Dada una lista enlazada de datos enteros. La tarea es escribir un programa que encuentre de manera eficiente el segundo elemento más grande presente en la Lista enlazada.
Ejemplos :
Input : List = 12 -> 35 -> 1 -> 10 -> 34 -> 1 Output : The second largest element is 34. Input : List = 10 -> 5 -> 10 Output : The second largest element is 5.
Una solución simple será ordenar primero la lista vinculada en orden descendente y luego imprimir el segundo elemento de la lista vinculada ordenada. La complejidad temporal de esta solución es O(nlogn).
Una solución mejor es recorrer la lista Vinculada dos veces. En el primer recorrido encuentre el elemento máximo. En el segundo recorrido encuentre el elemento mayor menor que el elemento obtenido en el primer recorrido. La complejidad temporal de esta solución es O(n).
Una solución más eficiente puede ser encontrar el segundo elemento más grande en un solo recorrido.
A continuación se muestra el algoritmo completo para hacer esto:
1) Initialize two variables first and second to INT_MIN as, first = second = INT_MIN 2) Start traversing the Linked List, a) If the current element in Linked List say list[i] is greater than first. Then update first and second as, second = first first = list[i] b) If the current element is in between first and second, then update second to store the value of current variable as second = list[i] 3) Return the value stored in second node.
A continuación se muestra la implementación del enfoque anterior:
C++
// C++ program to print second largest // value in a linked list #include <climits> #include <iostream> using namespace std; // A linked list node struct Node { int data; struct Node* next; }; // Function to add a node at the // beginning of Linked List void push(struct Node** head_ref, int new_data) { /* allocate node */ struct Node* new_node = (struct Node*)malloc(sizeof(struct Node)); /* put in the data */ new_node->data = new_data; /* link the old list off the new node */ new_node->next = (*head_ref); /* move the head to point to the new node */ (*head_ref) = new_node; } // Function to count size of list int listSize(struct Node* node) { int count = 0; while (node != NULL) { count++; node = node->next; } return count; } // Function to print the second // largest element void print2largest(struct Node* head) { int i, first, second; int list_size = listSize(head); /* There should be atleast two elements */ if (list_size < 2) { cout << "Invalid Input"; return; } first = second = INT_MIN; struct Node* temp = head; while (temp != NULL) { if (temp->data > first) { second = first; first = temp->data; } // If current node's data is in between // first and second then update second else if (temp->data > second && temp->data != first) second = temp->data; temp = temp->next; } if (second == INT_MIN) cout << "There is no second largest element\n"; else cout << "The second largest element is " << second; } // Driver program to test above function int main() { struct Node* start = NULL; /* The constructed linked list is: 12 -> 35 -> 1 -> 10 -> 34 -> 1 */ push(&start, 1); push(&start, 34); push(&start, 10); push(&start, 1); push(&start, 35); push(&start, 12); print2largest(start); return 0; }
Java
// Java program to print second largest // value in a linked list class GFG { // A linked list node static class Node { int data; Node next; }; // Function to add a node at the // beginning of Linked List static Node push( Node head_ref, int new_data) { // allocate node / Node new_node = new Node(); // put in the data / new_node.data = new_data; // link the old list off the new node / new_node.next = (head_ref); // move the head to point to the new node / (head_ref) = new_node; return head_ref; } // Function to count size of list static int listSize( Node node) { int count = 0; while (node != null) { count++; node = node.next; } return count; } // Function to print the second // largest element static void print2largest( Node head) { int i, first, second; int list_size = listSize(head); // There should be atleast two elements / if (list_size < 2) { System.out.print("Invalid Input"); return; } first = second = Integer.MIN_VALUE; Node temp = head; while (temp != null) { if (temp.data > first) { second = first; first = temp.data; } // If current node's data is in between // first and second then update second else if (temp.data > second && temp.data != first) second = temp.data; temp = temp.next; } if (second == Integer.MIN_VALUE) System.out.print( "There is no second largest element\n"); else System.out.print ("The second largest element is " + second); } // Driver program to test above function public static void main(String args[]) { Node start = null; // The constructed linked list is: //12 . 35 . 1 . 10 . 34 . 1 start=push(start, 1); start=push(start, 34); start=push(start, 10); start=push(start, 1); start=push(start, 35); start=push(start, 12); print2largest(start); } } // This code is contributed by Arnab Kundu
