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Question

Question 3 (i)
Evaluate:
(i)(sin263+sin227)(cos217+cos273)

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Solution

(i) (sin263+sin227)(cos217+cos273)
=[sin2(9027)+sin227][cos2(9073)+cos273)]

Now, since sin (90θ)=cosθ and cos (90θ)=sinθ

=(cos227+sin227)(sin273+cos273) (sin2A+cos2A=1)

=11=1

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