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Imprima los nodos extremos de cada nivel del árbol binario en orden alternativo

Pruébalo en GfG Practice Imprima los nodos extremos de cada nivel del árbol binario en orden alternativo' title= #practiceLinkDiv { mostrar: ninguno !importante; }

Dado un árbol binario, imprima los nodos de las esquinas extremas de cada nivel, pero en orden alternativo.
Ejemplo: 
 

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For above tree the output can be   1 2 7 8 31    - print rightmost node of 1st level  - print leftmost node of 2nd level  - print rightmost node of 3rd level  - print leftmost node of 4th level  - print rightmost node of 5th level OR   1 3 4 15 16    - print leftmost node of 1st level  - print rightmost node of 2nd level  - print leftmost node of 3rd level  - print rightmost node of 4th level  - print leftmost node of 5th level
Recommended Practice Nodos extremos en orden alternativo. ¡Pruébalo!

La idea es recorrer el árbol nivel por nivel. Para cada nivel, contamos el número de nodos que contiene e imprimimos su nodo más a la izquierda o más a la derecha según el valor de una bandera booleana. Quitamos de la cola todos los nodos del nivel actual y ponemos en cola todos los nodos del siguiente nivel e invertimos el valor del indicador booleano al cambiar de nivel.

A continuación se muestra la implementación de la idea anterior: 

