LeetCode:155. 最小栈
1、题目描述
设计一个支持 push,pop,top 操作,并能在常数时间内检索到最小元素的栈。
- push(x) -- 将元素 x 推入栈中。
- pop() -- 删除栈顶的元素。
- top() -- 获取栈顶元素。
- getMin() -- 检索栈中的最小元素。
示例:
MinStack minStack = new MinStack(); minStack.push(-2); minStack.push(0); minStack.push(-3); minStack.getMin(); --> 返回 -3. minStack.pop(); minStack.top(); --> 返回 0. minStack.getMin(); --> 返回 -2.
2、题解
2.1、解法一
class MinStack(object): def __init__(self): """ initialize your data structure here. """ self.stack = [] self.min = None def push(self, x): """ :type x: int :rtype: void """ if self.min == None: self.min = x self.stack.append(x) self.min = min(self.min,x) def pop(self): """ :rtype: void """ self.stack.pop() if len(self.stack) == 0: self.min = None else: self.min = min(self.stack) def top(self): """ :rtype: int """ return self.stack[-1] def getMin(self): """ :rtype: int """ return self.min # Your MinStack object will be instantiated and called as such: # obj = MinStack() # obj.push(x) # obj.pop() # param_3 = obj.top() # param_4 = obj.getMin()