The mid -points of the sides of a triangle are $(1, 5 - 1), (0, 4, - 2) a n d (2, 3, 4) .$ Find its vertices.

$A (1, 2, 3), B (3, 4, 5) a n d C (- 1, 6, - 7) .$

Right on! Give the BNAT exam to get a 100% scholarship for BYJUS courses

$A (1, 2, 3), B (3, 4, 5) a n d C (- 2, 6, - 7) .$

No worries! We‘ve got your back. Try BYJU‘S free classes today!

$A (1, 2, 3), B (- 5, 4, 5) a n d C (- 1, 6, - 7) .$

No worries! We‘ve got your back. Try BYJU‘S free classes today!

$A (1, 2, 3), B (3, 4, 5) a n d C (- 1, - 6, - 7) .$

No worries! We‘ve got your back. Try BYJU‘S free classes today!

Open in App

Solution

The correct option is A
$A (1, 2, 3), B (3, 4, 5) a n d C (- 1, 6, - 7) .$

Let $A (x_{1}, y_{1}, z_{1}), B (x_{2}, y_{2}, z_{2}) a n d C (x_{3}, y_{3}, z_{3})$ be the vertices of the given triangle and let $D (1, 5, - 1), E (0, 4, - 2) a n d F (2, 3, 4)$ be the mid points of the sides BC, CA and AB respectively.
Now,
D is mid-point of $B C$
$∴ \frac{x_{2} + x_{2}}{2} = 1, \frac{y_{2} + y_{3}}{2} = 5, \frac{z_{2} + z_{3}}{2} = - 1 \Rightarrow x_{2} + x_{3} = 2, y_{2} + y_{3} = 10, z_{2} + z_{3} = - 2$
E is the mid point of CA
$∴ \frac{x_{1} + x_{3}}{2} = 0, \frac{y_{1} + y_{3}}{2} = 4, \frac{z_{1} + z_{3}}{2} = - 2 \Rightarrow x_{1} + x_{3} = 0, y_{1} + y_{3} = 8, z_{1} + z_{3} = - 4$
F is the mid point of AB
$∴ \frac{x_{1} + x_{2}}{2} = 2, \frac{y_{1} + y_{2}}{2} = 3, \frac{z_{1} + z_{2}}{2} = 4 \Rightarrow x_{1} + x_{2} = 4, y_{1} + y_{2} = 6, z + 1 + z_{2} = 8$
Adding first three equations in (i) ,(ii) and (iii) , we obtain
$2 (x_{1} + x_{2} + x_{3}) = 2 + 0 + 4 \Rightarrow x_{1} + x_{2} + x_{3} = 3$
Solving first three equations in (i) , (ii) and (iii) with
$x_{1} + x_{2} + x_{3} = 3,$ we obtain
$x_{1} = 1, x_{2} = 3, x_{3} = - 1.$
Adding next three equations in (i) (ii) and (iii), we obtain
$2 (y_{1} + y_{2} + y_{3}) = 10 + 8 + 6$
$\Rightarrow y_{1} + y_{2} + y_{3} = 12$
Solving next three equations in (i) , (ii) and (iii) with $y_{1} + y_{2} + y_{3} = 12,$ we obtain
$y_{1} = 2, y_{2} = 4, y_{3} = 6.$
Adding last three equations in (i) ,(ii) and (iii) we obtain
$2 (z_{1} + z_{2} + z_{3}) = - 2 - 5 + 8 \Rightarrow z_{1} + z_{2} + z_{3} = 1.$
Solving last three equation in (i) , (ii) and (iii) with $z_{1} + z_{2} + z_{3} = 1,$ we obtain
$z_{1} = 3, z_{2} = 5, z_{3} = - 7.$
Thus the vertices of the triangle are $A (1, 2, 3), B (3, 4, 5) a n d C (- 1, 6, - 7) .$

Suggest Corrections

Similar questions

The mid -points of the sides of a triangle are $(1, 5 - 1), (0, 4, - 2) a n d (2, 3, 4) .$ Find its vertices.

Find the centroid of a triangle, mid-points of whose sides are (1, 2, -3), (3, 0, 1) and (- 1, 1, - 4).

The mid-points of the sides of a triangle are (1, 5, - 1), (0, 4, - 2) and (2, 3, 4). Find its vertices.

(2, 1), (- 2, 3), (4, - 3)

Join BYJU'S Learning Program