In a $△ A B C \frac{{sin}^{2} A + {sin}^{2} B + {sin}^{2} C}{{cos}^{2} A + {cos}^{2} B + {cos}^{2} C} = 2$
The triangle is

equilateral

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obtuse

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isosceles

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right

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Solution

The correct option is C isosceles
$\begin{matrix} {sin}^{2} A + {sin}^{2} B + {sin}^{2} C = 2 ({cos}^{2} A + {cos}^{2} B + {cos}^{2} C) \Rightarrow 2 + 2 cos A \cdot cos B \cdot cos C = - 4 cos A \cdot cos B \cdot cos C \Rightarrow 6 \cdot cos A \cdot cos B \cdot cos C = 0 \Rightarrow 3 (2 cos A \cdot cos B) \cdot cos C = 0 3 \cdot cos (A + B) \cdot cos (A + B) \cdot cos C = 0 \Rightarrow 3 \cdot cos (π - C) \cdot cos C \cdot cos (A - B) \Rightarrow - 3 {cos}^{2} C \cdot cos (A - B) = 0 C = π / 2, (A - B) = π / 2, A + B + C = π h e n c e, t r a i n g l e i s i s o s c e l e s . \end{matrix}$

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Similar questions

A B C

\frac{{sin}^{2} A + {sin}^{2} B + {sin}^{2} C}{{cos}^{2} A + {cos}^{2} B + {cos}^{2} C} = 2

A + B + C = \frac{π}{2},

{sin}^{2} A + {sin}^{2} B + {sin}^{2} C = 1 - 2 sin A sin B sin C

{cos}^{2} A + {cos}^{2} B + {cos}^{2} C = 2 + 2 sin A sin B sin C

A + B + C = \frac{3 π}{2}

cos 2 A + cos 2 B + cos 2 C + 4 sin A sin B sin C = 0

A + B + C = 0

sin 2 A + sin 2 B + sin 2 C + 4 sin A sin B sin C = 0

A + B + C = 180^{\circ}

{sin}^{2} A + {sin}^{2} B + {sin}^{2} C = 2 (1 + cos A cos B cos C)

A + B + C = 180^{\circ}

{cos}^{2} A + {cos}^{2} B + {cos}^{2} C = 1 - 2 cos A cos B cos C

$\frac{c o s^{2} B - c o s^{2} C}{b + c} + \frac{c o s^{2} C - c o s^{2} A}{c + a} + \frac{c o s^{2} A - c o s^{2} B}{a + b} = 0$

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