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 。
示例 1:
输入:pushed = [1,2,3,4,5], popped = [4,5,3,2,1] 输出:true 解释:我们可以按以下顺序执行: push(1), push(2), push(3), push(4), pop() -> 4, push(5), pop() -> 5, pop() -> 3, pop() -> 2, pop() -> 1
示例 2:
输入:pushed = [1,2,3,4,5], popped = [4,3,5,1,2] 输出:false 解释:1 不能在 2 之前弹出。
提示:
0 <= pushed.length == popped.length <= 10000 <= pushed[i], popped[i] < 1000pushed是popped的排列。
遍历 pushed 序列,将每个数依次压入栈中,压入后检查这个数是不是 popped 序列中下一个要 pop 的值,如果是就把它 pop 出来。
最后检查所有数是否都 pop 出来了。
class Solution:
def validateStackSequences(self, pushed: List[int], popped: List[int]) -> bool:
stk, j, n = [], 0, len(popped)
for x in pushed:
stk.append(x)
while stk and j < n and stk[-1] == popped[j]:
stk.pop()
j += 1
return j == nclass Solution {
public boolean validateStackSequences(int[] pushed, int[] popped) {
Deque<Integer> stk = new ArrayDeque<>();
int j = 0, n = popped.length;
for (int x : pushed) {
stk.push(x);
while (!stk.isEmpty() && j < n && stk.peek() == popped[j]) {
stk.pop();
++j;
}
}
return j == n;
}
}class Solution {
public:
bool validateStackSequences(vector<int>& pushed, vector<int>& popped) {
int j = 0, n = popped.size();
stack<int> stk;
for (int x : pushed)
{
stk.push(x);
while (!stk.empty() && j < n && stk.top() == popped[j])
{
stk.pop();
++j;
}
}
return j == n;
}
};func validateStackSequences(pushed []int, popped []int) bool {
j, n := 0, len(popped)
var stk []int
for _, x := range pushed {
stk = append(stk, x)
for len(stk) > 0 && j < n && stk[len(stk)-1] == popped[j] {
stk = stk[:len(stk)-1]
j++
}
}
return j == n
}