PAT甲级——1102 Invert a Binary Tree (层序遍历+中序遍历)

时间:2021-06-08 20:19:42

本文同步发布在CSDN:https://blog.csdn.net/weixin_44385565/article/details/90577042

1102 Invert a Binary Tree (25 分)
 

The following is from Max Howell @twitter:

Google: 90% of our engineers use the software you wrote (Homebrew), but you can't invert a binary tree on a whiteboard so fuck off.

Now it's your turn to prove that YOU CAN invert a binary tree!

Input Specification:

Each input file contains one test case. For each case, the first line gives a positive integer N (≤) which is the total number of nodes in the tree -- and hence the nodes are numbered from 0 to N−1. Then N lines follow, each corresponds to a node from 0 to N−1, and gives the indices of the left and right children of the node. If the child does not exist, a - will be put at the position. Any pair of children are separated by a space.

Output Specification:

For each test case, print in the first line the level-order, and then in the second line the in-order traversal sequences of the inverted tree. There must be exactly one space between any adjacent numbers, and no extra space at the end of the line.

Sample Input:

8
1 -
- -
0 -
2 7
- -
- -
5 -
4 6

Sample Output:

3 7 2 6 4 0 5 1
6 5 7 4 3 2 0 1

题目大意:将二叉树每个节点的左右孩子交换位置,然后分别层序和中序输出。第 i 行代表了节点 i 的左右孩子的信息,先左后右,'-' 表示没有该方向的子节点。

思路:用数组tree存储树。

读取字符串然后将其转成int型变量,空节点'-' 用-1代替。

只要在读取数据的时候交换左右孩子的位置就行。

读取数据的时候用bool数组R对每个孩子节点进行标记,然后遍历数组寻找根节点(即没有被标记过的节点)

 #include <iostream>
#include <vector>
#include <string>
#include <queue>
using namespace std;
struct node {
int left, right;
};
vector <node> tree;
bool flag = false;//用于中序遍历标记第一个输出的节点
int getNum(string &s);
void levelOrder(int t);
void inOrder(int t);
int main()
{
int N, root;
scanf("%d", &N);
tree.resize(N);
vector <bool> R(N, true);
for (int i = ; i < N; i++) {
string left, right;
cin >> left >> right;
tree[i].left = getNum(right);
tree[i].right = getNum(left);
if (tree[i].left != -)
R[tree[i].left] = false;
if (tree[i].right != -)
R[tree[i].right] = false;
}
for (int i = ; i < N; i++)
if (R[i]) {
root = i;
break;
}
levelOrder(root);
printf("\n");
inOrder(root);
printf("\n");
return ;
}
void inOrder(int t) {
if (t != -) {
inOrder(tree[t].left);
if (flag)
printf(" ");
if (!flag)
flag = true;
printf("%d", t);
inOrder(tree[t].right);
}
}
void levelOrder(int t) {
queue <int> Q;
Q.push(t);
while (!Q.empty()) {
t = Q.front();
printf("%d", t);
Q.pop();
if (tree[t].left != -) {
Q.push(tree[t].left);
}
if (tree[t].right != -) {
Q.push(tree[t].right);
}
if (!Q.empty())
printf(" ");
}
}
int getNum(string& s) {
if (s[] == '-')
return -;
int n = ;
for (int i = ; i < s.length(); i++)
n = n * + s[i] - '';
return n;
}