Implement the following operations of a stack using queues.
- push(x) -- Push element x onto stack.
- pop() -- Removes the element on top of the stack.
- top() -- Get the top element.
- empty() -- Return whether the stack is empty.
Notes:
- You may assume that all operations are valid (for example, no pop or top operations will be called on an empty stack).
- Depending on your language, queue may not be supported natively. You may simulate a queue by using a list or deque (double-ended queue), as long as you use only standard operations of a queue -- which means only
push to back,pop from front,size, andis emptyoperations are valid.
Credits:
Special thanks to @jianchao.li.fighter for adding this problem and all test cases.
用队列Queues的基本操作来实现栈Stack,队列和栈都是重要的数据结构,区别主要是,队列是先进先出,而栈是先进后出。
解法1: 在队列push进来新元素时,就把其它元素pop出来排到新元素的后面,新元素就在前面了,就可以后进先出。就好像大家都在排队,来了个重要客人,要让他第一,其他人从前面按顺序跑到他后面。
解法2: push的时候,其他元素不动只是用一个变量记住这个新元素。当top的时候直接给这个变量的值。当pop时,在调整顺序,把最后一个排到前面,弹出。变量记住目前在最尾部的值。
Java:
class MyStack {
LinkedList<Integer> queue1 = new LinkedList<Integer>();
LinkedList<Integer> queue2 = new LinkedList<Integer>();
// Push element x onto stack.
public void push(int x) {
if(empty()){
queue1.offer(x);
}else{
if(queue1.size()>0){
queue2.offer(x);
int size = queue1.size();
while(size>0){
queue2.offer(queue1.poll());
size--;
}
}else if(queue2.size()>0){
queue1.offer(x);
int size = queue2.size();
while(size>0){
queue1.offer(queue2.poll());
size--;
}
}
}
}
// Removes the element on top of the stack.
public void pop() {
if(queue1.size()>0){
queue1.poll();
}else if(queue2.size()>0){
queue2.poll();
}
}
// Get the top element.
public int top() {
if(queue1.size()>0){
return queue1.peek();
}else if(queue2.size()>0){
return queue2.peek();
}
return 0;
}
// Return whether the stack is empty.
public boolean empty() {
return queue1.isEmpty() & queue2.isEmpty();
}
}
Python: Time: push: O(n), pop: O(1), top: O(1), Space: O(n)
class Queue:
def __init__(self):
self.data = collections.deque()
def push(self, x):
self.data.append(x)
def peek(self):
return self.data[0]
def pop(self):
return self.data.popleft()
def size(self):
return len(self.data)
def empty(self):
return len(self.data) == 0
class Stack:
# initialize your data structure here.
def __init__(self):
self.q_ = Queue()
# @param x, an integer
# @return nothing
def push(self, x):
self.q_.push(x)
for _ in xrange(self.q_.size() - 1):
self.q_.push(self.q_.pop())
# @return nothing
def pop(self):
self.q_.pop()
# @return an integer
def top(self):
return self.q_.peek()
# @return an boolean
def empty(self):
return self.q_.empty()
Python: Time: push: O(1), pop: O(n), top: O(1),Space: O(n)
class Stack:
# initialize your data structure here.
def __init__(self):
self.q_ = Queue()
self.top_ = None
# @param x, an integer
# @return nothing
def push(self, x):
self.q_.push(x)
self.top_ = x
# @return nothing
def pop(self):
for _ in xrange(self.q_.size() - 1):
self.top_ = self.q_.pop()
self.q_.push(self.top_)
self.q_.pop()
# @return an integer
def top(self):
return self.top_
# @return an boolean
def empty(self):
return self.q_.empty()
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[LeetCode] 232. Implement Queue using Stacks 用栈来实现队列
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