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Hi I need to calculate (2^n + (-1)^n) % 10000007 where 1 < n < 10^9

How should I go about writing a program for it in c++?

I know this mod property (a + b)%n = (a%n + b%n)%n but this wont help me.

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Here's another property: (a*b)%n = ((a%n)*(b%n))%n. Can you prove it? – n.m. Feb 22 '14 at 17:59
    
(-1)^n is just +/- 1 depending on whether n is even, isn't it? – delnan Feb 22 '14 at 18:00

Given

(a + b)%m = (a%m + b%m)%m

Then, replace both a and b with the same power of 2, and you get the recurrence:

2k+1%m = (2k%m + 2k%m)%m

You probably already figured your formula allows you to break down your problem into:

(2n + (-1)n)%P = (2n%P + (-1)n%P)%P

Then, note that (-1)k is either 1 or -1, and you should be able to calculate your problem in O(n) time.

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+1: especially in programming is brain > brawl – Andreas Grapentin Feb 22 '14 at 18:11

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