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LinkedList Questions: Reverse a Linked List - Recursive version
In this series of posts, I will discuss coding questions on the LinkedList
Data structure.
The posts in this series will be organized in the following way,
- Question Link ❓
- Possible Explanation 📝
- Documented C++ Code 🧹
- Time and Space Complexity Analysis ⌛🌌
Given the head
of a singly linked list, reverse the list, and return the reversed list.
💡 Give yourself at least 15-20 mins to figure out the solution :)
Its bit tricky so pay your atmost attention,
The idea is to make current node's successor( cur→next
) point to current and there by reversing the list. (Here, we are under assumption that the list after current node is already reversed ).
Lastly, we will return the last node's pointer as the new head
of our reversed linkedlist.
See the recursion animation to make things more clear,
//Definition for singly-linked list.
struct ListNode
{
int val;
ListNode *next;
ListNode() : val(0), next(nullptr) {}
ListNode(int x) : val(x), next(nullptr) {}
ListNode(int x, ListNode *next) : val(x), next(next) {}
};
ListNode *reverseList(ListNode *head)
{
/*
*Approach
-Let's say list is n0 -> n1 ->... "nk" -> nk+1 -> ...n->null
-when we are on nk, we assume nk+1 <-...n i.e. the list ahead is reversed
*/
//* When 1. list contains 0 or 1 node,
//* 2. head is pointing last node
if (head == nullptr || head->next == nullptr)
return head;
ListNode *last = reverseList(head->next);
//note: To make sure this works, we need to make sure:
//> head->next and head exits (base condition)
head->next->next = head; //! crux
head->next = nullptr;
return last;
}
We will visit every node once.
The size of recursion stack as we will go n levels deep.
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