Move last element to front of a given Linked List Last Updated : 26 Aug, 2024 Summarize Comments Improve Suggest changes Share Like Article Like Report Try it on GfG Practice Given a singly linked list. The task is to move the last node to the front in a given List.Examples:Input: 2->5->6->2->1Output: 1->2->5->6->2Explanation : Node 1 moved to front. Input: 1->2->3->4->5Output: 5->1->2->3->4Explanation : Node 5 moved to front.[Expected Approach] Traverse Till Last Node - O(n) Time and O(1) space:Traverse the list till the last node. Use two pointers to store the reference of the last node and second last node. After the end of loop, make the second last node as the last node and the last node as the head node.Below is the implementation of the above approach: C++ // C++ Program to move last element // to front in a given linked list #include <iostream> using namespace std; class Node { public: int data; Node *next; Node(int x) { data = x; next = nullptr; } }; // Function to move the last node to the // front of the linked list Node *moveToFront(Node *head) { // If the list is empty or has only one node, // no need to move if (head == NULL || head->next == NULL) { return head; } // To keep track of the second last node Node *secLast = NULL; // To traverse to the last node Node *last = head; // Traverse the list to find the last and // second last nodes while (last->next != NULL) { secLast = last; last = last->next; } // Change the next of second last node to NULL secLast->next = NULL; // Make the last node as the new head last->next = head; head = last; return head; } void printList(Node *node) { while (node != NULL) { cout << node->data << " "; node = node->next; } cout << endl; } int main() { // Create a linked list 1->2->3->4->5 Node *head = new Node(1); head->next = new Node(2); head->next->next = new Node(3); head->next->next->next = new Node(4); head->next->next->next->next = new Node(5); cout << "Linked list before: " << endl; printList(head); head = moveToFront(head); cout << "Linked list after: " << endl; printList(head); return 0; } C // C Program to move last element // to front in a given linked list #include <stdio.h> #include <stdlib.h> struct Node { int data; struct Node *next; }; // Function to move the last node to the front of the linked list struct Node *moveToFront(struct Node *head) { // If the list is empty or has only one node, no need to move if (head == NULL || head->next == NULL) { return head; } // To keep track of the second last node struct Node *secLast = NULL; // To traverse to the last node struct Node *last = head; // Traverse the list to find the last and second last nodes while (last->next != NULL) { secLast = last; last = last->next; } // Change the next of second last node to NULL secLast->next = NULL; // Make the last node as the new head last->next = head; head = last; return head; } void printList(struct Node *node) { while (node != NULL) { printf("%d ", node->data); node = node->next; } printf("\n"); } struct Node *createNode(int data) { struct Node *newNode = (struct Node *)malloc(sizeof(struct Node)); newNode->data = data; newNode->next = NULL; return newNode; } int main() { // Create a linked list 1->2->3->4->5 struct Node *head = createNode(1); head->next = createNode(2); head->next->next = createNode(3); head->next->next->next = createNode(4); head->next->next->next->next = createNode(5); printf("Linked list before:\n"); printList(head); head = moveToFront(head); printf("Linked list after:\n"); printList(head); return 0; } Java // Java Program to move last element // to front in a given linked list class Node { int data; Node next; Node(int x) { data = x; next = null; } } class GfG { // Function to move the last node to the // front of the linked list static Node moveToFront(Node head) { // If the list is empty or has only one node, // no need to move if (head == null || head.next == null) { return head; } // To keep track of the second last node Node secLast = null; // To traverse to the last node Node last = head; // Traverse the list to find the last and // second last nodes while (last.next != null) { secLast = last; last = last.next; } // Change the next of second last node to null secLast.next = null; // Make the last node as the new head last.next = head; head = last; return head; } static void printList(Node node) { while (node != null) { System.out.print(node.data + " "); node = node.next; } System.out.println(); } public static void main(String[] args) { // Create a linked list 1->2->3->4->5 Node head = new Node(1); head.next = new Node(2); head.next.next = new Node(3); head.next.next.next = new Node(4); head.next.next.next.next = new Node(5); System.out.println("Linked list before: "); printList(head); head = moveToFront(head); System.out.println("Linked list after: "); printList(head); } } Python # Python code to move the last item to front class Node: def __init__(self, data): self.data = data self.next = None # Function to move the last node # to the front of the linked list def move_to_front(head): # If the list is empty or has # only one node, no need to move if head is None or head.next is None: return head # To keep track of the second last node sec_last = None # To traverse to the last node last = head # Traverse the list to find the # last and second last nodes while last.next is not None: sec_last = last last = last.next # Change the next of second last node to None sec_last.next = None # Make the last node as the new head last.next = head head = last return head def print_list(node): while node is not None: print(node.data, end=" ") node = node.next print() # Create a linked list 1->2->3->4->5 head = Node(1) head.next = Node(2) head.next.next = Node(3) head.next.next.next = Node(4) head.next.next.next.next = Node(5) print("Linked list before:") print_list(head) head = move_to_front(head) print("Linked list after:") print_list(head) C# // C# Program to move last element // to front in a given linked list class Node { public int data; public Node next; public Node(int x) { data = x; next = null; } } class GfG { // Function to move the last node to the // front of the linked list static Node MoveToFront(Node head) { // If the list is empty or has only one node, // no need to move if (head == null || head.next == null) { return head; } // To keep track of the second last node Node secLast = null; // To traverse to the last node Node last = head; // Traverse the list to find the last and // second last nodes while (last.next != null) { secLast = last; last = last.next; } // Change the next of second last node to null secLast.next = null; // Make the last node as the new head last.next = head; head = last; return head; } static void PrintList(Node node) { while (node != null) { System.Console.Write(node.data + " "); node = node.next; } System.Console.WriteLine(); } public static void Main() { // Create a linked list 1->2->3->4->5 Node head = new Node(1); head.next = new Node(2); head.next.next = new Node(3); head.next.next.next = new Node(4); head.next.next.next.next = new Node(5); System.Console.WriteLine("Linked list before:"); PrintList(head); head = MoveToFront(head); System.Console.WriteLine("Linked list after:"); PrintList(head); } } JavaScript // Javascript Program to move last element to // front in a given linked list class Node { constructor(data) { this.data = data; this.next = null; } } // Function to move the last // node to the front of the linked list function moveToFront(head) { // If the list is empty or has // only one node, no need to move if (head === null || head.next === null) { return head; } // To keep track of the second last node let secLast = null; // To traverse to the last node let last = head; // Traverse the list to find the last // and second last nodes while (last.next !== null) { secLast = last; last = last.next; } // Change the next of second last node to null secLast.next = null; // Make the last node as the new head last.next = head; head = last; return head; } function printList(node) { while (node !== null) { process.stdout.write(node.data + " "); node = node.next; } console.log(); } let head = new Node(1); head.next = new Node(2); head.next.next = new Node(3); head.next.next.next = new Node(4); head.next.next.next.next = new Node(5); console.log("Linked list before:"); printList(head); head = moveToFront(head); console.log("Linked list after:"); printList(head); OutputLinked list before: 1 2 3 4 5 Linked list after: 5 1 2 3 4 Time Complexity: O(n), As we need to traverse the list once.Auxiliary Space: O(1) Comment More infoAdvertise with us Next Article Move last element to front of a given Linked List K kartik Follow Improve Article Tags : Linked List DSA Practice Tags : Linked List Similar Reads DSA Tutorial - Learn Data Structures and Algorithms DSA (Data Structures and Algorithms) is the study of organizing data efficiently using data structures like arrays, stacks, and trees, paired with step-by-step procedures (or algorithms) to solve problems effectively. 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