Given a distance ‘dist, count total number of ways to cover the distance with 1, 2 and 3 steps. 

Examples: 

Input: n = 3
Output: 4
Explantion:
Below are the four ways
 1 step + 1 step + 1 step
 1 step + 2 step
 2 step + 1 step
 3 step

Input: n = 4
Output: 7
Explantion:
Below are the four ways
 1 step + 1 step + 1 step + 1 step
 1 step + 2 step + 1 step
 2 step + 1 step + 1 step 
 1 step + 1 step + 2 step
 2 step + 2 step
 3 step + 1 step
 1 step + 3 step

Recursive solution  

• Approach: There are n stairs, and a person is allowed to next step, skip one position or skip two positions. So there are n positions. The idea is standing at the ith position the person can move by i+1, i+2, i+3 position. So a recursive function can be formed where at current index i the function is recursively called for i+1, i+2 and i+3 positions. 
  There is another way of forming the recursive function. To reach position i, a person has to jump either from i-1, i-2 or i-3 position where i is the starting position. 
   
• Algorithm: 
  1. Create a recursive function (count(int n)) which takes only one parameter.
  2. Check the base cases. If the value of n is less than 0 then return 0, and if value of n is equal to zero then return 1 as it is the starting position.
  3. Call the function recursively with values n-1, n-2 and n-3 and sum up the values that are returned, i.e. sum = count(n-1) + count(n-2) + count(n-3).
  4. Return the value of sum.
• Implementation:

Output:

7

• Complexity Analysis: 
  • Time Complexity: O(3ⁿ). 
    The time complexity of the above solution is exponential, a close upper bound is O(3ⁿ). From each state 3, a recursive function is called. So the upper bound for n states is O(3ⁿ).
  • Space complexity: O(1). 
    No extra space is required.

Efficient solution  

• Approach: The idea is similar, but it can be observed that there are n states but the recursive function is called 3 ^ n times. That means that some states are called repeatedly. So the idea is to store the value of states. This can be done in two ways. 
  • The first way is to keep the recursive structure intact and just store the value in a HashMap and whenever the function is called, return the value store without computing (Top-Down Approach).
  • The second way is to take an extra space of size n and start computing values of states from 1, 2 .. to n, i.e. compute values of i, i+1, i+2 and then use them to calculate the value of i+3 (Bottom-Up Approach).
  • Overlapping Subproblems in Dynamic Programming.
  • Optimal substructure property in Dynamic Programming.
  • Dynamic Programming(DP) problems
• Algorithm: 
  1. Create an array of size n + 1 and initialize the first 3 variables with 1, 1, 2. The base cases.
  2. Run a loop from 3 to n.
  3. For each index i, compute value of ith position as dp[i] = dp[i-1] + dp[i-2] + dp[i-3].
  4. Print the value of dp[n], as the Count of number of ways to cover a distance.
• Implementation:

Output :

7

• Complexity Analysis: 
  • Time Complexity: O(n). 
    Only one traversal of the array is needed. So Time Complexity is O(n)
  • Space complexity: O(n). 
    To store the values in a DP O(n) extra space is needed.

More Optimal Solution

    Approach: Instead of using array of size n+1 we can use array of size 3 because for calculating no of ways for a particular step we need only last     3 steps no of ways.

    Algorithm:

1. Create an array of size 3 and initialize the values for step 0,1,2 as 1,1,2 (Base cases).
2. Run a loop from 3 to n(dist).
3. For each index compute the value as ways[i%3] = ways[(i-1)%3] + ways[(i-2)%3] + ways[(i-3)%3] and store its value at i%3 index of array ways. If we are computing value for index 3 then the computed value will go at index 0 because for larger indices(4 ,5,6…..) we don’t need the value of index 0.
4. Return the value of ways[n%3].

Output : 

7

Time Complexity : O(n)

Space Complexity : O(1)

This article is contributed by Vignesh Venkatesan. Please write comments if you find anything incorrect, or you want to share more information about the topic discussed above 

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