Nađite visinu posebnog binarnog stabla čiji su lisni čvorovi povezani
S obzirom na a posebno binarno stablo čiji lisni čvorovi povezani su u oblik a kružna dvostruko povezana lista zadatak je pronaći visina od stabla.
Primjeri:
Ulazni:
Izlaz: 2
Obrazloženje: Visina binarnog stabla nakon prepoznavanja lisnih čvorova je 2. U gornjem binarnom stablu 6 5 i 4 su lisnati čvorovi i oni tvore kružnu dvostruko povezanu listu. Ovdje će lijevi pokazivač lisnog čvora djelovati kao prethodni pokazivač kružne dvostruko povezane liste, a desni pokazivač će djelovati kao sljedeći pokazivač kružne dvostruko povezane liste.Ulazni:
Izlaz: 1
Obrazloženje: Visina binarnog stabla nakon prepoznavanja lisnih čvorova je 1. U gornjem binarnom stablu 2 i 3 su lisnati čvorovi i oni tvore kružnu dvostruko povezanu listu.
Pristup :
C++Ideja je slijediti sličan pristup kao što radimo za nalaženje visine normalnog binarnog stabla . Mi rekurzivno izračunati visina od lijevo i desno podstabla čvora i dodijelite visina na čvor kao max od visina dva djeteta plus 1. Ali lijevo i desno dijete od a lisni čvor su null za normalna binarna stabla. Ali ovdje je lisni čvor kružni dvostruko povezani čvor liste. Dakle, da bi čvor bio lisnati čvor, provjeravamo je li čvor lijevo desno pokazuje na čvor i njegova desno je lijevo također ukazuje na čvor se.
// C++ program to calculate height of a special tree // whose leaf nodes forms a circular doubly linked list #include using namespace std ; class Node { public : int data ; Node * left * right ; Node ( int x ) { data = x ; left = nullptr ; right = nullptr ; } }; // function to check if given // node is a leaf node or node bool isLeaf ( Node * node ) { // For a node to be a leaf node it should // satisfy the following two conditions: // 1. Node's left's right pointer should be // current node. // 2. Node's right's left pointer should be // current node. // If one condition is met it is guaranteed // that the other consition is also true. return node -> left && node -> left -> right == node && node -> right && node -> right -> left == node ; } // Compute the height of a tree int findTreeHeight ( Node * node ) { // if node is NULL return -1. if ( node == nullptr ) return -1 ; // if node is a leaf node return 0 if ( isLeaf ( node )) return 0 ; // compute the depth of each subtree // and take maximum return 1 + max ( findTreeHeight ( node -> left ) findTreeHeight ( node -> right )); } int main () { Node * root = new Node ( 1 ); root -> left = new Node ( 2 ); root -> right = new Node ( 3 ); root -> left -> left = new Node ( 4 ); root -> left -> right = new Node ( 5 ); root -> left -> left -> left = new Node ( 6 ); // Given tree contains 3 leaf nodes Node * l1 = root -> left -> left -> left ; Node * l2 = root -> left -> right ; Node * l3 = root -> right ; // create circular doubly linked list out of // leaf nodes of the tree // set next pointer of linked list l1 -> right = l2 l2 -> right = l3 l3 -> right = l1 ; // set prev pointer of linked list l3 -> left = l2 l2 -> left = l1 l1 -> left = l3 ; cout < < findTreeHeight ( root ); return 0 ; }
C // C program to calculate height of a special tree // whose leaf nodes forms a circular doubly linked list #include #include struct Node { int data ; struct Node * left * right ; }; // function to check if given // node is a leaf node or node int isLeaf ( struct Node * node ) { // For a node to be a leaf node it should // satisfy the following two conditions: // 1. Node's left's right pointer should be // current node. // 2. Node's right's left pointer should be // current node. // If one condition is met it is guaranteed // that the other condition is also true. return node -> left && node -> left -> right == node && node -> right && node -> right -> left == node ; } // Compute the height of a tree int findTreeHeight ( struct Node * node ) { // if node is NULL return -1. if ( node == NULL ) return -1 ; // if node is a leaf node return 0 if ( isLeaf ( node )) return 0 ; // compute the depth of each