leetcode栈--2、largest-rectangle-in-histogram(直方图最大面积)
题目描述
Given n non-negative integers representing the histogram's bar height where the width of each bar is 1, find the area of largest rectangle in the histogram.
Above is a histogram where width of each bar is 1, given height =[2,1,5,6,2,3].
The largest rectangle is shown in the shaded area, which has area =10unit.
For example, Given height =[2,1,5,6,2,3], return10.
解题思路:借助栈结构来处理
1、如果已知height数组是升序的,应该怎么做?
比如1,2,5,7,8
那么就是(1*5) vs. (2*4) vs. (5*3) vs. (7*2) vs. (8*1)
也就是max(height[i]*(size-i))
2、使用栈的目的就是构造这样的升序序列,按照以上方法求解。
但是height本身不一定是升序的,应该怎样构建栈?
比如2,1,5,6,2,3
(1)2进栈。s={2}, result = 0
(2)1比2小,不满足升序条件,因此将2弹出,并记录当前结果为2*1=2。
将2替换为1重新进栈。s={1,1}, result = 2
(3)5比1大,满足升序条件,进栈。s={1,1,5},result = 2
(4)6比5大,满足升序条件,进栈。s={1,1,5,6},result = 2
(5)2比6小,不满足升序条件,因此将6弹出,并记录当前结果为6*1=6。s={1,1,5},result = 6
2比5小,不满足升序条件,因此将5弹出,并记录当前结果为5*2=10(因为已经弹出的5,6是升序的)。s={1,1},result = 10
2比1大,将弹出的5,6替换为2重新进栈。s={1,1,2,2,2},result = 10
(6)3比2大,满足升序条件,进栈。s={1,1,2,2,2,3},result = 10
栈构建完成,满足升序条件,因此按照升序处理办法得到上述的max(height[i]*(size-i))=max{3*1, 2*2, 2*3, 2*4, 1*5, 1*6}=8<10
综上所述,result=10
1 class Solution { 2 public: 3 int largestRectangleArea(vector<int> &height) { 4 int result = 0; 5 stack<int> s; 6 int n = height.size(); 7 for(int i=0;i<n;i++) 8 { 9 if(s.empty() || height[i] >= s.top()) 10 { 11 s.push(height[i]); 12 } 13 else 14 { 15 int count = 0; 16 while(!s.empty() && s.top() > height[i]) 17 { 18 count ++; 19 result = max(result, s.top()*count); 20 s.pop(); 21 } 22 while(count --)//弹出的位置用当前值替换 23 s.push(height[i]); 24 s.push(height[i]);//将当前值放入栈中 25 } 26 } 27 int count = 1; 28 while(!s.empty()) 29 { 30 result = max(result, s.top()*count); 31 s.pop(); 32 count ++; 33 } 34 return result; 35 } 36 };
