不用迭代器的代码
class Solution { public: TreeNode* reConstructBinaryTree(vector<int> pre,vector<int> vin) { TreeNode* root = NULL; int length_pre = pre.size(); int length_vin = vin.size(); if(length_pre <= 0 || length_vin <= 0) return root; return ConstructCore(pre,vin,0,length_pre-1,0,length_vin-1); } TreeNode* ConstructCore(vector<int> pre,vector<int> vin,int start_pre,int end_pre,int start_vin,int end_vin){ int rootval = pre[start_pre]; TreeNode* root = new TreeNode(rootval); if(start_pre == end_pre || start_vin == end_vin) return root; int mid; for(int i = start_vin;i <= end_vin;i++){ if(pre[start_pre] == vin[i]){ mid = i; break; } } if(mid > start_vin) root->left = ConstructCore(pre,vin,start_pre+1,mid-start_vin+start_pre,start_vin,mid-1); if(end_vin > mid) root->right = ConstructCore(pre,vin,mid-start_vin+start_pre+1,end_pre,mid+1,end_vin); return root; } };
mid是在vin中的索引,与pre相关的只是个数,所以用mid-start_vin来表示有多少个,然后再加上之前的开始坐标