题解 | #重建二叉树#
重建二叉树
https://www.nowcoder.com/practice/8a19cbe657394eeaac2f6ea9b0f6fcf6
/**
* struct TreeNode {
* int val;
* struct TreeNode *left;
* struct TreeNode *right;
* TreeNode(int x) : val(x), left(nullptr), right(nullptr) {}
* };
*/
#include <iterator>
#include <vector>
class Solution {
public:
/**
* 代码中的类名、方法名、参数名已经指定,请勿修改,直接返回方法规定的值即可
*
*
* @param preOrder int整型vector
* @param vinOrder int整型vector
* @return TreeNode类
*/
TreeNode* reConstructBinaryTree(vector<int>& preOrder, vector<int>& vinOrder) {
// write code here
if( preOrder.size() != vinOrder.size() || preOrder.size() == 0 ) return nullptr;
if( preOrder.size() == 1 ) return new TreeNode(preOrder[0]) ;
for ( int i = 0; i < vinOrder.size(); i++ ){
if ( vinOrder[i] == preOrder[0] ){
auto tree_node = new TreeNode(preOrder[0]);
vector<int> v1(preOrder.begin() + 1 ,preOrder.begin() + i + 1 );
vector<int> v2(vinOrder.begin() ,vinOrder.begin() + i );
tree_node->left = reConstructBinaryTree( v1,v2 );
vector<int> v3(preOrder.begin() + i + 1 ,preOrder.end() );
vector<int> v4(vinOrder.begin() + i + 1 ,vinOrder.end() );
tree_node->right = reConstructBinaryTree( v3,v4 );
return tree_node;
}
}
return nullptr;
}
};
