LeetCode 1381. Design a Stack With Increment Operation设计一个支持增量操作的栈【Medium】【Python】【栈】
Problem
Design a stack which supports the following operations.
Implement the CustomStack class:
CustomStack(int maxSize)Initializes the object withmaxSizewhich is the maximum number of elements in the stack or do nothing if the stack reached themaxSize.void push(int x)Addsxto the top of the stack if the stack hasn't reached themaxSize.int pop()Pops and returns the top of stack or -1 if the stack is empty.void inc(int k, int val)Increments the bottomkelements of the stack byval. If there are less thankelements in the stack, just increment all the elements in the stack.
Example 1:
Input ["CustomStack","push","push","pop","push","push","push","increment","increment","pop","pop","pop","pop"] [[3],[1],[2],[],[2],[3],[4],[5,100],[2,100],[],[],[],[]] Output [null,null,null,2,null,null,null,null,null,103,202,201,-1] Explanation CustomStack customStack = new CustomStack(3); // Stack is Empty [] customStack.push(1); // stack becomes [1] customStack.push(2); // stack becomes [1, 2] customStack.pop(); // return 2 --> Return top of the stack 2, stack becomes [1] customStack.push(2); // stack becomes [1, 2] customStack.push(3); // stack becomes [1, 2, 3] customStack.push(4); // stack still [1, 2, 3], Don't add another elements as size is 4 customStack.increment(5, 100); // stack becomes [101, 102, 103] customStack.increment(2, 100); // stack becomes [201, 202, 103] customStack.pop(); // return 103 --> Return top of the stack 103, stack becomes [201, 202] customStack.pop(); // return 202 --> Return top of the stack 102, stack becomes [201] customStack.pop(); // return 201 --> Return top of the stack 101, stack becomes [] customStack.pop(); // return -1 --> Stack is empty return -1.
Constraints:
1 <= maxSize <= 10001 <= x <= 10001 <= k <= 10000 <= val <= 100- At most
1000calls will be made to each method ofincrement,pushandpopeach separately.
问题
请你设计一个支持下述操作的栈。
实现自定义栈类 CustomStack :
- CustomStack(int maxSize):用 maxSize 初始化对象,maxSize 是栈中最多能容纳的元素数量,栈在增长到 maxSize 之后则不支持 push 操作。
- void push(int x):如果栈还未增长到 maxSize ,就将 x 添加到栈顶。
- int pop():返回栈顶的值,或栈为空时返回 -1 。
- void inc(int k, int val):栈底的 k 个元素的值都增加 val 。如果栈中元素总数小于 k ,则栈中的所有元素都增加 val 。
示例:
输入: ["CustomStack","push","push","pop","push","push","push","increment","increment","pop","pop","pop","pop"] [[3],[1],[2],[],[2],[3],[4],[5,100],[2,100],[],[],[],[]] 输出: [null,null,null,2,null,null,null,null,null,103,202,201,-1] 解释: CustomStack customStack = new CustomStack(3); // 栈是空的 [] customStack.push(1); // 栈变为 [1] customStack.push(2); // 栈变为 [1, 2] customStack.pop(); // 返回 2 --> 返回栈顶值 2,栈变为 [1] customStack.push(2); // 栈变为 [1, 2] customStack.push(3); // 栈变为 [1, 2, 3] customStack.push(4); // 栈仍然是 [1, 2, 3],不能添加其他元素使栈大小变为 4 customStack.increment(5, 100); // 栈变为 [101, 102, 103] customStack.increment(2, 100); // 栈变为 [201, 202, 103] customStack.pop(); // 返回 103 --> 返回栈顶值 103,栈变为 [201, 202] customStack.pop(); // 返回 202 --> 返回栈顶值 202,栈变为 [201] customStack.pop(); // 返回 201 --> 返回栈顶值 201,栈变为 [] customStack.pop(); // 返回 -1 --> 栈为空,返回 -1
提示:
1 <= maxSize <= 10001 <= x <= 10001 <= k <= 10000 <= val <= 100- 每种方法
increment,push以及pop分别最多调用1000次
思路
栈
这里我犯了个错,pop 时记得要把栈顶元素弹出,不能只是返回,一定要弹出。
Python3代码
class CustomStack:
def __init__(self, maxSize: int):
self.size = 0
self.maxSize = maxSize
self.customStack = []
def push(self, x: int) -> None:
if self.size < self.maxSize:
self.customStack.append(x)
self.size += 1
def pop(self) -> int:
if self.size == 0:
return -1
temp = self.customStack[self.size - 1]
# 要把栈顶元素弹出去,即删除栈顶元素
del self.customStack[self.size - 1]
self.size -= 1
return temp
def increment(self, k: int, val: int) -> None:
for i in range(min(k, self.size)):
self.customStack[i] += val
# Your CustomStack object will be instantiated and called as such:
# obj = CustomStack(maxSize)
# obj.push(x)
# param_2 = obj.pop()
# obj.increment(k,val) 
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