标签:style blog http color os io for ar
题意 : 一个10×15的格子,有三种颜色的球,颜色相同且在同一片内的球叫做cluster(具体解释就是,两个球颜色相同且一个球可以通过上下左右到达另一个球,则这两个球属于同一个cluster,同时cluster含有至少两个球),每次选择cluster中包含同色球最多的进行消除,每次消除完之后,上边的要往下移填满空的地方,一列上的球移动之前与之后相对位置不变,如果有空列,右边的列往左移动,每一列相对位置不变 。
思路 : 模拟。。。。。。不停的递归。。。。。
1 ////POJ 1027 2 #include <iostream> 3 #include <string> 4 #include <cstdio> 5 #include <cstring> 6 using namespace std; 7 int tmp,ans,tot,sum,k,xx,yy; 8 //tmp:cluster中同色球的个数,ans:每次要消除的球的个数,tot:当前图中剩的总的有颜色的球,sum,分值,k:步数,xx,yy指的是要消除的cluster是从该点开始的 9 bool v[11][16]; 10 string a[11]; 11 char ch; 12 int dx[4] = {0,1,0,-1}; 13 int dy[4] = {1,0,-1,0}; 14 void remov(int x,int y)//递归消除掉同色的 15 { 16 char c = a[x][y]; 17 a[x][y] = ‘0‘; 18 for (int i = 0 ; i < 4 ; i++) 19 { 20 int xx = x + dx[i]; 21 int yy = y + dy[i]; 22 if (xx >= 0 && yy >= 0 && xx < 10 && yy < 15 && a[xx][yy] == c) 23 remov(xx,yy); 24 } 25 } 26 void cluster(int x,int y) 27 { 28 tmp++; 29 v[x][y] = 1; 30 for (int k = 0 ; k < 4 ; k++) 31 { 32 int xx = x + dx[k]; 33 int yy = y + dy[k]; 34 if (xx >= 0 && yy >= 0 && xx < 10 && yy < 15 && !v[xx][yy] && a[xx][yy]==a[x][y]) 35 cluster(xx,yy); 36 } 37 } 38 int Find() 39 { 40 int maxx = 0; 41 memset(v,0,sizeof(v)); 42 for (int j = 0; j < 15; j++) 43 for (int i = 0; i < 10; i++) 44 if (!v[i][j] && a[i][j]!=‘0‘) 45 { 46 tmp = 0; 47 cluster(i,j); 48 if (tmp > maxx) 49 { 50 maxx = tmp; 51 ch = a[xx = i][yy = j]; 52 } 53 } 54 return maxx; 55 } 56 void fresh() 57 { 58 for (int j = 0 ; j < 15 ; j++) 59 { 60 int cnt = 0; 61 for (int i = 0 ; i < 10 ; i++) 62 if (a[i][j] == ‘0‘) cnt++; 63 for (int i = 0 ; i < 10-cnt ; i++) 64 while (a[i][j]==‘0‘)//因为是倒着输入的,所以换不是往上换 65 { 66 int c = i; 67 while (c != 9) 68 { 69 swap(a[c][j],a[c+1][j]); 70 c++; 71 } 72 } 73 } 74 int vis1[16],tmpx = 0; 75 memset(vis1,0,sizeof(vis1)); 76 for (int j = 0 ; j < 15 ; j++)//找空列 77 { 78 int cnt = 0; 79 for (int i = 0 ; i < 10; i++) 80 if (a[i][j] == ‘0‘) cnt++; 81 if (cnt == 10) 82 { 83 vis1[j] = 1; 84 tmpx++; 85 } 86 } 87 for (int j = 0 ; j < 15-tmpx ; j++) 88 while (vis1[j] == 1) 89 { 90 int c = j; 91 while (c != 14) 92 { 93 for (int i = 0 ; i < 10; i++) 94 swap(a[i][c],a[i][c+1]); 95 swap(vis1[c],vis1[c+1]); 96 c++; 97 } 98 } 99 } 100 int main() 101 { 102 int T ,casee = 1; 103 scanf("%d",&T); 104 while(T--) 105 { 106 for (int i=9; i>=0; i--) 107 cin >> a[i]; 108 printf("Game %d:\n\n",casee ++); 109 tot = 150; 110 k = 1; 111 sum = 0; 112 while (1) 113 { 114 ans = Find(); 115 if (ans <= 1) break; 116 printf("Move %d at (%d,%d): removed %d balls of color %c, got %d points.\n", 117 k++,xx+1,yy+1,ans,ch,(ans-2)*(ans-2)); 118 tot -= ans; 119 sum += (ans-2)*(ans-2); 120 remov(xx,yy); 121 fresh(); 122 } 123 if (tot == 0) sum += 1000; 124 printf("Final score: %d, with %d balls remaining.\n\n",sum,tot); 125 } 126 return 0; 127 }
POJ 1027 The Same Game(模拟),布布扣,bubuko.com
标签:style blog http color os io for ar
原文地址:http://www.cnblogs.com/luyingfeng/p/3915662.html