250+ TOP MCQs on Largest and Smallest Number in a Linked List using Recursion and Answers

Data Structure online quiz on “Largest and Smallest Number in a Linked List using Recursion”.

1. Which of the following methods can be used to find the largest and smallest number in a linked list?
a) Recursion
b) Iteration
c) Both Recursion and iteration
d) Impossible to find the largest and smallest numbers
View Answer

Answer: c
Clarification: Both recursion and iteration can be used to find the largest and smallest number in a linked list.

2. Consider the following code snippet to find the largest element in a linked list:

struct Node{
   int val;
   struct Node *next;
}*head;
int get_max()
{
      struct Node* temp = head->next;
	  int max_num = temp->val;
	  while(______)
	  {
	        if(temp->val > max_num)
		    max_num = temp->val;
		temp = temp->next;
	  }
	  return max_num;
}

Which of the following lines should be inserted to complete the above code?
a) temp->next != 0
b) temp != 0
c) head->next != 0
d) head != 0

Answer: b
Clarification: The line “temp != 0” should be inserted to complete the above code.

3. Consider the following code snippet to find the smallest element in a linked list:

struct Node
{
     int val;
     struct Node* next;
}*head;
int get_min()
{
      struct Node* temp = head->next;
	  int min_num = temp->val;
	  while(temp != 0)
	  {
	       if(_________)
		    min_num = temp->val;
		temp = temp->next;
	  }
	  return min_num;
}

Which of the following lines should be inserted to complete the above code?
a) temp > min_num
b) val > min_min
c) temp->val < min_num
d) temp->val > min_num

Answer: c
Clarification: The line “temp->val = min_num” should be inserted to complete the above code.

4. What is the output of the following code:

#include
#include
struct Node
{
     int val;
     struct Node* next;
}*head;
int get_max()
{
      struct Node* temp = head->next;
	  int max_num = temp->val;
	  while(temp != 0)
	  {
	        if(temp->val > max_num)
		    max_num = temp->val;
		temp = head->next;
	  }
	  return max_num;
}
int main()
{
      int n = 9, arr[9] ={5,1,3,4,5,2,3,3,1},i;
      struct Node *temp, *newNode;
      head = (struct Node*)malloc(sizeof(struct Node));
      head -> next =0;
      temp = head;
      for(i=0;i<n;i++)
      {
          newNode =(struct Node*)malloc(sizeof(struct Node));
          newNode->next = 0;
          newNode->val = arr[i];
          temp->next =newNode;
          temp = temp->next;
      }
      int max_num = get_max();
      printf("%d %d",max_num);
      return 0;
}

a) 5
b) 1
c) runtime error
d) garbage value

Answer: c
Clarification: The variable temp will always point to the first element in the linked list due to the line “temp = head->next” in the while loop. So, it will be an infinite while loop and the program will produce a runtime error.

5. What is the output of the following code?

#include
#include
struct Node
{
     int val;
     struct Node* next;
}*head;
int get_max()
{
      struct Node* temp = head->next;
	  int max_num = temp->val;
	  while(temp != 0)
	  {
	        if(temp->val > max_num)
		    max_num = temp->val;
		temp = temp->next;
	  }
	  return max_num;
}
int get_min()
{
      struct Node* temp = head->next;
	  int min_num = temp->val;
	  while(temp != 0)
	  {
	        if(temp->val < min_num)
		    min_num = temp->val;
		temp = temp->next;
	  }
	  return min_num;
}
int main()
{
      int i, n = 9, arr[9] ={8,3,3,4,5,2,5,6,7};
      struct Node *temp, *newNode;
      head = (struct Node*)malloc(sizeof(struct Node));
      head -> next =0;
      temp = head;
      for(i=0;i<n;i++)
      {
          newNode =(struct Node*)malloc(sizeof(struct Node));
          newNode->next = 0;
          newNode->val = arr[i];
          temp->next =newNode;
          temp = temp->next;
      }
      int max_num = get_max();
      int min_num = get_min();
      printf("%d %d",max_num,min_num);
      return 0;
}

a) 2 2
b) 8 8
c) 2 8
d) 8 2
View Answer

Answer: d
Clarification: The program prints the largest and smallest elements in the linked list, which are 8 and 2 respectively.

