$ \sin^2 x = 1 \Rightarrow x = rac\pi2 + k\pi $. At $ x = rac\pi2 $, $ 2x = \pi $, $ \cos \pi = -1 $, $ \cos^2 \pi = 1 $. So yes: $ f\left(rac\pi2 - AMAZONAWS

📅 March 6, 2026 👤 scraface

Mar 06, 2026

$$ \sin^2 x = 1 \Rightarrow x = rac{\pi}{2} + k\pi $. At $ x = rac{\pi}{2} $, $ 2x = \pi $, $ \cos \pi = -1 $, $ \cos^2 \pi = 1 $. So yes: $ f\left( rac{\pi}{2}$