$\int \frac{\sin x + \cos x}{9 + 16 \sin 2 x} d x$

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Solution

$We have, I = \int \frac{(\sin x + \cos x) d x}{9 + 16 \sin 2 x} Let \sin x - \cos x = t . . . . . (1) Diff both sides (\cos x + \sin x) d x = d t Squaring both sides of (1), we get {(\sin x - \cos x)}^{2} = t^{2} \Rightarrow \sin^{2} x + \cos^{2} x - 2 \sin x \cos x = t^{2} \Rightarrow 1 - t^{2} = 2 \sin x \cos x \Rightarrow 1 - t^{2} = \sin (2 x) ∴ I = \int \frac{d t}{9 + 16 (1 - t^{2})} = \int \frac{d t}{25 - 16 t^{2}} = \frac{1}{16} \int \frac{d t}{\frac{25}{16} - t^{2}} = \frac{1}{16} \int \frac{d t}{{(\frac{5}{4})}^{2} - t^{2}} = \frac{1}{16} \times \frac{1}{2 \times \frac{5}{4}} \log |\frac{\frac{5}{4} + t}{\frac{5}{4} - t}| + C = \frac{1}{40} \log |\frac{5 + 4 (\sin x - \cos x)}{5 - 4 (\sin x - \cos x)}| + C$

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