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python环形单链表的约瑟夫问题详解-创新互联

题目:

创新互联是一家成都网站设计、网站制作,提供网页设计,网站设计,网站制作,建网站,定制设计,网站开发公司,自2013年创立以来是互联行业建设者,服务者。以提升客户品牌价值为核心业务,全程参与项目的网站策划设计制作,前端开发,后台程序制作以及后期项目运营并提出专业建议和思路。

一个环形单链表,从头结点开始向后,指针每移动一个结点,就计数加1,当数到第m个节点时,就把该结点删除,然后继续从下一个节点开始从1计数,循环往复,直到环形单链表中只剩下了一个结点,返回该结点。

这个问题就是著名的约瑟夫问题。

代码:


首先给出环形单链表的数据结构:

class Node(object):
 def __init__(self, value, next=0):
  self.value = value
  self.next = next # 指针

class RingLinkedList(object):
 # 链表的数据结构
 def __init__(self):
  self.head = 0 # 头部

 def __getitem__(self, key):
  if self.is_empty():
   print 'Linked list is empty.'
   return
  elif key < 0 or key > self.get_length():
   print 'The given key is wrong.'
   return
  else:
   return self.get_elem(key)

 def __setitem__(self, key, value):
  if self.is_empty():
   print 'Linked list is empty.'
   return
  elif key < 0 or key > self.get_length():
   print 'The given key is wrong.'
   return
  else:
   return self.set_elem(key, value)

 def init_list(self, data): # 按列表给出 data
  self.head = Node(data[0])
  p = self.head # 指针指向头结点
  for i in data[1:]:
   p.next = Node(i) # 确定指针指向下一个结点
   p = p.next # 指针滑动向下一个位置
  p.next = self.head

 def get_length(self):
  p, length = self.head, 0
  while p != 0:
   length += 1
   p = p.next
   if p == self.head:
    break
  return length

 def is_empty(self):
  if self.head == 0:
   return True
  else:
   return False

 def insert_node(self, index, value):
  length = self.get_length()
  if index < 0 or index > length:
   print 'Can not insert node into the linked list.'
  elif index == 0:
   temp = self.head
   self.head = Node(value, temp)
   p = self.head
   for _ in xrange(0, length):
    p = p.next
   print "p.value", p.value
   p.next = self.head
  elif index == length:
   elem = self.get_elem(length-1)
   elem.next = Node(value)
   elem.next.next = self.head
  else:
   p, post = self.head, self.head
   for i in xrange(index):
    post = p
    p = p.next
   temp = p
   post.next = Node(value, temp)

 def delete_node(self, index):
  if index < 0 or index > self.get_length()-1:
   print "Wrong index number to delete any node."
  elif self.is_empty():
   print "No node can be deleted."
  elif index == 0:
   tail = self.get_elem(self.get_length()-1)
   temp = self.head
   self.head = temp.next
   tail.next = self.head
  elif index == self.get_length()-1:
   p = self.head
   for i in xrange(self.get_length()-2):
    p = p.next
   p.next = self.head
  else:
   p = self.head
   for i in xrange(index-1):
    p = p.next
   p.next = p.next.next

 def show_linked_list(self): # 打印链表中的所有元素
  if self.is_empty():
   print 'This is an empty linked list.'
  else:
   p, container = self.head, []
   for _ in xrange(self.get_length()-1): #
    container.append(p.value)
    p = p.next
   container.append(p.value)
   print container

 def clear_linked_list(self): # 将链表置空
  p = self.head
  for _ in xrange(0, self.get_length()-1):
   post = p
   p = p.next
   del post
  self.head = 0

 def get_elem(self, index):
  if self.is_empty():
   print "The linked list is empty. Can not get element."
  elif index < 0 or index > self.get_length()-1:
   print "Wrong index number to get any element."
  else:
   p = self.head
   for _ in xrange(index):
    p = p.next
   return p

 def set_elem(self, index, value):
  if self.is_empty():
   print "The linked list is empty. Can not set element."
  elif index < 0 or index > self.get_length()-1:
   print "Wrong index number to set element."
  else:
   p = self.head
   for _ in xrange(index):
    p = p.next
   p.value = value

 def get_index(self, value):
  p = self.head
  for i in xrange(self.get_length()):
   if p.value == value:
    return i
   else:
    p = p.next
  return -1

新闻标题:python环形单链表的约瑟夫问题详解-创新互联
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