LeetCode #199 - Binary Tree Right Side View

题目描述：

Given a binary tree, imagine yourself standing on the right side of it, return the values of the nodes you can see ordered from top to bottom.

For example:
Given the following binary tree,

   1            <---
 /   \
2     3         <---
 \     \
  5     4       <---

You should return [1, 3, 4].

层序遍历的每一层的最后一位即为所求。

class Solution {
public:
    vector<int> rightSideView(TreeNode* root) 
    {
        queue<pair<TreeNode*,int> > q; 
		vector<pair<int,int> > v;
		if(root==NULL) 
		{
		    vector<int> result;
		    return result;
		}
		else if(root!=NULL)
		{
			pair<TreeNode*,int> p;
			p.first=root;
			p.second=0;
			q.push(p);
			while(!q.empty())
			{
				p=q.front();
				pair<int,int> x;
				x.first=p.first->val;
				x.second=p.second;
				v.push_back(x);
				q.pop();
				if(p.first->left!=NULL)
				{
					pair<TreeNode*,int> l;
					l.first=p.first->left;
					l.second=p.second+1;
					q.push(l);
				}
				if(p.first->right!=NULL)
				{
					pair<TreeNode*,int> r;
					r.first=p.first->right;
					r.second=p.second+1;
					q.push(r);
				}
			}
		}
		int n=v.size();
		int m=v[n-1].second;
		vector<vector<int> > result(m+1);
		for(int i=0;i<n;i++)
		{
			result[v[i].second].push_back(v[i].first);
		}
		vector<int> Result(m+1);
		for(int i=0;i<=m;i++)
		{
		    Result[i]=result[i].back();
		}
        return Result;
    }
};