What is the formula of $\sin 4 A$

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Solution

$\sin 4 A = \sin 2 (2 A) = 2 \sin 2 A \cos 2 A = 2 (2 \sin A \cos A) (\cos^{2} A - \sin^{2} A) = 4 \sin A \cos A (\cos^{2} A) - 4 \sin A \cos A (\sin^{2} A) = 4 \sin A \cos^{3} A - 4 \sin^{3} A \cos A$
Hence, $\sin 4 A = 4 \sin A \cos^{3} A - 4 \sin^{3} A \cos A$

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