MHT CET · Maths · Differentiation
If \(f(x)=\operatorname{cosec}^{-1}\left[\frac{10}{6 \sin \left(2^x\right)-8 \cos \left(2^x\right)}\right]\), then \(f^{\prime}(x)\)
- A \(2^x \log 2\)
- B \(-1\)
- C \(\log 2\)
- D \(2^x\)
Answer & Solution
Correct Answer
(A) \(2^x \log 2\)
Step-by-step Solution
Detailed explanation
\(f(x)=\operatorname{cosec}^{-1}\left[\frac{10}{6 \sin \left(2^x\right)-8 \cos \left(2^x\right)}\right]\) \(=\sin ^{-1}\left[\frac{6 \sin \left(2^x\right)-8 \cos \left(2^x\right)}{10}\right] \)
\( \text { Here }(6)^2+(-8)^2=(10)^2 \)
\( \therefore \text { Let } \cos \alpha=\frac{6}{10} \text { and } \sin \alpha=\frac{8}{10} \)
\( \therefore f(x)=\sin ^{-1}\left[\sin \left(2^x\right) \cos \alpha-\cos \left(2^x\right) \sin \alpha\right]\) \(=\sin ^{-1}\left[\sin \left(2^x-\alpha\right)\right] \)
\( \therefore f(x)=2^x-\alpha \Rightarrow f^{\prime}(x)=2^x \log 2\)
\( \text { Here }(6)^2+(-8)^2=(10)^2 \)
\( \therefore \text { Let } \cos \alpha=\frac{6}{10} \text { and } \sin \alpha=\frac{8}{10} \)
\( \therefore f(x)=\sin ^{-1}\left[\sin \left(2^x\right) \cos \alpha-\cos \left(2^x\right) \sin \alpha\right]\) \(=\sin ^{-1}\left[\sin \left(2^x-\alpha\right)\right] \)
\( \therefore f(x)=2^x-\alpha \Rightarrow f^{\prime}(x)=2^x \log 2\)
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