Given two sequences pushed
and popped
with distinct values, return true
if and only if this could have been the result of a sequence of push and pop operations on an initially empty stack.
Example 1:
Input: pushed = [1,2,3,4,5], popped = [4,5,3,2,1] Output: true Explanation: We might do the following sequence: push(1), push(2), push(3), push(4), pop() -> 4, push(5), pop() -> 5, pop() -> 3, pop() -> 2, pop() -> 1
Example 2:
Input: pushed = [1,2,3,4,5], popped = [4,3,5,1,2] Output: false Explanation: 1 cannot be popped before 2.
Constraints:
0 <= pushed.length == popped.length <= 1000
0 <= pushed[i], popped[i] < 1000
-
pushed
is a permutation ofpopped
. -
pushed
andpopped
have distinct values.
验证栈序列。
给定 pushed 和 popped 两个序列,每个序列中的 值都不重复,只有当它们可能是在最初空栈上进行的推入 push 和弹出 pop 操作序列的结果时,返回 true;否则,返回 false 。
来源:力扣(LeetCode)
链接:https://leetcode-cn.com/problems/validate-stack-sequences
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思路是模拟元素入栈出栈的过程,如果过程中有元素对不上则返回false。我们创建一个stack,根据 pushed 数组的顺序把元素放到 stack 中。每次我们把一个元素放到 stack 之后,我们需要检查一下,如果当前栈顶元素 == popped[i] 说明当前栈顶这个元素是要被pop出来的。如果当前栈顶元素 != popped[i] 则说明对不上了。按照这个模拟的顺序,stack应该是为空的,所以如果模拟结束之后stack不为空,则返回false。
时间O(n)
空间O(n)
Java实现
1 class Solution { 2 public boolean validateStackSequences(int[] pushed, int[] popped) { 3 int i = 0; 4 Stack<Integer> stack = new Stack<>(); 5 for (int num : pushed) { 6 stack.push(num); 7 while (!stack.isEmpty() && popped[i] == stack.peek()) { 8 stack.pop(); 9 i++; 10 } 11 } 12 return stack.isEmpty(); 13 } 14 }