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Question

If x=cos3θ,y=sin3θthen1+(dydx)2

A
tan2θ
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B
sec2θ
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C
secθ
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D
|secθ|
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Solution

The correct option is D |secθ|
From given we have,

dydx=dydθdxdθ

dydθ=ddθ(sin3θ)=3sin2θcosθ

dxdθ=ddθ(cos3θ)=3cos2θsinθ

dydx=3sin2θcosθ3cos2θsinθ

=sinθcosθ=tanθ

1+(dydx)2

=1+(tanθ)2

=1+tan2θ

=|secθ|


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