-3-i-a-ibc-id- then tan-1b-a- tan-1d-chas the value

√(3)+i=(a+ib)(c+id) ∴ ac bd=√(3) and ad+bc=1 Now tan^ 1(b/a)+tan^ 1(d/c) = tan^ 1(a/b+d/c/1 b/a.d/c)= tan^ 1(bc+ad/ac bd)= tan^ 1(1/√(3)) =nπ+π/6, nϵI ...

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Byju's Answer

Standard XI

Mathematics

Properties of Argument

√3+i=a+ibc+id...

Question

$\sqrt{3} + i = (a + i b) (c + i d), t h e n {tan}^{- 1} \frac{b}{a} + {tan}^{- 1} \frac{d}{c}$

has the value

2n $π$ + $\frac{π}{3}$ , n $ϵ$ I

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n $π$ + $\frac{π}{6}$ , n $ϵ$ I

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n $π$ - $\frac{π}{3}$ , n $ϵ$ I

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2n $π$ - $\frac{π}{6}$ , n $ϵ$ I

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Solution

The correct option is B
n $π$ + $\frac{π}{6}$ , n $ϵ$ I

$\sqrt{3} + i$ =(a+ib)(c+id)

$∴ a c - b d$ = $\sqrt{3}$ and ad+bc=1

Now ${tan}^{- 1} (\frac{b}{a}) + {tan}^{- 1} (\frac{d}{c})$

= ${tan}^{- 1} (\frac{\frac{a}{b} + \frac{d}{c}}{1 - \frac{b}{a} . \frac{d}{c}})$ = ${tan}^{- 1} (\frac{b c + a d}{a c - b d})$ = ${tan}^{- 1} (\frac{1}{\sqrt{3}})$

=n $π$ + $\frac{π}{6}$ , n $ϵ$ I

Suggest Corrections

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√3+i=(a+ib)(c+id),thentan−1ba+tan−1dc has the value

The correct option is B nπ+π6, nϵI √3+i=(a+ib)(c+id) ∴ac−bd=√3 and ad+bc=1 Now tan−1(ba)+tan−1(dc) = tan−1(ab+dc1−ba.dc)= tan−1(bc+adac−bd)= tan−1(1√3) =nπ+π6, nϵI

$\sqrt{3} + i = (a + i b) (c + i d), t h e n {tan}^{- 1} \frac{b}{a} + {tan}^{- 1} \frac{d}{c}$

has the value