6. What is the time complexity of the following iterative code used to find the smallest and largest element in a linked list?

#include
#include
struct Node
{
     int val;
     struct Node* next;
}*head;
int get_max()
{
      struct Node* temp = head->next;
	  int max_num = temp->val;
	  while(temp != 0)
	  {
	        if(temp->val > max_num)
		    max_num = temp->val;
		temp = temp->next;
	  }
	  return max_num;
}
int get_min()
{
      struct Node* temp = head->next;
	  int min_num = temp->val;
	  while(temp != 0)
	  {
	        if(temp->val < min_num)
		    min_num = temp->val;
		temp = temp->next;
	  }
	  return min_num;
}
int main()
{
      int i, n = 9, arr[9] ={8,3,3,4,5,2,5,6,7};
      struct Node *temp, *newNode;
      head = (struct Node*)malloc(sizeof(struct Node));
      head -> next =0;
      temp = head;
      for(i=0;i<n;i++)
      {
          newNode =(struct Node*)malloc(sizeof(struct Node));
          newNode->next = 0;
          newNode->val = arr[i];
          temp->next =newNode;
          temp = temp->next;
      }
      int max_num = get_max();
      int min_num = get_min();
      printf("%d %d",max_num,min_num);
      return 0;
}

a) O(1)
b) O(n)
c) O(n2)
d) O(n3)

Answer: b
Clarification: The time complexity of the above iterative code used to find the largest and smallest element in a linked list is O(n).

7. Consider the following recursive implementation to find the largest element in a linked list:

struct Node
{
     int val;
     struct Node* next;
}*head;
int max_of_two(int a, int b)
{
      if(a > b)
        return a;
      return b;
}
int recursive_get_max(struct Node* temp)
{
      if(temp->next == 0)
        return  temp->val;
      return max_of_two(______, _______);
}

Which of the following arguments should be passed to the function max_of two() to complete the above code?
a) temp->val,recursive_get_max(temp->next)
b) temp, temp->next
c) temp->val, temp->next->val
d) temp->next->val, temp

Answer: a
Clarification: The arguments {temp->val,recursive_get_max(temp->next)} should be passed to the function max_of_two() to complete the above code.

8. What is the output of the following code?

#include
#include
struct Node
{
     int val;
     struct Node* next;
}*head;
int max_of_two(int a, int b)
{
      if(a > b)
        return a;
      return b;
}
int recursive_get_max(struct Node* temp)
{
      if(temp->next == 0)
        return  temp->val;
      return max_of_two(temp->val,recursive_get_max(temp->next));
}
int min_of_two(int a, int b)
{
      if(a < b)
        return a;
      return b;
}
int recursive_get_min(struct Node* temp)
{
      if(temp->next == 0)
        return  temp->val;
      return min_of_two(temp->val,recursive_get_min(temp->next));
}
int main()
{
     int n = 9, arr[9] ={1,3,2,4,5,0,5,6,7},i;
     struct Node *temp, *newNode;
     head = (struct Node*)malloc(sizeof(struct Node));
     head -> next =0;
     temp = head;
     for(i=0;i<n;i++)
     {
           newNode =(struct Node*)malloc(sizeof(struct Node));
           newNode->next = 0;
           newNode->val = arr[i];
           temp->next =newNode;
           temp = temp->next;
     }
     int max_num = recursive_get_max(head->next);
     int min_num = recursive_get_min(head->next);
     printf("%d %d",max_num,min_num);
     return 0;
}

a) 7 1
b) 0 7
c) 7 0
d) 1 1

Answer: c
Clarification: The program prints the largest and the smallest elements in the linked list, which are 7 and 0 respectively.

