题意:
/**
* (1)求各点到源点的最小步数(DFS)
* (2)求各点到终点的最小步数(DFS)
* (3)如果点不是给定路径上的点,那么:该点到源点的最小步数+该点到终点的最小步数<=给定路径的步数,否则给定路径不是唯一最短的
* (4)如果两相邻点a、b之间存在墙,那么:a到源点的最小步数+1+b到终点的最小步数<=给定路径的步数
* 或者 a到终点的最小步数+1+b到源点的最小步数<=给定路径的步数,否则墙多余
* (5)如果存在点不可达,说明存在墙将该点封闭起来,可以证明墙至少有一块多余 (本程序未考虑这一点,也过了)*/
#include <stdio.h> #include <string.h> struct pos { int len[2]; int used; int r; int u; }p[20][20]; int num, wallNum, w, h, Dx, Dy, minPath; void DFS(int x, int y, int len, int flag) { if (len >= p[x][y].len[flag] && p[x][y].len[flag]!=0) return; if (x+y!=0 && (x!=Dx||y!=Dy)) p[x][y].len[flag] = len; len++; if (p[x][y].r==0 && x+1<w) DFS(x+1, y, len, flag); if (p[x][y].u==0 && y+1<h) DFS(x, y+1, len, flag); if (x-1>=0 && p[x-1][y].r==0) DFS(x-1, y, len, flag); if (y-1>=0 && p[x][y-1].u==0) DFS(x, y-1, len, flag); } int judge() { int i, j; for (i=0; i<w; i++) for (j=0; j<h; j++) { if (p[i][j].used==0 && p[i][j].len[0]+p[i][j].len[1]<=minPath) return 0; if (p[i][j].r==1 && i+1<w && p[i][j].len[0]+p[i+1][j].len[1]+1>minPath && p[i][j].len[1]+p[i+1][j].len[0]+1>minPath) return 0; if (p[i][j].u==1 && j+1<h && p[i][j].len[0]+p[i][j+1].len[1]+1>minPath && p[i][j].len[1]+p[i][j+1].len[0]+1>minPath) return 0; } return 1; } int main() { int x, y, x1, y1, x2, y2; char c; scanf("%d", &num); while (num--) { memset(p, 0, sizeof(p)); scanf("%d %d\n", &w, &h); p[0][0].used = 1; Dx = Dy = minPath = 0; while ((c=getchar())!='\n' && c!=EOF) { if (c == 'U') p[Dx][++Dy].used = 1; else if (c == 'D') p[Dx][--Dy].used = 1; else if (c == 'L') p[--Dx][Dy].used = 1; else if (c == 'R') p[++Dx][Dy].used = 1; minPath++; } scanf("%d", &wallNum); while (wallNum--) { scanf("%d %d %d %d", &x1, &y1, &x2, &y2); x = x1 - x2; y = y1 - y2; if (x==0 && y==1) p[x2][y2].u = 1; else if (x==0 && y==-1) p[x1][y1].u = 1; else if (x==1 && y==0) p[x2][y2].r = 1; else if (x==-1 && y==0) p[x1][y1].r = 1; } DFS(0, 0, 0, 0); DFS(Dx, Dy, 0, 1); if(judge()) printf("CORRECT\n"); else printf("INCORRECT\n"); } return 0; }
