In a triangle ABC, angleB=pi/3, angleC=p...

In a `triangle ABC`, `angleB=pi/3`, `angleC=pi/4` and D divides `BC` internally in the ratio `1 : 3` Then `(angleBAD)/(angleCAD)=` is equal to (a) `1/sqrt6` (b) `1/3` (c) `1/sqrt3` (d) `sqrt(2/3)`

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In a `triangle ABC`, `angleB=pi/3`, `angleC=pi/4` and D divides `BC` internally in the ratio `1 : 3` Then `(angleBAD)/(angleCAD)=` is equal to (a) `1/sqrt6` (b) `1/3` (c) `1/sqrt3` (d) `sqrt(2/3)`

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