请设计一个栈,除了常规栈支持的pop与push函数以外,还支持min函数,该函数返回栈元素中的最小值。执行push、pop和min操作的时间复杂度必须为O(1)。
示例:
MinStack minStack = new MinStack();
minStack.push(-2);
minStack.push(0);
minStack.push(-3);
minStack.getMin(); --> 返回 -3.
minStack.pop();
minStack.top(); --> 返回 0.
minStack.getMin(); --> 返回 -2.
利用辅助栈存放栈的最小元素。
class MinStack:
def __init__(self):
"""
initialize your data structure here.
"""
self._s1 = []
self._s2 = []
def push(self, x: int) -> None:
self._s1.append(x)
self._s2.append(x if len(self._s2) == 0 or self._s2[-1] >= x else self._s2[-1])
def pop(self) -> None:
self._s1.pop()
self._s2.pop()
def top(self) -> int:
return self._s1[-1]
def getMin(self) -> int:
return self._s2[-1]
# Your MinStack object will be instantiated and called as such:
# obj = MinStack()
# obj.push(x)
# obj.pop()
# param_3 = obj.top()
# param_4 = obj.getMin()class MinStack {
private Stack<Integer> s1;
private Stack<Integer> s2;
/** initialize your data structure here. */
public MinStack() {
s1 = new Stack<>();
s2 = new Stack<>();
}
public void push(int x) {
s1.push(x);
s2.push(s2.empty() || s2.peek() >= x ? x : s2.peek());
}
public void pop() {
s1.pop();
s2.pop();
}
public int top() {
return s1.peek();
}
public int getMin() {
return s2.empty() ? -1 : s2.peek();
}
}
/**
* Your MinStack object will be instantiated and called as such:
* MinStack obj = new MinStack();
* obj.push(x);
* obj.pop();
* int param_3 = obj.top();
* int param_4 = obj.getMin();
*/