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प्रश्न
Find the principal solutions of the following equation:
sin 2θ = `− 1/(sqrt2)`
योग
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उत्तर
sin 2θ = `− 1/(sqrt2)`
Since, θ ∈ (0, 2π), 2θ ∈ (0, 4π)
`∴ sin 2θ = − 1/(sqrt2) = − sin π/4 = sin (π + π/4) = sin (2π − π/4) = sin (3π + π/4) = sin (4π − π/4) ...[∵ sin (π + θ) = sin (2π − θ) = sin (3π + θ) = sin (4π − θ) = − sin θ]`
∴ `sin 2θ = sin (5π)/4 = sin (7π)/4 = sin (13π)/4 = sin (15π)/4`
∴ `2θ = (5π)/4 or 2θ = (7π)/4 or 2θ = (13π)/4 or 2θ = (15π)/4`
∴ `θ = (5π)/8 or θ = (7π)/8 or θ = (13π)/8 or θ = (15π)/8`
Hence, the required principal solutions are `{(5π)/8, (7π)/8, (13π)/8, (15π)/8}`
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