Python3
# Python3 program to print second largest # value in a linked list # A linked list node class Node : def __init__(self): self.data = 0 self.next = None # Function to add a node at the # beginning of Linked List def push( head_ref, new_data) : # allocate node / new_node = Node() # put in the data / new_node.data = new_data # link the old list off the new node / new_node.next = (head_ref) # move the head to point to the new node / (head_ref) = new_node return head_ref # Function to count size of list def listSize( node): count = 0 while (node != None): count = count + 1 node = node.next return count # Function to print the second # largest element def print2largest( head): i = 0 first = 0 second = 0 list_size = listSize(head) # There should be atleast two elements / if (list_size < 2) : print("Invalid Input") return first = second = -323767 temp = head while (temp != None): if (temp.data > first) : second = first first = temp.data # If current node's data is in between # first and second then update second elif (temp.data > second and temp.data != first) : second = temp.data temp = temp.next if (second == -323767) : print( "There is no second largest element\n") else: print ("The second largest element is " , second) # Driver code start = None # The constructed linked list is: # 12 . 35 . 1 . 10 . 34 . 1 start = push(start, 1) start = push(start, 34) start = push(start, 10) start = push(start, 1) start = push(start, 35) start = push(start, 12) print2largest(start) # This code is contributed by Arnab Kundu
C#
// C# program to print second largest // value in a linked list using System; class GFG { // A linked list node public class Node { public int data; public Node next; }; // Function to add a node at the // beginning of Linked List static Node push( Node head_ref, int new_data) { // allocate node Node new_node = new Node(); // put in the data new_node.data = new_data; // link the old list off the new node new_node.next = (head_ref); // move the head to point to the new node (head_ref) = new_node; return head_ref; } // Function to count size of list static int listSize( Node node) { int count = 0; while (node != null) { count++; node = node.next; } return count; } // Function to print the second // largest element static void print2largest(Node head) { int first, second; int list_size = listSize(head); // There should be atleast two elements if (list_size < 2) { Console.Write("Invalid Input"); return; } first = second = int.MinValue; Node temp = head; while (temp != null) { if (temp.data > first) { second = first; first = temp.data; } // If current node's data is in between // first and second then update second else if (temp.data > second && temp.data != first) second = temp.data; temp = temp.next; } if (second == int.MinValue) Console.Write( "There is no second" + " largest element\n"); else Console.Write("The second largest " + "element is " + second); } // Driver Code public static void Main(String []args) { Node start = null; // The constructed linked list is: //12 . 35 . 1 . 10 . 34 . 1 start = push(start, 1); start = push(start, 34); start = push(start, 10); start = push(start, 1); start = push(start, 35); start = push(start, 12); print2largest(start); } } // This code is contributed by 29AjayKumar
Javascript
<script> // JavaScript program to print second largest // value in a linked list // A linked list node class Node { constructor() { this.data = 0; this.next = null; } } // Function to add a node at the // beginning of Linked List function push(head_ref, new_data) { // allocate node var new_node = new Node(); // put in the data new_node.data = new_data; // link the old list off the new node new_node.next = head_ref; // move the head to point to the new node head_ref = new_node; return head_ref; } // Function to count size of list function listSize(node) { var count = 0; while (node != null) { count++; node = node.next; } return count; } // Function to print the second // largest element function print2largest(head) { var first, second; var list_size = listSize(head); // There should be atleast two elements if (list_size < 2) { document.write("Invalid Input"); return; } first = second = -2147483648; var temp = head; while (temp != null) { if (temp.data > first) { second = first; first = temp.data; } // If current node's data is in between // first and second then update second else if (temp.data > second && temp.data != first) second = temp.data; temp = temp.next; } if (second == -2147483648) document.write("There is no second" + " largest element<br>"); else document.write("The second largest " + "element is " + second); } // Driver Code var start = null; // The constructed linked list is: //12 . 35 . 1 . 10 . 34 . 1 start = push(start, 1); start = push(start, 34); start = push(start, 10); start = push(start, 1); start = push(start, 35); start = push(start, 12); print2largest(start); </script>
The second largest element is 34