subtree and take maximum int leftDepth = findTreeHeight ( node -> left ); int rightDepth = findTreeHeight ( node -> right ); return 1 + ( leftDepth > rightDepth ? leftDepth : rightDepth ); } struct Node * createNode ( int data ) { struct Node * newNode = ( struct Node * ) malloc ( sizeof ( struct Node )); newNode -> data = data ; newNode -> left = NULL ; newNode -> right = NULL ; return newNode ; } int main () { struct Node * root = createNode ( 1 ); root -> left = createNode ( 2 ); root -> right = createNode ( 3 ); root -> left -> left = createNode ( 4 ); root -> left -> right = createNode ( 5 ); root -> left -> left -> left = createNode ( 6 ); // Given tree contains 3 leaf nodes struct Node * l1 = root -> left -> left -> left ; struct Node * l2 = root -> left -> right ; struct Node * l3 = root -> right ; // create circular doubly linked list out of // leaf nodes of the tree // set next pointer of linked list l1 -> right = l2 l2 -> right = l3 l3 -> right = l1 ; // set prev pointer of linked list l3 -> left = l2 l2 -> left = l1 l1 -> left = l3 ; printf ( '%d' findTreeHeight ( root )); return 0 ; }
Java // Java program to calculate height of a special tree // whose leaf nodes forms a circular doubly linked list class Node { int data ; Node left right ; Node ( int x ) { data = x ; left = null ; right = null ; } } class GfG { // function to check if given // node is a leaf node or node static boolean isLeaf ( Node node ) { // For a node to be a leaf node it should // satisfy the following two conditions: // 1. Node's left's right pointer should be // current node. // 2. Node's right's left pointer should be // current node. // If one condition is met it is guaranteed // that the other condition is also true. return node . left != null && node . left . right == node && node . right != null && node . right . left == node ; } // Compute the height of a tree static int findTreeHeight ( Node node ) { // if node is NULL return -1. if ( node == null ) return - 1 ; // if node is a leaf node return 0 if ( isLeaf ( node )) return 0 ; // compute the depth of each subtree and take maximum return 1 + Math . max ( findTreeHeight ( node . left ) findTreeHeight ( node . right )); } public static void main ( String [] args ) { Node root = new Node ( 1 ); root . left = new Node ( 2 ); root . right = new Node ( 3 ); root . left . left = new Node ( 4 ); root . left . right = new Node ( 5 ); root . left . left . left = new Node ( 6 ); // Given tree contains 3 leaf nodes Node l1 = root . left . left . left ; Node l2 = root . left . right ; Node l3 = root . right ; // create circular doubly linked list out of // leaf nodes of the tree // set next pointer of linked list l1 . right = l2 ; l2 . right = l3 ; l3 . right = l1 ; // set prev pointer of linked list l3 . left = l2 ; l2 . left = l1 ; l1 . left = l3 ; System . out . println ( findTreeHeight ( root )); } }
Python # Python program to calculate height of a special tree # whose leaf nodes forms a circular doubly linked list class Node : def __init__ ( self data ): self . data = data self . left = None self . right = None # function to check if given # node is a leaf node or node def isLeaf ( node ): # For a node to be a leaf node it should # satisfy the following two conditions: # 1. Node's left's right pointer should be # current node. # 2. Node's right's left pointer should be # current node. # If one condition is met it is guaranteed # that the other condition is also true. return ( node . left and node . left . right == node and node . right and node . right . left == node ) # Compute the height of a tree def findTreeHeight ( node ): # if node is NULL return -1. if node is None : return - 1 # if node is a leaf node return 0 if isLeaf ( node ): return 0 # compute the depth of each subtree and take maximum return 1 + max ( findTreeHeight ( node . left ) findTreeHeight ( node . right )) if __name__ == '__main__' : root = Node ( 1 ) root . left = Node ( 2 ) root . right = Node ( 3 ) root . left . left = Node ( 4 ) root . left . right = Node ( 5 ) root . left . left . left = Node ( 6 ) # Given tree contains 3 leaf nodes l1 = root . left . left . left l2 = root . left . right l3 = root . right # create circular doubly linked list out of # leaf nodes of the tree # set next pointer of linked list l1 . right = l2 l2 . right = l3 l3 . right = l1 # set prev pointer of linked list l3 . left = l2 l2 . left = l1 l1 . left = l3 print ( findTreeHeight ( root ))
