If the vertices of a quadrilateral $A B C D$ are $A (- 4, 2), B (2, 6), C (8, 5)$ and $D (9, - 7)$ , then the quadrilateral formed by joining the midpoints of the sides of the quadrilateral $A B C D$ will be a

Rhombus

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Parallelogram

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Rectangle

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Square

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Solution

The correct option is B Parallelogram
The vertices of quadrilateral are
$A (- 4, 2), B (2.6), C (8, 5), D (9, - 7)$

Mid points of $A B, B C, C D$ and $D A$ are
$P (- 1, 4), Q (5, \frac{11}{2}), R (\frac{17}{2}, - 1), S (\frac{5}{2}, - \frac{5}{2})$
$m_{1} =$ Slope of $P Q = \frac{1}{4}$
$m_{2} =$ Slope of $R S = \frac{1}{4}$
$m_{3} =$ Slope of $Q R = - \frac{13}{7}$
$m_{4} =$ Slope of $P S = - \frac{13}{7}$
Clearly $m_{1} = m_{2}$ and $m_{3} = m_{4}$ $m_{1} m_{3} \neq - 1$ and
$P Q = R S = \frac{\sqrt{153}}{2}, Q R = P S = \frac{\sqrt{218}}{2}$
So, $P Q \neq Q R$
So, it is a parallelogram

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If the vertices of a quadrilateral ABCD are A(−4,2),B(2,6),C(8,5) and D(9,−7), then the quadrilateral formed by joining the midpoints of the sides of the quadrilateral ABCD will be a

If the vertices of a quadrilateral $A B C D$ are $A (- 4, 2), B (2, 6), C (8, 5)$ and $D (9, - 7)$ , then the quadrilateral formed by joining the midpoints of the sides of the quadrilateral $A B C D$ will be a