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(i) If sinθ + cosθ = p and secθ + cosecθ = q then prove that q(p^2 – 1) = 2p (ii) If sinθ(1 + sin^2 θ) = cos^2 θ

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(i) If sinθ + cosθ = p and secθ + cosecθ = q then prove that q(p2 – 1) = 2p

(ii) If sinθ(1 + sin2 θ) = cos2 θ, then prove that cos6 θ – 4cos4 θ + 8cos2 θ = 4

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(i) p = sinθ + cosθ  

(ii) Given sinθ(1 + sin2 θ) = cos2 θ

Substitute sin2 θ = 1 – cos2 θ and take cos θ = c

Squaring (1) on both sides we get

sin2 θ(1 + sin2 θ)2 = cos4 θ

(1 – c2)(1 + 1 – c2) = c4

(1 – c2)(2 – c2)2 = c4

(1 – c2)(4 + c4 – 4c2) = c4

4 + c4 – 4c2 – 4c2 – c6 + 4c4 = c4

-c+  4c4 – 8c2 = -4

c6 – 4c4 + 8c2 = -4

ie cos 6θ – 4cos 4θ + 8cos2 θ = 4 = RHS

∴ Hence proved

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