2024 DMC Mock 10 Problems/Problem 10

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Notice that $a_n-a_{n-1}=2(a_{n-1}-a_{n-2})$. Since $a_2-a_1=1$, we get \[a_{100}=(a_{100}-a_{99})+(a_{99}-a_{98})+\dots+(a_2-a_1)=2^{98}+2^{97}+\dots+1 = 2^{99}-1\] so $a_{100}+1=2^{99}$. Therefore the answer is $\boxed{99}$.