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Question

If asin2θ+bsinθcosθ+ccos2θ12(a+c)12k, then k2 is equal to

A
b2+(ac)2
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B
a2+(bc)2
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C
c2+(ab)2
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D
a2+b2+c2
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Solution

The correct option is A b2+(ac)2
f(θ)=asin2θ+bsinθcosθ+ccos2θ12ac2

[2sin2θ1=cos2θ,2cos2θ1=cos2θ]
f(θ)=a2(cos2θ)+c2cos2θ+b2sin2θ
f(θ)=12|(ca)cos2θ+bsin2θ|
asinθ+bcosθ lies in between it's maximum and minimum value as given by
(a2b2)asinθ+bcosθ(a2+b2)

Max. value of f(θ) is 12(ca)2+b2

k2=(ca)2+b2

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