版权声明:原创文章,转载请注明出处: https://blog.csdn.net/hi_baymax/article/details/82690630
前序遍历:根节点排最先,然后同级先左后右
中序遍历:先左后根最后右
后序遍历:先左后右最后根
层次遍历:按层次遍历即可
比如上图二叉树遍历结果
前序遍历:ABCDEFGHK
中序遍历:BDCAEHGKF
后序遍历:DCBHKGFEA
层次遍历:ABECFDGHK
主要分析中序遍历:
可以已知中序和前序或中序和后续求出另外一个。
领扣题:已知前序和中序求二叉树
代码拷贝自大佬博客:https://blog.csdn.net/woxiaohahaa/article/details/52744072
class Solution {
public:
TreeNode* buildSubTree(vector<int>& preorder, vector<int>& inorder, int posPre, int posIn, int len) {
if(0 == len) return NULL;
int leftLen, rightLen;
vector<int>::iterator rootPos = find(inorder.begin(), inorder.end(), preorder[posPre]);
leftLen = rootPos - (inorder.begin() + posIn);
rightLen = len - 1 - leftLen;
TreeNode *root = new TreeNode(preorder[posPre]);
root -> left = buildSubTree(preorder, inorder, posPre + 1, posIn, leftLen);
root -> right = buildSubTree(preorder, inorder, posPre + 1 + leftLen, posIn + 1 + leftLen, rightLen);
return root;
}
TreeNode* buildTree(vector<int>& preorder, vector<int>& inorder) {
if(preorder.size() != inorder.size()) return NULL;
if(0 == preorder.size()) return NULL;
return buildSubTree(preorder, inorder, 0, 0, preorder.size());
}
};