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$ x(t)=e^{2jt} \to sys \to y(t)=te^{-2jt} $

$ x(t)=e^{-2jt} \to sys \to y(t)=te^{2jt} $

We want to know the output associated with the input $ x(t)=cos(2t) $. If you expand $ cos(2t) $ into two exponentials you will get $ \frac{e^{2jt} + e^{-2jt}}{2} $. Now you can use linearity to solve the problem.

$ \frac{1}{2}e^{2jt} + \frac{1}{2}e^{-2jt} \to sys \to tcos(2t) $

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