所谓单向循环链表,不过是在单向链表的基础上,如响尾蛇般将其首尾相连,也因此有诸多类似之处与务必留心之点。尤其是可能涉及到头尾节点的操作,不可疏忽。
对于诸多操所必须的遍历,这时的条件是什么?又应该在哪里停止?
在做删除操作时,如若待删除节点是头或尾节点时,该如何处理?如果链表只有一个节点,又该如何处理?
class Node(object): def __init__(self, value): # 元素域 self.value = value # 链接域 self.next = None class CircularLinkedListOneway(object): def __init__(self, node=None): # 构造非空链时,让其地址域指向自己 if node: node.next = node self.__head = node def is_empty(self): # 头节点不为None则不为空 return self.__head == None def __len__(self): count = 1 cur = self.__head if self.is_empty(): return 0 while cur.next != self.__head: count += 1 cur = cur.next return count def traversal(self): if self.is_empty(): return cur = self.__head while cur.next != self.__head: print(cur.value) cur = cur.next # 退出循环时,cur正是尾节点 print(cur.value) def add(self, value): """头插法""" node = Node(value) if self.is_empty(): self.__head = node self.__head.next = self.__head return cur = self.__head while cur.next != self.__head: cur = cur.next # 新节点的next指针指向原头节点 node.next = self.__head # 将新节点指向头节点 self.__head = node # 尾节点next指针指向新头节点 cur.next = self.__head def append(self, value): node = Node(value) cur = self.__head if self.is_empty(): self.__head = node self.__head.next = self.__head return while cur.next != self.__head: cur = cur.next node.next = cur.next cur.next = node def insert(self, pos, value): if pos <= 0: self.add(value) elif pos > len(self) - 1: self.append(value) else: node = Node(value) cur = self.__head count = 0 while count < pos - 1: count += 1 cur = cur.next node.next = cur.next cur.next = node def search(self, value): if self.is_empty(): return False cur = self.__head while cur.next != self.__head: if cur.value == value: return True else: cur = cur.next # 别忘了while循环外的尾节点 if cur.value == value: return True return False def remove(self, value): cur = self.__head prior = None if self.is_empty(): return while cur.next != self.__head: # 待删除节点如果找到 if cur.value == value: # 待删除节点在头部 if cur == self.__head: rear = self.__head while rear.next != self.__head: rear = rear.next self.__head = cur.next rear.next = self.__head # 待删除节点在中间 else: prior.next = cur.next
# 这里不是跳出循环的break,而是退出函数的return哦,因为已经处理完毕了 return # 如果还没找到 else: prior = cur cur = cur.next # 待删除节点在尾部 if cur.value == value: # 如果链表中只有一个元素,则此时prior为None,Next属性就会报错 # 此时直接使其头部元素为None即可 if cur == self.__head: self.__head = None return prior.next = cur.next
原文:https://www.cnblogs.com/yifeixu/p/8965082.html