Given inorder and postorder traversal of a tree, construct the binary tree.
Note:
You may assume that duplicates do not exist in the tree.
方法:在inorder中寻找postorder的最后一个,然后左右递归,注意处理好各个low,high边界
1 class Solution 2 { 3 public: 4 TreeNode *buildTree(vector<int> &inorder, vector<int> &postorder) 5 { 6 return buildTree(postorder, 0, postorder.size()-1, 7 inorder, 0, inorder.size()-1); 8 } 9 10 TreeNode *buildTree(vector<int> &postorder, int low1, int high1, 11 vector<int> &inorder, int low2, int high2) 12 { 13 //cout << "==============" <<endl; 14 //cout << "low1 = " << low1 <<endl; 15 //cout << "high1= " << high1 <<endl; 16 //cout << "low2 = " << low2 <<endl; 17 //cout << "high2= " << high2 <<endl; 18 if(low1 > high1 || low2> high2) 19 return NULL; 20 21 TreeNode * p = new TreeNode(postorder[high1]); 22 if(low1 == high1) 23 { 24 return p; 25 } 26 int index = 0; 27 for(index = low2; index < high2; index++) 28 { 29 if(inorder[index] == postorder[high1]) 30 break; 31 } 32 //cout << "index= " << index<<endl; 33 34 if(index != low2) 35 p->left = buildTree(postorder, low1,(low1) + (index-1-low2), inorder, low2, index-1); 36 if(index != high2) 37 p->right = buildTree(postorder, (high1-1) - (high2-index-1) ,high1-1, inorder, index+1, high2); 38 39 return p; 40 } 41 } ;