N-th Fibonacci Number

You are given an integer ‘N’, your task is to find and return the N’th Fibonacci number using matrix exponentiation.

Since the answer can be very large, return the answer modulo 10^9 +7.

Fibonacci number is calculated using the following formula:
F(n) = F(n-1) + F(n-2), 
Where, F(1) = F(2) = 1.
For Example:
For ‘N’ = 5, the output will be 5.
Input Format:
The first line contains a single integer ‘T’ denoting the number of test cases to be run. Then the test cases follow.

The first line of each test case contains a single integer ‘N’, representing the integer for which we have to find its equivalent Fibonacci number.
Output Format:
For each test case, print a single integer representing the N’th Fibonacci number.

Return answer modulo 10^9 + 7.

Output for each test case will be printed in a separate line.
Note:
You are not required to print anything; it has already been taken care of. Just implement the function.
Constraints:
1 <= T <= 10
1 <= N <= 10^5

Time Limit: 1 sec.
Follow Up:
Can you solve it in Time Complexity better than O(N)?
AnswerBot
1y

Find N-th Fibonacci number using matrix exponentiation and return modulo 10^9+7.

  • Implement a function to find N-th Fibonacci number using matrix exponentiation.

  • Return the answer modulo 10^9+7.

  • Use the f...read more

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2y
Recursive Approach (TLE)
  • In this approach, we use recursion and uses a basic condition that :
    • If ‘N’ is smaller than ‘1’(N<=1) we return ‘N’
    • Else we call the function again as ninjaJasoos(N-1) + ninjaJas...read more
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2y
Dynamic Programming (TLE)

Ans of ‘i-th’ number is = ‘ans[i-1] + ans[i-2]’, so

  • With the help of dynamic programming, we try to store the previous value as the previous value leads to a solution.
  • So we use...read more
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Optimized Dynamic programming (TLE)
  • We take three integers a, b, c and we initialized a=0, b=1 as now we want to optimize the space by only storing “2” last numbers as we need only them.
  • Now we run a lo...read more
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Matrix Exponentiation

Observe that if we take the ‘N-1’th power of the matrix ‘COEF’ = [ [0, 1], [1, 1] ], then the bottom right element of the resultant matrix i.e ‘RESULT[1][1]’ will give the ‘N’th ...read more

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