The correct option is A sin(4x) 8sin(2x)+12x32+c ∫sin^4 x dx = ∫ (sin^2 x)^2 #160; dx = ∫(1 cos 2x2)^2 #160; dx = ∫(1 #160; + cos^2 2x ...

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Integration Using Substitution

Evaluate ∫s...

Question

Evaluate $\int {sin}^{4} x d x$

4 s i n^{3} x + c

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\frac{s i n^{3} x (- c o s x)}{4} + c

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\frac{s i n (4 x) - 8 s i n (2 x) + 12 x}{32} + c

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\frac{s i n (4 x) - 8 c o s (2 x) + 4 x}{16} + c

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Solution

The correct option is A $\frac{s i n (4 x) - 8 s i n (2 x) + 12 x}{32} + c$
$\int {sin}^{4} x d x = \int ({sin}^{2} x)^{2} d x = \int {(\frac{1 - cos 2 x}{2})}^{2} d x$

$= \int (\frac{1 + {cos}^{2} 2 x - 2 cos 2 x}{4}) d x$

$= \frac{1}{4} \int (1 + \frac{1 + cos 4 x}{2} - 2 cos 2 x) d x$

$= \frac{1}{8} \int (2 + 1 + cos 4 x - 4 cos 2 x) d x$

$= \frac{1}{8} \int (3 + cos 4 x - 4 cos 2 x) d x$

$= \frac{1}{8} [3 x + \frac{sin 4 x}{4} - \frac{4 sin 2 x}{2}] + c$

$= \frac{3 x}{8} + \frac{sin 4 x}{32} - \frac{sin 2 x}{4} + c$

$= \frac{sin 4 x - 8 sin 2 x + 12 x}{32} + c$

Option $C$ is correct.

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