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प्रश्न
Solve for x: 2 tan−1`(1/3)` + sec−1`((5sqrt2)/7)` = tan −1 x
योग
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उत्तर
Step 1: Simplify the first term
Using the formula: `2 tan^(−1) A = tan−1 ((2A)/(1 − A^2))`
`2 tan^(−1)(1/3) = tan^(−1) ((2/3)/(1 − 1/9)) `
`= tan^(−1) ((2/3)/(8/9)) = tan^(−1)(3/4)`
Step 2: Convert the second term to tan−1
Let sec−1`((5sqrt2)/7) = θ ⇒ sec θ = (5sqrt2)/7`
Using the identity tan θ = `sqrt(sec^2 θ − 1)`
tan θ = `sqrt(((5sqrt2)/7)^2) −1`
`= sqrt50/49 − 1`
`= sqrt1/49 = 1/7`
so, `sec−1 ((5sqrt2)/7) = tan^(−1)(1/7)`
Step 3: Combine and solve for
Substitute these back into the original equation:
`= tan^(−1) (3/4) + tan^(−1) (1/7) = tan^(−1) x`
Using the formula `tan^(−1) A + tan^(−1) B = tan^(−1) ((A + B)/(1 − AB))`
`tan^(−1) ((3/4 + 1/7)/(1 − (3/4 × 1/7))) = tan^(−1) x`
`tan^(−1) ((25/28)/(25/28)) = tan^(−1) x`
`tan^(−1) (1) = tan^(−1) x`
⇒ x = 1
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