大橙子网站建设,新征程启航
为企业提供网站建设、域名注册、服务器等服务
这篇文章主要介绍了C语言数据结构之迷宫问题的示例分析,具有一定借鉴价值,感兴趣的朋友可以参考下,希望大家阅读完这篇文章之后大有收获,下面让小编带着大家一起了解一下。
让客户满意是我们工作的目标,不断超越客户的期望值来自于我们对这个行业的热爱。我们立志把好的技术通过有效、简单的方式提供给客户,将通过不懈努力成为客户在信息化领域值得信任、有价值的长期合作伙伴,公司提供的服务项目有:空间域名、雅安服务器托管、营销软件、网站建设、内黄网站维护、网站推广。本文实例为大家分享了数据结构c语言版迷宫问题栈实现的具体代码,供大家参考,具体内容如下
#includeusing namespace std; #define MAXSIZE 10 typedef int Status; typedef struct{ int x; int y; }Postype; typedef struct{ int ord; Postype seat; int dir; }SElemType;//栈的元素类型 typedef struct{ //SElemType data[MAXSIZE]; SElemType* top; SElemType* base; }Stack;//栈的结构类型 typedef struct{ char arr[MAXSIZE][MAXSIZE]; }MAZETYPE;//迷宫结构体 MAZETYPE maze; void InitMaze() { maze.arr[0][0] = maze.arr[0][1] = maze.arr[0][2] = maze.arr[0][3] = maze.arr[0][4] = maze.arr[0][5] = maze.arr[0][6] = maze.arr[0][7] = maze.arr[0][8] = maze.arr[0][9] = '1'; maze.arr[1][0] = maze.arr[1][3] = maze.arr[1][7] = maze.arr[1][9] = '1'; maze.arr[1][1] = maze.arr[1][2] = maze.arr[1][4] = maze.arr[1][5] = maze.arr[1][6] = maze.arr[1][8] = '0'; maze.arr[2][0] = maze.arr[2][3] = maze.arr[2][7] = maze.arr[2][9] = '1'; maze.arr[2][1] = maze.arr[2][2] = maze.arr[2][4] = maze.arr[2][5] = maze.arr[2][6] = maze.arr[2][8] = '0'; maze.arr[3][0] = maze.arr[3][5] = maze.arr[3][6] = maze.arr[3][9] = '1'; maze.arr[3][1] = maze.arr[3][2] = maze.arr[3][3] = maze.arr[3][4] = maze.arr[3][7] = maze.arr[3][8] = '0'; maze.arr[4][0] = maze.arr[4][2] = maze.arr[4][3] = maze.arr[4][4] = maze.arr[4][9] = '1'; maze.arr[4][1] = maze.arr[4][5] = maze.arr[4][6] = maze.arr[4][7] = maze.arr[4][8] = '0'; maze.arr[5][0] = maze.arr[5][4] = maze.arr[5][9] = '1'; maze.arr[5][1] = maze.arr[5][2] = maze.arr[5][3] = maze.arr[5][5] = maze.arr[5][6] = maze.arr[5][7] = maze.arr[5][8] = '0'; maze.arr[6][0] = maze.arr[6][2] = maze.arr[6][6] = maze.arr[6][9] = '1'; maze.arr[6][1] = maze.arr[6][3] = maze.arr[6][4] = maze.arr[6][5] = maze.arr[6][7] = maze.arr[6][8] = '0'; maze.arr[7][0] = maze.arr[7][2] = maze.arr[7][3] = maze.arr[7][4] = maze.arr[7][6] = maze.arr[7][9] = '1'; maze.arr[7][1] = maze.arr[7][5] = maze.arr[7][7] = maze.arr[7][8] = '0'; maze.arr[8][0] = maze.arr[8][1] = maze.arr[8][9] = '0'; maze.arr[8][2] = maze.arr[8][3] = maze.arr[8][4] = maze.arr[8][5] = maze.arr[8][6] = maze.arr[8][7] = maze.arr[8][8] = '0'; maze.arr[9][0] = maze.arr[9][1] = maze.arr[9][2] = maze.arr[9][3] = maze.arr[9][4] = maze.arr[9][5] = maze.arr[9][6] = maze.arr[9][7] = maze.arr[9][8] = maze.arr[9][9] = '1'; } Status