题目描述
三合一。描述如何只用一个数组来实现三个栈。
你应该实现push(stackNum, value)、pop(stackNum)、isEmpty(stackNum)、peek(stackNum)方法。stackNum表示栈下标,value表示压入的值。
构造函数会传入一个stackSize参数,代表每个栈的大小。
示例1:
输入:
["TripleInOne", "push", "push", "pop", "pop", "pop", "isEmpty"]
[[1], [0, 1], [0, 2], [0], [0], [0], [0]]
输出:
[null, null, null, 1, -1, -1, true]
说明:当栈为空时`pop, peek`返回-1,当栈满时`push`不压入元素。
示例2:
输入:
["TripleInOne", "push", "push", "push", "pop", "pop", "pop", "peek"]
[[2], [0, 1], [0, 2], [0, 3], [0], [0], [0], [0]]
输出:
[null, null, null, null, 2, 1, -1, -1]
解法
二维数组解决;也可以使用一维数组,以下标 0,3,6,..、1,4,7,..、2,5,8,.. 区分,一维数组最后三个元素记录每个栈的元素个数。
Python3
class TripleInOne:
def __init__(self, stackSize: int):
self._capacity = stackSize
self._s = [[], [], []]
def push(self, stackNum: int, value: int) -> None:
if len(self._s[stackNum]) < self._capacity:
self._s[stackNum].append(value)
def pop(self, stackNum: int) -> int:
return -1 if self.isEmpty(stackNum) else self._s[stackNum].pop()
def peek(self, stackNum: int) -> int:
return -1 if self.isEmpty(stackNum) else self._s[stackNum][-1]
def isEmpty(self, stackNum: int) -> bool:
return len(self._s[stackNum]) == 0
# Your TripleInOne object will be instantiated and called as such:
# obj = TripleInOne(stackSize)
# obj.push(stackNum,value)
# param_2 = obj.pop(stackNum)
# param_3 = obj.peek(stackNum)
# param_4 = obj.isEmpty(stackNum)