C++ 
/* C++ program to print nodes of extreme corners of each level in alternate order */ #include    using namespace std; /* A binary tree node has data pointer to left child and a pointer to right child */ struct Node {  int data;  Node *left *right; }; /* Helper function that allocates a new node with the given data and NULL left and right pointers. */ Node* newNode(int data) {  Node* node = new Node;  node->data = data;  node->right = node->left = NULL;  return node; } /* Function to print nodes of extreme corners of each level in alternate order */ void printExtremeNodes(Node* root) {  if (root == NULL)  return;  // Create a queue and enqueue left and right  // children of root  queue<Node*> q;  q.push(root);  // flag to indicate whether leftmost node or  // the rightmost node has to be printed  bool flag = false;  while (!q.empty())  {  // nodeCount indicates number of nodes  // at current level.  int nodeCount = q.size();  int n = nodeCount;  // Dequeue all nodes of current level  // and Enqueue all nodes of next level  while (n--)  {  Node* curr = q.front();  // Enqueue left child  if (curr->left)  q.push(curr->left);  // Enqueue right child  if (curr->right)  q.push(curr->right);  // Dequeue node  q.pop();  // if flag is true print leftmost node  if (flag && n == nodeCount - 1)  cout << curr->data << ' ';  // if flag is false print rightmost node  if (!flag && n == 0)  cout << curr->data << ' ';  }  // invert flag for next level  flag = !flag;  } } /* Driver program to test above functions */ int main() {  // Binary Tree of Height 4  Node* root = newNode(1);  root->left = newNode(2);  root->right = newNode(3);  root->left->left = newNode(4);  root->left->right = newNode(5);  root->right->right = newNode(7);  root->left->left->left = newNode(8);  root->left->left->right = newNode(9);  root->left->right->left = newNode(10);  root->left->right->right = newNode(11);  root->right->right->left = newNode(14);  root->right->right->right = newNode(15);  root->left->left->left->left = newNode(16);  root->left->left->left->right = newNode(17);  root->right->right->right->right = newNode(31);  printExtremeNodes(root);  return 0; }
Java 
// Java program to print nodes of extreme corners  //of each level in alternate order  import java.util.*; class GFG {   // A binary tree node has data pointer to left child  //and a pointer to right child / static class Node  {   int data;   Node left right;  };  // Helper function that allocates a new node with the  //given data and null left and right pointers. / static Node newNode(int data)  {   Node node = new Node();   node.data = data;   node.right = node.left = null;   return node;  }  // Function to print nodes of extreme corners  //of each level in alternate order  static void printExtremeNodes(Node root)  {   if (root == null)   return;   // Create a queue and enqueue left and right   // children of root   Queue<Node> q = new LinkedList<Node>();   q.add(root);   // flag to indicate whether leftmost node or   // the rightmost node has to be printed   boolean flag = false;   while (q.size()>0)   {   // nodeCount indicates number of nodes   // at current level.   int nodeCount = q.size();   int n = nodeCount;   // Dequeue all nodes of current level   // and Enqueue all nodes of next level   while (n-->0)   {   Node curr = q.peek();   // Enqueue left child   if (curr.left!=null)   q.add(curr.left);   // Enqueue right child   if (curr.right!=null)   q.add(curr.right);   // Dequeue node   q.remove();   // if flag is true print leftmost node   if (flag && n == nodeCount - 1)   System.out.print( curr.data + ' ');  // if flag is false print rightmost node   if (!flag && n == 0)   System.out.print( curr.data + ' ');   }     // invert flag for next level   flag = !flag;   }  }  // Driver code public static void main(String args[]) {   // Binary Tree of Height 4   Node root = newNode(1);   root.left = newNode(2);   root.right = newNode(3);   root.left.left = newNode(4);   root.left.right = newNode(5);   root.right.right = newNode(7);   root.left.left.left = newNode(8);   root.left.left.right = newNode(9);   root.left.right.left = newNode(10);   root.left.right.right = newNode(11);   root.right.right.left = newNode(14);   root.right.right.right = newNode(15);   root.left.left.left.left = newNode(16);   root.left.left.left.right = newNode(17);   root.right.right.right.right = newNode(31);   printExtremeNodes(root);  } }  // This code is contributed by Arnab Kundu
Python 
# Python program to print nodes of extreme corners # of each level in alternate order # Utility class to create a node  class Node: def __init__(self key): self.data = key self.left = self.right = None # Utility function to create a tree node def newNode( data): temp = Node(0) temp.data = data temp.left = temp.right = None return temp # Function to print nodes of extreme corners # of each level in alternate order  def printExtremeNodes( root): if (root == None): return # Create a queue and enqueue left and right # children of root q = [] q.append(root) # flag to indicate whether leftmost node or # the rightmost node has to be printed flag = False while (len(q) > 0): # nodeCount indicates number of nodes # at current level. nodeCount = len(q) n = nodeCount # Dequeue all nodes of current level # and Enqueue all nodes of next level while (n > 0): n = n - 1 curr = q[0] # Enqueue left child if (curr.left != None): q.append(curr.left) # Enqueue right child if (curr.right != None): q.append(curr.right) # Dequeue node q.pop(0) # if flag is true print leftmost node if (flag and n == nodeCount - 1): print( curr.data  end=' ') # if flag is false print rightmost node if (not flag and n == 0): print( curr.data end= ' ') # invert flag for next level flag = not flag # Driver program to test above functions  # Binary Tree of Height 4 root = newNode(1) root.left = newNode(2) root.right = newNode(3) root.left.left = newNode(4) root.left.right = newNode(5) root.right.right = newNode(7) root.left.left.left = newNode(8) root.left.left.right = newNode(9) root.left.right.left = newNode(10) root.left.right.right = newNode(11) root.right.right.left = newNode(14) root.right.right.right = newNode(15) root.left.left.left.left = newNode(16) root.left.left.left.right = newNode(17) root.right.right.right.right = newNode(31) printExtremeNodes(root) # This code is contributed by Arnab Kundu
C# 
