• CF431B Shower Line


    Many students live in a dormitory. A dormitory is a whole new world of funny amusements and possibilities but it does have its drawbacks.

    There is only one shower and there are multiple students who wish to have a shower in the morning. That's why every morning there is a line of five people in front of the dormitory shower door. As soon as the shower opens, the first person from the line enters the shower. After a while the first person leaves the shower and the next person enters the shower. The process continues until everybody in the line has a shower.

    Having a shower takes some time, so the students in the line talk as they wait. At each moment of time the students talk in pairs: the (2i - 1)-th man in the line (for the current moment) talks with the (2i)-th one.

    Let's look at this process in more detail. Let's number the people from 1 to 5. Let's assume that the line initially looks as 23154 (person number 2 stands at the beginning of the line). Then, before the shower opens, 2 talks with 3, 1 talks with 5, 4 doesn't talk with anyone. Then 2 enters the shower. While 2 has a shower, 3 and 1 talk, 5 and 4 talk too. Then, 3 enters the shower. While 3 has a shower, 1 and 5 talk, 4 doesn't talk to anyone. Then 1 enters the shower and while he is there, 5 and 4 talk. Then 5 enters the shower, and then 4 enters the shower.

    We know that if students i and j talk, then the i-th student's happiness increases by gij and the j-th student's happiness increases by gji. Your task is to find such initial order of students in the line that the total happiness of all students will be maximum in the end. Please note that some pair of students may have a talk several times. In the example above students 1 and 5 talk while they wait for the shower to open and while 3 has a shower.

    Input

    The input consists of five lines, each line contains five space-separated integers: the j-th number in the i-th line shows gij (0 ≤ gij ≤ 105). It is guaranteed that gii = 0 for all i.

    Assume that the students are numbered from 1 to 5.

    Output

    Print a single integer — the maximum possible total happiness of the students.

    Examples
    Input
    Copy
    0 0 0 0 9
    0 0 0 0 0
    0 0 0 0 0
    0 0 0 0 0
    7 0 0 0 0
    Output
    Copy
    32
    Input
    Copy
    0 43 21 18 2
    3 0 21 11 65
    5 2 0 1 4
    54 62 12 0 99
    87 64 81 33 0
    Output
    Copy
    620
    Note

    In the first sample, the optimal arrangement of the line is 23154. In this case, the total happiness equals:

    (g23 + g32 + g15 + g51) + (g13 + g31 + g54 + g45) + (g15 + g51) + (g54 + g45) = 32
    .
     
    next_permutation即可;
    #include<iostream>
    #include<cstdio>
    #include<algorithm>
    #include<cstdlib>
    #include<cstring>
    #include<string>
    #include<cmath>
    #include<map>
    #include<set>
    #include<vector>
    #include<queue>
    #include<bitset>
    #include<ctime>
    #include<deque>
    #include<stack>
    #include<functional>
    #include<sstream>
    
    //#include<cctype>
    //#pragma GCC optimize("O3")
    using namespace std;
    #define maxn 1000005
    #define inf 0x3f3f3f3f
    #define INF 9999999999
    #define rdint(x) scanf("%d",&x)
    #define rdllt(x) scanf("%lld",&x)
    #define rdult(x) scanf("%lu",&x)
    #define rdlf(x) scanf("%lf",&x)
    #define rdstr(x) scanf("%s",x)
    typedef long long  ll;
    typedef unsigned long long ull;
    typedef unsigned int U;
    #define ms(x) memset((x),0,sizeof(x))
    const long long int mod = 1e9 + 7;
    #define Mod 1000000000
    #define sq(x) (x)*(x)
    #define eps 1e-3
    typedef pair<int, int> pii;
    #define pi acos(-1.0)
    //const int N = 1005;
    #define REP(i,n) for(int i=0;i<(n);i++)
    
    inline ll rd() {
    	ll x = 0;
    	char c = getchar();
    	bool f = false;
    	while (!isdigit(c)) {
    		if (c == '-') f = true;
    		c = getchar();
    	}
    	while (isdigit(c)) {
    		x = (x << 1) + (x << 3) + (c ^ 48);
    		c = getchar();
    	}
    	return f ? -x : x;
    }
    
    ll gcd(ll a, ll b) {
    	return b == 0 ? a : gcd(b, a%b);
    }
    ll sqr(ll x) { return x * x; }
    
    /*ll ans;
    ll exgcd(ll a, ll b, ll &x, ll &y) {
    	if (!b) {
    		x = 1; y = 0; return a;
    	}
    	ans = exgcd(b, a%b, x, y);
    	ll t = x; x = y; y = t - a / b * y;
    	return ans;
    }
    */
    
    
    
    ll qpow(ll a, ll b, ll c) {
    	ll ans = 1;
    	a = a % c;
    	while (b) {
    		if (b % 2)ans = ans * a%c;
    		b /= 2; a = a * a%c;
    	}
    	return ans;
    }
    /*
    int n, m;
    int st, ed;
    struct node {
    	int u, v, nxt, w;
    }edge[maxn<<1];
    
    int head[maxn], cnt;
    
    void addedge(int u, int v, int w) {
    	edge[cnt].u = u; edge[cnt].v = v; edge[cnt].w = w;
    	edge[cnt].nxt = head[u]; head[u] = cnt++;
    }
    
    int rk[maxn];
    
    int bfs() {
    	queue<int>q;
    	ms(rk);
    	rk[st] = 1; q.push(st);
    	while (!q.empty()) {
    		int tmp = q.front(); q.pop();
    		for (int i = head[tmp]; i != -1; i = edge[i].nxt) {
    			int to = edge[i].v;
    			if (rk[to] || edge[i].w <= 0)continue;
    			rk[to] = rk[tmp] + 1; q.push(to);
    		}
    	}
    	return rk[ed];
    }
    int dfs(int u, int flow) {
    	if (u == ed)return flow;
    	int add = 0;
    	for (int i = head[u]; i != -1 && add < flow; i = edge[i].nxt) {
    		int v = edge[i].v;
    		if (rk[v] != rk[u] + 1 || !edge[i].w)continue;
    		int tmpadd = dfs(v, min(edge[i].w, flow - add));
    		if (!tmpadd) { rk[v] = -1; continue; }
    		edge[i].w -= tmpadd; edge[i ^ 1].w += tmpadd; add += tmpadd;
    	}
    	return add;
    }
    ll ans;
    void dinic() {
    	while (bfs())ans += dfs(st, inf);
    }
    */
    
    int g[10][10];
    int a[6];
    int main()
    {
    	//ios::sync_with_stdio(0);
    	//memset(head, -1, sizeof(head));
    	for (int i = 1; i <= 5; i++)
    		for (int j = 1; j <= 5; j++)cin >> g[i][j];
    	for (int i = 1; i <= 5; i++) {
    		a[i] = i;
    	}
    	ll maxx = -inf;
    	do {
    		ll ans = 0;
    		ans += (g[a[1]][a[2]] + g[a[2]][a[1]] + g[a[3]][a[4]] + g[a[4]][a[3]]);
    		ans += (g[a[2]][a[3]] + g[a[3]][a[2]] + g[a[4]][a[5]]+g[a[5]][a[4]]);
    		ans += (g[a[3]][a[4]] + g[a[4]][a[3]]); ans += (g[a[4]][a[5]] + g[a[5]][a[4]]);
    		maxx = max(maxx, ans);
    	} while (next_permutation(a + 1, a + 1 + 5));
    	cout << maxx << endl;
        return 0;
    }
    
    EPFL - Fighting
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  • 原文地址:https://www.cnblogs.com/zxyqzy/p/10050200.html
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