[LeetCode] Implement Queue using Stacks 用栈来实现队列
Implement the following operations of a queue using stacks.
- push(x) -- Push element x to the back of queue.
- pop() -- Removes the element from in front of queue.
- peek() -- Get the front element.
- empty() -- Return whether the queue is empty.
Notes:
- You must use only standard operations of a stack -- which means only
push to top
,peek/pop from top
,size
, andis empty
operations are valid. - Depending on your language, stack may not be supported natively. You may simulate a stack by using a list or deque (double-ended queue), as long as you use only standard operations of a stack.
- You may assume that all operations are valid (for example, no pop or peek operations will be called on an empty queue).
这道题让我们用栈来实现队列,之前我们做过一道相反的题目Implement Stack using Queues 用队列来实现栈,是用队列来实现栈。这道题颠倒了个顺序,起始并没有太大的区别,栈和队列的核心不同点就是栈是先进后出,而队列是先进先出,那么我们要用栈的先进后出的特性来模拟出队列的先进先出。那么怎么做呢,其实很简单,只要我们在插入元素的时候每次都都从前面插入即可,比如如果一个队列是1,2,3,4,那么我们在栈中保存为4,3,2,1,那么返回栈顶元素1,也就是队列的首元素,则问题迎刃而解。所以此题的难度是push函数,我们需要一个辅助栈tmp,把s的元素也逆着顺序存入tmp中,此时加入新元素x,再把tmp中的元素存回来,这样就是我们要的顺序了,其他三个操作也就直接调用栈的操作即可,参见代码如下:
解法一:
class MyQueue { public: /** Initialize your data structure here. */ MyQueue() {} /** Push element x to the back of queue. */ void push(int x) { stack<int> tmp; while (!st.empty()) { tmp.push(st.top()); st.pop(); } st.push(x); while (!tmp.empty()) { st.push(tmp.top()); tmp.pop(); } } /** Removes the element from in front of queue and returns that element. */ int pop() { int val = st.top(); st.pop(); return val; } /** Get the front element. */ int peek() { return st.top(); } /** Returns whether the queue is empty. */ bool empty() { return st.empty(); } private: stack<int> st; };
上面那个解法虽然简单,但是效率不高,因为每次在push的时候,都要翻转两边栈,下面这个方法使用了两个栈_new和_old,其中新进栈的都先缓存在_new中,入股要pop和peek的时候,才将_new中所有元素移到_old中操作,提高了效率,代码如下:
解法二:
class MyQueue { public: /** Initialize your data structure here. */ MyQueue() {} /** Push element x to the back of queue. */ void push(int x) { _new.push(x); } /** Removes the element from in front of queue and returns that element. */ int pop() { shiftStack(); int val = _old.top(); _old.pop(); return val; } /** Get the front element. */ int peek() { shiftStack(); return _old.top(); } /** Returns whether the queue is empty. */ bool empty() { return _old.empty() && _new.empty(); } void shiftStack() { if (!_old.empty()) return; while (!_new.empty()) { _old.push(_new.top()); _new.pop(); } } private: stack<int> _old, _new; };
类似题目:
参考资料:
https://leetcode.com/problems/implement-queue-using-stacks/