标题要求必须按照L O V E 行走为了，你必须至少有一个完整的LOVE。说明可以通过同一个点反复

对每一个点拆分为4个点。分别为从L,O,V,E到达。

起始点看做是从E到达的

spfa时发现当前点距离同样，比較经过的边数，此时若边数更大，也要入队列！由于要更新后面的点经过的边数

trick 是点能够有自环，当N = 1时

1 4

1 1 1 L

1 1 1 O

1 1 1 V

1 1 1 E

还有就是数据可能会超int

敲了两遍，第一遍dijsktra怎么測都对，trick也都想到了。就是WA到死，第二遍初始化手贱4写成3。

。。

附送好多组数据。。。

都是自己编的

//#pragma comment(linker, "/STACK:102400000,102400000")
//HEAD
#include
#include
#include
#include
#include

#include
#include
#include
#include
#include

using namespace std;
//LOOP
#define FE(i, a, b) for(int i = (a); i <= (b); ++i) #define FED(i, b, a) for(int i = (b); i>= (a); --i)
#define REP(i, N) for(int i = 0; i < (N); ++i)
#define CLR(A,value) memset(A,value,sizeof(A))
//STL
#define PB push_back
//INPUT
#define RI(n) scanf("%d", &n)
#define RII(n, m) scanf("%d%d", &n, &m)
#define RIII(n, m, k) scanf("%d%d%d", &n, &m, &k)
#define RS(s) scanf("%s", s)
typedef long long LL;
const int MAXN = 1010;

#define FF(i, a, b) for(int i = (a); i < (b); ++i) #define FD(i, b, a) for(int i = (b) - 1; i >= (a); --i)
#define CPY(a, b) memcpy(a, b, sizeof(a))
#define FC(it, c) for(__typeof((c).begin()) it = (c).begin(); it != (c).end(); it++)
#define EQ(a, b) (fabs((a) - (b)) <= 1e-10) #define ALL(c) (c).begin(), (c).end() #define SZ(V) (int)V.size() #define RIV(n, m, k, p) scanf("%d%d%d%d", &n, &m, &k, &p) #define RV(n, m, k, p, q) scanf("%d%d%d%d%d", &n, &m, &k, &p, &q) #define WI(n) printf("%d\n", n) #define WS(s) printf("%s\n", s) #define sqr(x) x * x typedef vector VI;
typedef unsigned long long ULL;
const double eps = 1e-10;
const LL MOD = 1e9 + 7;

typedef long long LL;
using namespace std;

const int maxn = 3010;
const LL INF = 1e18;

struct Edge{
int from, to, dis, let;
Edge(int u, int v, int w, int let): from(u), to(v), dis(w), let(let) {}
};

struct Node{
int u, let;
Node(int d, int let): u(d), let(let) {}
};

int n, m;
LL d[maxn][5];
int num[maxn][5], inq[maxn][5];
VI G[maxn];
vector edges;

void init(int nn)
{
n = nn;
edges.clear();
FE(i, 0, n) G[i].clear();
}

void addEdge(int u, int v, int w, int let)
{
edges.push_back(Edge(u, v, w, let));
m = edges.size();
G[u].push_back(m - 1);
}

void spfa()
{
queue Q;
Q.push(Node(1, 3));
FE(i, 0, n) REP(j, 4) d[i][j] = INF;
CLR(num, 0), CLR(inq, 0);
d[1][3] = 0, inq[1][3] = 1;
while (!Q.empty())
{
Node x = Q.front(); Q.pop();
int u = x.u, let = x.let;
inq[u][let] = 0;
REP(i, G[u].size())
{
Edge& e = edges[G[u][i]];
if (e.let != (let + 1) % 4) continue;
if (d[e.to][e.let] > d[u][let] + e.dis || !d[e.to][e.let])
{
d[e.to][e.let] = d[u][let] + e.dis;
num[e.to][e.let] = num[u][let] + 1;
// printf("now:%d to:%d letter:%d num:%d d:%d\n", u, e.to, e.let, num[e.to][e.let], d[e.to][e.let]);
if (!inq[e.to][e.let])
{
inq[e.to][e.let] = 1;
Q.push(Node(e.to, e.let));
}
}
else if (d[e.to][e.let] == d[u][let] + e.dis && num[e.to][e.let] <= num[u][let])
{
num[e.to][e.let] = num[u][let] + 1;
if (!inq[e.to][e.let])
{
inq[e.to][e.let] = 1;
Q.push(Node(e.to, e.let));
}
}
}
}
}

int main()
{
int T, N, M;
RI(T);
FE(kase, 1, T)
{
int x, y, z, let;
char s[20];
RII(N, M);
init(N);
REP(i, M)
{
RIII(x, y, z);
RS(s);
if (s[0] == 'L') let = 0;
if (s[0] == 'O') let = 1;
if (s[0] == 'V') let = 2;
if (s[0] == 'E') let = 3;
addEdge(x, y, z, let);
addEdge(y, x, z, let);
}
spfa();
printf("Case %d: ", kase);
// cout << d[N][3] << num[N][3] << endl;
if (d[N][3] == INF || num[N][3] / 4 < 1)
{
printf("Binbin you disappoint Sangsang again, damn it!\n");
continue;
}
printf("Cute Sangsang, Binbin will come with a donkey after travelling %I64d meters and finding %d LOVE strings at last.\n",
d[N][3], num[N][3] / 4);
}
return 0;
}
/*
55
6 6
1 2 10 L
2 3 20 O
2 4 30 O
3 5 30 V
4 5 10 V
5 6 10 E
4 4
1 2 1 L
2 1 1 O
1 3 1 V
3 4 1 E
4 4
1 2 1 L
2 3 1 O
3 4 1 V
4 1 1 E
1 0
2 1
1 2 1 E

2 8
1 1 2 L
1 1 1 O
1 1 1 V
1 1 1 E
1 2 3 L
2 1 1 O
1 2 1 V
2 1 1 E

12 12
1 5 5 L
5 6 5 O
6 7 5 V
7 12 5 E
1 2 1 L
2 3 1 O
3 4 1 V
4 8 1 E
8 9 1 L
9 10 1 O
10 11 1 V
11 12 13 E

23 24
1 5 5 L
5 6 5 O
6 7 5 V
7 12 5 E
1 2 1 L
2 3 1 O
3 4 1 V
4 8 1 E
8 9 1 L
9 10 1 O
10 11 1 V
11 12 13 E
12 13 1 L
13 14 1 O
14 15 1 V
15 16 1 E
16 17 1 L
17 18 1 O
18 19 1 V
19 23 13 E
12 20 5 L
20 21 5 O
21 22 5 V
22 23 5 E
*/

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