C# // C# program to calculate height of a special tree // whose leaf nodes forms a circular doubly linked list using System ; class Node { public int data ; public Node left right ; public Node ( int x ) { data = x ; left = null ; right = null ; } } class GfG { // function to check if given // node is a leaf node or node static bool isLeaf ( Node node ) { // For a node to be a leaf node it should // satisfy the following two conditions: // 1. Node's left's right pointer should be // current node. // 2. Node's right's left pointer should be // current node. // If one condition is met it is guaranteed // that the other condition is also true. return node . left != null && node . left . right == node && node . right != null && node . right . left == node ; } // Compute the height of a tree static int findTreeHeight ( Node node ) { // if node is NULL return -1. if ( node == null ) return - 1 ; // if node is a leaf node return 0 if ( isLeaf ( node )) return 0 ; // compute the depth of each subtree and take maximum return 1 + Math . Max ( findTreeHeight ( node . left ) findTreeHeight ( node . right )); } static void Main ( string [] args ) { Node root = new Node ( 1 ); root . left = new Node ( 2 ); root . right = new Node ( 3 ); root . left . left = new Node ( 4 ); root . left . right = new Node ( 5 ); root . left . left . left = new Node ( 6 ); // Given tree contains 3 leaf nodes Node l1 = root . left . left . left ; Node l2 = root . left . right ; Node l3 = root . right ; // create circular doubly linked list out of // leaf nodes of the tree // set next pointer of linked list l1 . right = l2 ; l2 . right = l3 ; l3 . right = l1 ; // set prev pointer of linked list l3 . left = l2 ; l2 . left = l1 ; l1 . left = l3 ; Console . WriteLine ( findTreeHeight ( root )); } }
JavaScript // JavaScript program to calculate height of a special tree // whose leaf nodes forms a circular doubly linked list class Node { constructor ( data ) { this . data = data ; this . left = null ; this . right = null ; } } // function to check if given // node is a leaf node or node function isLeaf ( node ) { // For a node to be a leaf node it should // satisfy the following two conditions: // 1. Node's left's right pointer should be // current node. // 2. Node's right's left pointer should be // current node. // If one condition is met it is guaranteed // that the other condition is also true. return node . left && node . left . right === node && node . right && node . right . left === node ; } // Compute the height of a tree function findTreeHeight ( node ) { // if node is NULL return -1. if ( node === null ) return - 1 ; // if node is a leaf node return 0 if ( isLeaf ( node )) return 0 ; // compute the depth of each subtree and take maximum return 1 + Math . max ( findTreeHeight ( node . left ) findTreeHeight ( node . right )); } const root = new Node ( 1 ); root . left = new Node ( 2 ); root . right = new Node ( 3 ); root . left . left = new Node ( 4 ); root . left . right = new Node ( 5 ); root . left . left . left = new Node ( 6 ); // Given tree contains 3 leaf nodes const l1 = root . left . left . left ; const l2 = root . left . right ; const l3 = root . right ; // create circular doubly linked list out of // leaf nodes of the tree // set next pointer of linked list l1 . right = l2 ; l2 . right = l3 ; l3 . right = l1 ; // set prev pointer of linked list l3 . left = l2 ; l2 . left = l1 ; l1 . left = l3 ; console . log ( findTreeHeight ( root ));
Izlaz
3
Vremenska složenost: O(n) gdje n je broj čvorova.
Pomoćni prostor: Oh)
