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hdu 1151 Air Raid - 二分匹配
With these assumptions your task is to write a program that finds the minimum number of paratroopers that can descend on the town and visit all the intersections of this town in such a way that more than one paratrooper visits no intersection. Each paratrooper lands at an intersection and can visit other intersections following the town streets. There are no restrictions about the starting intersection for each paratrooper.
Input
Your program should read sets of data. The first line of the input file contains the number of the data sets. Each data set specifies the structure of a town and has the format:
no_of_intersections
no_of_streets
S1 E1
S2 E2
......
Sno_of_streets Eno_of_streets
The first line of each data set contains a positive integer no_of_intersections (greater than 0 and less or equal to 120), which is the number of intersections in the town. The second line contains a positive integer no_of_streets, which is the number of streets in the town. The next no_of_streets lines, one for each street in the town, are randomly ordered and represent the town‘s streets. The line corresponding to street k (k <= no_of_streets) consists of two positive integers, separated by one blank: Sk (1 <= Sk <= no_of_intersections) - the number of the intersection that is the start of the street, and Ek (1 <= Ek <= no_of_intersections) - the number of the intersection that is the end of the street. Intersections are represented by integers from 1 to no_of_intersections.
There are no blank lines between consecutive sets of data. Input data are correct.
Output
The result of the program is on standard output. For each input data set the program prints on a single line, starting from the beginning of the line, one integer: the minimum number of paratroopers required to visit all the intersections in the town.
Sample Input
2433 41 32 3331 31 22 3
Sample Output
21
最小路径覆盖裸模型。答案 = 点数 - 最大匹配数。
Code
1 /** 2 * hdu 3 * Problem#1151 4 * Accepted 5 * Time:0ms 6 * Memory:1680k 7 */ 8 #include<iostream> 9 #include<cstdio> 10 #include<ctime> 11 #include<cctype> 12 #include<cstring> 13 #include<cstdlib> 14 #include<fstream> 15 #include<sstream> 16 #include<algorithm> 17 #include<map> 18 #include<set> 19 #include<stack> 20 #include<queue> 21 #include<vector> 22 #include<stack> 23 #ifndef WIN32 24 #define Auto "%lld" 25 #else 26 #define Auto "%I64d" 27 #endif 28 using namespace std; 29 typedef bool boolean; 30 const signed int inf = (signed)((1u << 31) - 1); 31 const double eps = 1e-10; 32 #define smin(a, b) a = min(a, b) 33 #define smax(a, b) a = max(a, b) 34 #define max3(a, b, c) max(a, max(b, c)) 35 #define min3(a, b, c) min(a, min(b, c)) 36 template<typename T> 37 inline boolean readInteger(T& u){ 38 char x; 39 int aFlag = 1; 40 while(!isdigit((x = getchar())) && x != ‘-‘ && x != -1); 41 if(x == -1) { 42 ungetc(x, stdin); 43 return false; 44 } 45 if(x == ‘-‘){ 46 x = getchar(); 47 aFlag = -1; 48 } 49 for(u = x - ‘0‘; isdigit((x = getchar())); u = (u << 1) + (u << 3) + x - ‘0‘); 50 ungetc(x, stdin); 51 u *= aFlag; 52 return true; 53 } 54 55 ///map template starts 56 typedef class Edge{ 57 public: 58 int end; 59 int next; 60 Edge(const int end = 0, const int next = 0):end(end), next(next){} 61 }Edge; 62 63 typedef class MapManager{ 64 public: 65 int ce; 66 int *h; 67 Edge *edge; 68 MapManager(){} 69 MapManager(int points, int limit):ce(0) { 70 h = new int[(const int)(points + 1)]; 71 edge = new Edge[(const int)(limit + 1)]; 72 memset(h, 0, sizeof(int) * (points + 1)); 73 } 74 inline void addEdge(int from, int end){ 75 edge[++ce] = Edge(end, h[from]); 76 h[from] = ce; 77 } 78 inline void addDoubleEdge(int from, int end){ 79 addEdge(from, end); 80 addEdge(end, from); 81 } 82 Edge& operator [] (int pos) { 83 return edge[pos]; 84 } 85 inline void clear() { 86 delete[] h; 87 delete[] edge; 88 } 89 }MapManager; 90 #define m_begin(g, i) (g).h[(i)] 91 ///map template ends 92 93 int T; 94 int n, m; 95 MapManager g; 96 97 inline void init() { 98 readInteger(n); 99 readInteger(m);100 g = MapManager(n, m);101 for(int i = 0, a, b; i < m; i++) {102 readInteger(a);103 readInteger(b);104 g.addEdge(a, b);105 }106 }107 108 int* match;109 boolean* vis;110 boolean dfs(int node) {111 for(int i = m_begin(g, node); i; i = g[i].next) {112 int &e = g[i].end;113 if(vis[e]) continue;114 vis[e] = true;115 if(match[e] == -1 || dfs(match[e])) {116 match[e] = node;117 return true;118 }119 }120 return false;121 }122 123 int res;124 inline void solve() {125 res = n;126 vis = new boolean[2 * n + 1];127 match = new int[2 * n + 1];128 memset(match, -1, sizeof(int) * (2 * n + 1));129 for(int i = 1; i <= n; i++) {130 memset(vis, false, sizeof(boolean) * (2 * n + 1));131 if(dfs(i)) res--;132 }133 printf("%d\n", res);134 delete[] vis;135 delete[] match;136 }137 138 int main() {139 readInteger(T);140 while(T--) {141 init();142 solve();143 }144 return 0;145 }
hdu 1151 Air Raid - 二分匹配