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प्रश्न
Prove that the general solution of cos θ = cos α is θ = 2nπ ± α, n ∈ Z.
योग
उत्तर
cos θ = cos α
∴ cos θ – cos α = 0
∴ `-2sin((θ + α)/2)*sin((θ - α)/2)` = 0
∴ `sin((θ + α)/2)` = 0 or `sin((θ - α)/2)` = 0
∴ `(θ + α)/2` = nπ or `(θ - α)/2` = nπ, n ∈ Z
∴ θ + α = 2nπ or θ – α = 2nπ, n ∈ Z
∴ θ = 2nπ – α or θ = 2nπ + α, n ∈ Z
∴ θ = 2nπ ± α, n ∈ Z
Hence, the general solution of cos θ = cos α is θ = 2nπ ± α, n ∈ Z.
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Trigonometric Equations and Their Solutions
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