initStack(Stack &s) { s.base = (SElemType*)malloc(MAXSIZE*sizeof(SElemType)); if (!s.base) return 0; s.top = s.base; return 1; } void Push(Stack &s, SElemType e) { *s.top++ = e; } void Pop(Stack &s, SElemType &e) { e = *--s.top; } Status StackEmpty(Stack &s) { if (s.top == s.base) return 1; else return 0; } Status Pass(Postype curpos) { if (maze.arr[curpos.x][curpos.y] == '0') return 1; else return 0; } void Foot(Postype curpos) { maze.arr[curpos.x][curpos.y] = '*'; } void MarkPrint(Postype curpos) { maze.arr[curpos.x][curpos.y] = '!'; } Status StructCmp(Postype a, Postype b) { if (a.x = b.x&&a.y == b.y) return 1; else return 0; } //下一个位置 Postype NextPos(Postype CurPos, int Dir) { Postype ReturnPos; switch (Dir) { case 1: ReturnPos.x = CurPos.x; ReturnPos.y = CurPos.y + 1; break; case 2: ReturnPos.x = CurPos.x + 1; ReturnPos.y = CurPos.y; break; case 3: ReturnPos.x = CurPos.x; ReturnPos.y = CurPos.y - 1; break; case 4: ReturnPos.x = CurPos.x - 1; ReturnPos.y = CurPos.y; break; } return ReturnPos; } Status MazePath(Postype start, Postype end) { Stack s; SElemType e; initStack(s); Postype curpos = start; int curstep = 1; do{ if (Pass(curpos)) { Foot(curpos); e = { curstep, curpos, 1 }; Push(s, e); if (StructCmp(curpos, end)) return 1; curpos = NextPos(curpos, 1); curstep++; } else { if (!StackEmpty(s)) { Pop(s, e); while (e.dir ==4 &&!StackEmpty(s)) { MarkPrint(e.seat); Pop(s, e); } if (e.dir < 4 && !StackEmpty(s)) { e.dir++; Push(s, e); curpos = NextPos(e.seat, e.dir); } } } } while (!StackEmpty(s)); return 0; } int main() { InitMaze(); Postype s, e; s.x = s.y = 1; e.x = e.y = 8; if (MazePath(s, e)) printf("迷宫成功解密!\n"); else printf("解密失败\n"); for (int i = 0; i < 10; i++) { for (int j = 0; j < 10; j++) { printf("%c ", maze.arr[i][j]); } printf("\n"); } cout << "-=================================" << endl; for (int i = 0; i < 10; i++) { for (int j = 0; j < 10; j++) { if (maze.arr[i][j] == '*' || maze.arr[i][j] == '!') printf("%c ", maze.arr[i][j]); else cout << " "; } printf("\n"); } }
感谢你能够认真阅读完这篇文章,希望小编分享的“C语言数据结构之迷宫问题的示例分析”这篇文章对大家有帮助,同时也希望大家多多支持创新互联建站,关注创新互联网站建设公司行业资讯频道,更多相关知识等着你来学习!
另外有需要云服务器可以了解下创新互联建站www.cdcxhl.com,海内外云服务器15元起步,三天无理由+7*72小时售后在线,公司持有idc许可证,提供“云服务器、裸金属服务器、高防服务器、香港服务器、美国服务器、虚拟主机、免备案服务器”等云主机租用服务以及企业上云的综合解决方案,具有“安全稳定、简单易用、服务可用性高、性价比高”等特点与优势,专为企业上云打造定制,能够满足用户丰富、多元化的应用场景需求。