Given a binary tree, return the bottom-up level order traversal of its nodes' values. (ie, from left to right, level by level from leaf to root).
For example:
Given binary tree {3,9,20,#,#,15,7},
3
/
9 20
/
15 7
return its bottom-up level order traversal as:
[ [15,7], [9,20], [3] ]点击打开原题链接
跟从上往下层次遍历一样。最后把结果倒置一下就能够了~~
struct node
{
TreeNode* tn;
int level;
};
class Solution
{
public:
vector<vector<int> > levelOrderBottom(TreeNode *root)
{
vector<vector<int> > vvi;
vector<int> vi;
deque<node> di;
node nd;
int level = 0;
if (root == NULL)
{
return vvi;
}
nd.level = 0;
nd.tn = root;
di.push_back(nd);
node left,right;
while (!di.empty())
{
nd = di.front();
if (nd.tn->left != NULL)
{
left.tn = nd.tn->left;
left.level = nd.level+1;
di.push_back(left);
}
if (nd.tn->right != NULL)
{
right.tn = nd.tn->right;
right.level = nd.level + 1;
di.push_back(right);
}
// if (vi.empty())
// {
// vi.push_back(nd.tn->val);
// level++;
// di.pop_front();
// }
// else
// {
nd = di.front();
if (nd.level == level)
{
vi.push_back(nd.tn->val);
di.pop_front();
}
else
{
vvi.push_back(vi);
vi.clear();
vi.push_back(nd.tn->val);
level++;
di.pop_front();
}
// }
}
vvi.push_back(vi);
return vector<vector<int> >(vvi.rbegin(),vvi.rend());
}
};