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string_from_tree.cpp
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string_from_tree.cpp
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/*
* Given a binary tree, traversing preorder, construct a string output
* containing node values and parenthesis.
* The null node needs to be represented by empty parenthesis pair "()".
* And you need to omit all the empty parenthesis pairs that don't affect
* the one-to-one mapping relationship between the string and the original
* binary tree
*
* Example:
* 1
* / \
* 2 3
* / \
* 4 5
*
* Output: 1(2(4)(5))(3)
* Originally it should be 1(2(4)(5))(3()()), but we are ommiting
* all the unnecessary empty parenthesis pairs.
*
* Example:
*
* 1
* / \
* 2 3
* \
* 4
* Output: 1(2()(4))(3)
* Here, we can't omit the first parenthesis pair to break
* the one-to-one mapping relationship between the input and the output.
* As without empty parenthesis, it would not be clear that 4 is a right child.
*/
#include <iostream>
struct TreeNode {
int data;
TreeNode* left;
TreeNode* right;
TreeNode(int d):
data{d}, left{nullptr}, right{nullptr}{}
};
std::string string_from_tree(TreeNode* root)
{
if (root == nullptr) {
return std::string("");
}
if (root->left == nullptr && root->right == nullptr) {
return std::to_string(root->data);
}
if (root->right == nullptr) {
return std::to_string(root->data) + "(" +
string_from_tree(root->left) +")";
}
return std::to_string(root->data) + "(" +
string_from_tree(root->left) + ")(" +
string_from_tree(root->right) + ")";
}
int main()
{
TreeNode* root = new TreeNode(1);
root->left = new TreeNode(2);
root->right = new TreeNode(3);
root->left->right = new TreeNode(4);
std::cout << "Tree to string: " << string_from_tree(root)
<< std::endl;
return 0;
}