

        memset(f,0x3f,sizeof(f));

        f[] = ;

        rep1(i,,n)

            MultiPack(w[i],num[i]);

        sort(w+,w+n+);

        //rep_1(i,n,1) cout<<w[i]<<" ";puts("");

        int ans = inf;

        rep1(i,t,V)if(f[i] != inf){

            f[i] += change(i-t);

            ans = min(ans,f[i]);

        }

        printf("Case %d: %d\n",kase++,ans == inf?-:ans);

    }

    return ;

}

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