If $s i n 3 A = c o s (A - 10^{o})$ and $3 A$ is acute then, find the value of the angle $A .$

25^{o}

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30^{o}

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50^{o}

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15^{o}

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Solution

The correct option is A $25^{o}$
Given: $s i n 3 A = c o s (A - 10^{o}) . . . . (i)$

$s i n 3 A = c o s (90^{o} - 3 A) . . . . (i i) (∵ s i n θ = c o s (90^{o} - θ))$

Hence, from (i) and (ii), we get,
$c o s (90^{o} - 3 A) = c o s (A - 10^{o}) \Rightarrow 90^{o} - 3 A = A - 10^{o} \Rightarrow 100^{o} = 4 A ∴ A = 25^{o}$

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