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Common_Ancestors_Of_Nodes_Of_Binary_Tree.cpp
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Common_Ancestors_Of_Nodes_Of_Binary_Tree.cpp
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/*
Introduction
Given a Binary Tree , print all common ancestors of given two nodes
It is guaranteed that given Binary Tree will have all unique node values
Argument/Return Type
Input of total no.of nodes is taken
Input of key values of nodes of tree are taken in level order form
Incase of a null node , -1 is taken as input
Function to find and print all common ancestors of given two nodes
*/
// Code / Solution
#include <bits/stdc++.h>
using namespace std;
//Define Node as structure
struct Node
{
int key;
Node* left;
Node* right;
};
// Function to create a node with 'value' as the data stored in it.
// Both the children of this new Node are initially null.
struct Node* newNode(int value)
{
Node* n = new Node;
n->key = value;
n->left = NULL;
n->right = NULL;
return n;
}
// Function to build tree with given input
struct Node* createTree(vector<int>v)
{
int n=v.size();
if(n==0)
return NULL;
vector<struct Node* >a(n);
//Create a vector of individual nodes with given node values
for(int i=0;i<n;i++)
{
//If the data is -1 , create a null node
if(v[i]==-1)
a[i] = NULL;
else
a[i] = newNode(v[i]);
}
//Interlink all created nodes to create a tree
//Use two pointers using int to store indexes
//One to keep track of parent node and one for children nodes
for(int i=0,j=1;j<n;i++)
{
//If the parent node is NULL , advance children pointer twice
if(!a[i])
{
j=j+2;
continue;
}
//Connect the two children nodes to parent node
//First left and then right nodes
a[i]->left = a[j++];
if(j<n)
a[i]->right = a[j++];
}
return a[0];
}
//Utility function to print common of both given vectors
void printCommon(vector<int>a,vector<int>b)
{
//As ancestors are pushed in revrese order ,
//we must print common elements of vector from reverse
int n1=a.size()-1;
int n2=b.size()-1;
//Print elements from end , till they we reach least common ancestor
while(a[n1]==b[n2])
{
cout<<a[n1]<<" ";
n1--;
n2--;
//If we complete one vector , break and return
if(n1<0 || n2<0)
break;
}
return ;
}
//Utility Function to Generate Ancestors of the node
bool GenerateAncestors(struct Node *root, int Node_value , vector<int>& path)
{
// base cases
if (root == NULL)
return false;
//If the node is found return True to its parent's node
if (root->key == Node_value)
return true;
// If target is present in either left or right subtree of this node,
// then print this node
if ( GenerateAncestors(root->left, Node_value,path) || GenerateAncestors(root->right, Node_value,path) )
{
path.push_back(root->key);
return true;
}
//If its not in either of the subtrees, return false
return false;
}
//Function to get ancestors of both nodes and print common of them
void FindnPrintCommonAncestorNodes(struct Node* root,int Node_1_value,int Node_2_value)
{
vector<int>AncestorsOfNode1;
GenerateAncestors(root,Node_1_value,AncestorsOfNode1);
vector<int>AncestorsOfNode2;
GenerateAncestors(root,Node_2_value,AncestorsOfNode2);
printCommon(AncestorsOfNode1,AncestorsOfNode2);
}
// Driver code
int main()
{
int n;
cout<<"Enter total no.of nodes of the input Tree ( including NULL nodes ) : ";
cin>>n;
vector<int>v(n);
cout<<"Enter value of each node of the tree in level order ( if a node is NULL , enter -1 ) with spaces"<<endl;
for(int i=0;i<n;i++)
{
cin>>v[i]; //store the input values in a vector
}
int Node_1_value,Node_2_value;
cout<<"Enter values of two nodes of tree whose common ancestors are to be found , with space : ";
cin>>Node_1_value>>Node_2_value;
//create the tree using input node values
struct Node* root=createTree(v);
//Call the function and print the result
cout<<"Hence the values of common ancestor nodes of given nodes are ";
FindnPrintCommonAncestorNodes(root,Node_1_value,Node_2_value);
return 0;
}
/*
Input:
0 <= node->key < 1000000000
if node is NULL , -1 is entered as it's key
Sample Test Case 1
Input Binary Tree :
1
/ \
2 11
/ \ / \
3 5 12 13
/ \ / \ / \ / \
4 NULL 6 7 8 9 NULL 4
Input Format :
Example :
Enter total no.of nodes of the input Tree ( including NULL nodes ) : 15
Enter value of each node of the tree in level order ( if a node is NULL , enter -1 ) with spaces
1 2 11 3 5 12 13 4 -1 6 7 8 9 -1 4
Enter values of two nodes of tree whose common ancestors are to be found , with space : 6 7
Output Format :
Example : ( Output to the above input example )
Hence the values of common ancestor nodes of given nodes are 1 2 5
Sample Test Case 2
Input Binary Tree :
12
/ \
9 17
/ \ / \
8 10 NULL 18
Input Format :
Example :
Enter total no.of nodes of the input Tree ( including NULL nodes ) : 7
Enter value of each node of the tree in level order ( if a node is NULL , enter -1 ) with spaces
12 9 17 8 10 -1 18
Enter values of two nodes of tree whose common ancestors are to be found , with space : 10 18
Output Format :
Example : ( Output to the above input example )
Hence the values of common ancestor nodes of given nodes are 12
Time/Space Complexity
Time Complexity : O(n)
Where n is the no.of nodes
Space Complexity : O(n)
Where n is the no.of nodes
*/