9. What is the time complexity of the recursive implementation used to find the largest and smallest element in a linked list?

#include
#include
struct Node
{
     int val;
     struct Node* next;
}*head;
int max_of_two(int a, int b)
{
      if(a > b)
        return a;
      return b;
}
int recursive_get_max(struct Node* temp)
{
      if(temp->next == 0)
        return  temp->val;
      return max_of_two(temp->val,recursive_get_max(temp->next));
}
int min_of_two(int a, int b)
{
      if(a < b)
        return a;
      return b;
}
int recursive_get_min(struct Node* temp)
{
      if(temp->next == 0)
        return  temp->val;
      return min_of_two(temp->val,recursive_get_min(temp->next));
}
int main()
{
     int n = 9, arr[9] ={1,3,2,4,5,0,5,6,7},i;
     struct Node *temp, *newNode;
     head = (struct Node*)malloc(sizeof(struct Node));
     head -> next =0;
     temp = head;
     for(i=0;i<n;i++)
     {
           newNode =(struct Node*)malloc(sizeof(struct Node));
           newNode->next = 0;
           newNode->val = arr[i];
           temp->next =newNode;
           temp = temp->next;
     }
     int max_num = recursive_get_max(head->next);
     int min_num = recursive_get_min(head->next);
     printf("%d %d",max_num,min_num);
     return 0;
}

a) O(1)
b) O(n)
c) O(n2)
d) O(n3)
Answer: b
Clarification: The time complexity of the above recursive implementation used to find the largest and smallest element in linked list is O(n).

10. What is the output of the following code?

#include
#include
struct Node
{
     int val;
     struct Node* next;
}*head;
int min_of_two(int a, int b)
{
      if(a < b)
        return a;
      return b;
}
int recursive_get_min(struct Node* temp)
{
      if(temp->next == 0)
        return  temp->val;
      return min_of_two(temp->val,recursive_get_min(temp->next));
}
int main()
{
     int n = 5, arr[5] ={1,1,1,1,1},i;
     struct Node *temp, *newNode;
     head = (struct Node*)malloc(sizeof(struct Node));
     head -> next =0;
     temp = head;
     for(i=0;i<n;i++)
     {
           newNode =(struct Node*)malloc(sizeof(struct Node));
           newNode->next = 0;
           newNode->val = arr[i];
           temp->next =newNode;
           temp = temp->next;
     }
     int min_num = recursive_get_min(head->next);
     printf("%d",min_num);
     return 0;
}

a) 1
b) 0
c) compile time error
d) runtime error

Answer: a
Clarification: The program prints the smallest element in the linked list, which is 1.

11. How many times will the function recursive_get_min() be called when the following code is executed?

#include
#include
struct Node
{
     int val;
     struct Node* next;
}*head;
int min_of_two(int a, int b)
{
      if(a < b)
        return a;
      return b;
}
int recursive_get_min(struct Node* temp)
{
      if(temp->next == 0)
        return  temp->val;
      return min_of_two(temp->val,recursive_get_min(temp->next));
}
int main()
{
     int n = 5, arr[5] ={1,1,1,1,1},i;
     struct Node *temp, *newNode;
     head = (struct Node*)malloc(sizeof(struct Node));
     head -> next =0;
     temp = head;
     for(i=0;i<n;i++)
     {
           newNode =(struct Node*)malloc(sizeof(struct Node));
           newNode->next = 0;
           newNode->val = arr[i];
           temp->next =newNode;
           temp = temp->next;
     }
     int min_num = recursive_get_min(head->next);
     printf("%d",min_num);
     return 0;
}

a) 4
b) 5
c) 6
d) 7

Answer: b
Clarification: The function recursive_get_min() will be called 5 times when the above code is executed.

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