树的子结构
树的子结构
https://www.nowcoder.com/practice/6e196c44c7004d15b1610b9afca8bd88?tpId=13&tqId=11170&tPage=1&rp=1&ru=/ta/coding-interviews&qru=/ta/coding-interviews/question-ranking
有个大神的代码思路超级棒
public class Solution {
public static boolean HasSubtree(TreeNode root1, TreeNode root2) {
boolean result = false;
//当Tree1和Tree2都不为零的时候,才进行比较。否则直接返回false
if (root2 != null && root1 != null) {
//如果找到了对应Tree2的根节点的点
if(root1.val == root2.val){
//以这个根节点为为起点判断是否包含Tree2
result = doesTree1HaveTree2(root1,root2);
}
//如果找不到,那么就再去root的左儿子当作起点,去判断时候包含Tree2
if (!result) {
result = HasSubtree(root1.left,root2);
}
//如果还找不到,那么就再去root的右儿子当作起点,去判断时候包含Tree2
if (!result) {
result = HasSubtree(root1.right,root2);
}
}
//返回结果
return result;
}
public static boolean doesTree1HaveTree2(TreeNode node1, TreeNode node2) {
//如果Tree2已经遍历完了都能对应的上,返回true
if (node2 == null) {
return true;
}
//如果Tree2还没有遍历完,Tree1却遍历完了。返回false
if (node1 == null) {
return false;
}
//如果其中有一个点没有对应上,返回false
if (node1.val != node2.val) {
return false;
}
//如果根节点对应的上,那么就分别去子节点里面匹配
return doesTree1HaveTree2(node1.left,node2.left) && doesTree1HaveTree2(node1.right,node2.right);
}注意这个递归部分:
result = HasSubtree(root1.left,root2);
里层的返回结果是外层的result,最里面结束层的结果是true,则会一层一层地返回true
/*
struct TreeNode {
int val;
struct TreeNode *left;
struct TreeNode *right;
TreeNode(int x) :
val(x), left(NULL), right(NULL) {
}
};*/
class Solution {
public:
bool HasSubtree(TreeNode* pRoot1, TreeNode* pRoot2)
{
bool flag=false;
if(pRoot1!=NULL&&pRoot2!=NULL)
{
if(pRoot1->val==pRoot2->val)
{
flag=Judge(pRoot1,pRoot2);
}
if(!flag) flag=HasSubtree(pRoot1->left,pRoot2);
if(!flag) flag=HasSubtree(pRoot1->right,pRoot2);
}
return flag;
}
//判断以tree1,tree2为根节点的树是否完全相等
bool Judge(TreeNode* tree1, TreeNode* tree2)
{
if(tree2==NULL)
return true;
if(tree1==NULL)
return false;
if(tree1->val!=tree2->val)
return false;
else{
return Judge(tree1->left,tree2->left)&&Judge(tree1->right,tree2->right);
}
}
};主要是外部函数先找到与子树根节点相同的结点,再判断以这两个根节点开始的树是否有包含关系
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