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Design a stack that supports push, pop, top, and retrieving the minimum element in constant time.
push(x) – Push element x onto stack.
pop() – Removes the element on top of the stack.
top() – Get the top element.
getMin() – Retrieve the minimum element in the stack.
Example:
MinStack minStack = new MinStack();
minStack.push(-2);
minStack.push(0);
minStack.push(-3);
minStack.getMin(); –> Returns -3.
minStack.pop();
minStack.top(); –> Returns 0.
minStack.getMin(); –> Returns -2.
题目大意:实现一个最小栈,在常量时间内完成push,pop,top和getmin等操作
解题思路:用两个栈,一个栈存储所有的数字,另一个栈存储最小数。
具体思路见代码:
class MinStack {
public:
/** initialize your data structure here. */
stack<int> datastack;//存储数据
stack<int> minstack;//存储最小栈
MinStack() {
}
void push(int x) {
datastack.push(x);//压入数据
if(minstack.empty()) minstack.push(x);//如果最小栈为空直接压入
else if(x<=minstack.top()) minstack.push(x);//如果当前压入的值小于等于最小栈的栈顶元素,则压入最小栈
}
void pop() {
if(datastack.top()==minstack.top()) minstack.pop();//如果数据栈和最小栈的栈顶元素相等,则最小栈栈顶元素弹出
datastack.pop();//数据栈弹出元素
}
int top() {
return datastack.top();//返回栈顶元素
}
int getMin() {
return minstack.top();//返回最小栈栈顶元素
}
};
/**
* 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();
*/
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原文地址:http://blog.csdn.net/terence1212/article/details/51859601