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प्रश्न
Evaluate: `cos(2cos^-1x + sin^-1x)` at `x = 1/5`.
मूल्यांकन
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उत्तर
cos (2 cos–1x + sin–1x) = cos [cos–1x + cos–1x + sin–1x]
= cos [cos–1x + (cos–1x + sin–1x)]
= `cos [cos^-1x + π/2]`
= `cos (π/2 + cos^-1x)`
= – sin (cos–1x) ...`[∵ cos(π/2 + θ) = -sin θ]`
= `-sin(sin^-1 sqrt(1 - x^2))` ...`[∵ cos^-1x = sin^-1 sqrt(1 - x^2)]`
= `-sqrt(1 - x^2)`
= `-sqrt(1 - (1/5)^2` ...`[∵ x = 1/5 ("Given")]`
= `-sqrt(1 - 1/25)`
= `-sqrt((25 - 1)/25)`
= `-sqrt(24/25)`
= `-(2sqrt(6))/5`
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