// C# program to print nodes of extreme corners  //of each level in alternate order  using System; using System.Collections.Generic; class GFG {   // A binary tree node has data pointer to left child  //and a pointer to right child / public class Node  {   public int data;   public Node left right;  };  // Helper function that allocates a new node with the  //given data and null left and right pointers. / static Node newNode(int data)  {   Node node = new Node();   node.data = data;   node.right = node.left = null;   return node;  }  // Function to print nodes of extreme corners  //of each level in alternate order  static void printExtremeNodes(Node root)  {   if (root == null)   return;   // Create a queue and enqueue left and right   // children of root   Queue<Node> q = new Queue<Node>();   q.Enqueue(root);   // flag to indicate whether leftmost node or   // the rightmost node has to be printed   Boolean flag = false;   while (q.Count > 0)   {   // nodeCount indicates number of nodes   // at current level.   int nodeCount = q.Count;   int n = nodeCount;   // Dequeue all nodes of current level   // and Enqueue all nodes of next level   while (n-->0)   {   Node curr = q.Peek();   // Enqueue left child   if (curr.left != null)   q.Enqueue(curr.left);   // Enqueue right child   if (curr.right != null)   q.Enqueue(curr.right);   // Dequeue node   q.Dequeue();   // if flag is true print leftmost node   if (flag && n == nodeCount - 1)   Console.Write( curr.data + ' ');  // if flag is false print rightmost node   if (!flag && n == 0)   Console.Write( curr.data + ' ');   }     // invert flag for next level   flag = !flag;   }  }  // Driver code public static void Main(String []args) {   // Binary Tree of Height 4   Node root = newNode(1);   root.left = newNode(2);   root.right = newNode(3);   root.left.left = newNode(4);   root.left.right = newNode(5);   root.right.right = newNode(7);   root.left.left.left = newNode(8);   root.left.left.right = newNode(9);   root.left.right.left = newNode(10);   root.left.right.right = newNode(11);   root.right.right.left = newNode(14);   root.right.right.right = newNode(15);   root.left.left.left.left = newNode(16);   root.left.left.left.right = newNode(17);   root.right.right.right.right = newNode(31);   printExtremeNodes(root);  } } // This code is contributed by Rajput-Ji
JavaScript 
<script>   // JavaScript program to print nodes of extreme corners  //of each level in alternate order    // A binary tree node has data pointer to left child  //and a pointer to right child / class Node  {   constructor()  {  this.data = 0;  this.left = null;  this.right = null;  } };  // Helper function that allocates a new node with the  //given data and null left and right pointers. / function newNode(data)  {   var node = new Node();   node.data = data;   node.right = node.left = null;   return node;  }  // Function to print nodes of extreme corners  //of each level in alternate order  function printExtremeNodes(root)  {   if (root == null)   return;   // Create a queue and enqueue left and right   // children of root   var q = [];   q.push(root);   // flag to indicate whether leftmost node or   // the rightmost node has to be printed   var flag = false;   while (q.length > 0)   {   // nodeCount indicates number of nodes   // at current level.   var nodeCount = q.length;   var n = nodeCount;   // Dequeue all nodes of current level   // and push all nodes of next level   while (n-->0)   {   var curr = q[0];   // push left child   if (curr.left != null)   q.push(curr.left);   // push right child   if (curr.right != null)   q.push(curr.right);   // Dequeue node   q.shift();   // if flag is true print leftmost node   if (flag && n == nodeCount - 1)   document.write( curr.data + ' ');  // if flag is false print rightmost node   if (!flag && n == 0)   document.write( curr.data + ' ');   }     // invert flag for next level   flag = !flag;   }  }  // Driver code // Binary Tree of Height 4  var root = newNode(1);  root.left = newNode(2);  root.right = newNode(3);  root.left.left = newNode(4);  root.left.right = newNode(5);  root.right.right = newNode(7);  root.left.left.left = newNode(8);  root.left.left.right = newNode(9);  root.left.right.left = newNode(10);  root.left.right.right = newNode(11);  root.right.right.left = newNode(14);  root.right.right.right = newNode(15);  root.left.left.left.left = newNode(16);  root.left.left.left.right = newNode(17);  root.right.right.right.right = newNode(31);  printExtremeNodes(root);  </script>

Producción 
1 2 7 8 31


Complejidad del tiempo: O(n) donde n es el número total de nodos en un árbol binario determinado.
Espacio Auxiliar: O(n) donde n es el número total de nodos en un árbol binario determinado debido a la cola.



Ejercicio - Imprima los nodos de las esquinas extremas de cada nivel de abajo hacia arriba en orden alternativo.