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nth fibonacci number in sublinear time

I was creating a program which is related to the stair problem i.e u have n stairs and the player can climb on the stairs using them one by one or skiping one ...

Now to solve this problem I needed nth (n+1)th term for the Fibonacci for n number of stairs, But the problem is my input range is 1<= n <=1000000.

and for that much greater value of n if i use the loop based method or recursion to calculate the Fibonacci the method takes very much time and space. that i donot have ..

So please can you tell me some method in the Java or C to handle Fibonacci series upto that range with correct output ...

Note: Please i do not need any solution which has recursion or loop.

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marked as duplicate by amit, ecatmur, Oli Charlesworth, Daniel Fischer, Lundin Feb 4 '13 at 15:43

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You need some form of recursion or loop, but you can do it in O(log n) steps. Is that good enough? –  Daniel Fischer Feb 4 '13 at 14:59
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It's trivial, select your favourite closed form for Fn, perhaps start reading here: mathworld.wolfram.com/FibonacciNumber.html –  High Performance Mark Feb 4 '13 at 15:01
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Note that Fn(1,000,000) is ~ e^(480,400) ... a very large number. Take care not to hit overflow problems. –  Mikeb Feb 4 '13 at 15:05
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@HighPerformanceMark While closed form is neat mathematically, when it comes to computing it is also O(logN) because it requires invoking exponent (which is O(logN) AFAIK), and is very numerically unstable because it involves real numebrs which are approximated using floating points (or fixed point - it will still be an approximation) –  amit Feb 4 '13 at 15:08
    
It's very simple... just tell me (n-1)th & (n-2)th terms ;) –  anishsane Feb 4 '13 at 15:10
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up vote 0 down vote accepted

Look at the following page, maybe it will help: http://nayuki.eigenstate.org/page/fast-fibonacci-algorithms

For me their Java example managed to calculate 1000000th Fibonacci number. It is 208988 digits long.

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