题目描述
定义栈的数据结构,请在该类型中实现一个能够得到栈中所含最小元素的min函数(时间复杂度应为O(1))。
# -*- coding:utf-8 -*-
class Solution:
def __init__(self):
self.stack1=[]
self.stack2=[]
def push(self, node):
# write code here
self.stack1.append(node)
if len(self.stack2)==0 or self.stack2[-1]>node:
self.stack2.append(node)
else:
self.stack2.append(self.stack2[-1])
def pop(self):
if len(self.stack1)>0:
self.stack2.pop()
return self.stack1.pop()
# write code here
def top(self):
# write code here
if len(self.stack1)>0:
return self.stack1[-1]
def min(self):
# write code here
if len(self.stack2)>0:
return self.stack2[-1]