Question 11
The fourth vertex D of a parallelogram ABCD whose three vertices are A(-2,3), B(6,7) and C(8,3) is
(A) (0, 1)
(B) (0, –1)
(C) (–1, 0)
(D) (1, 0)

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Solution

Let the fourth vertex of the given parallelogram be $D = (x_{4}, y_{4})$ and, L and M be the mid-points of AC and BD, respectively.
Then,
$L = (\frac{- 2 + 8}{2}, \frac{3 + 3}{2}) = (3, 3)$
[ Since, mid-point of any line segment which passes through the points
$(x_{1}, y_{1}) a n d (x_{2}, y_{2})$ is $\frac{x_{1} + x_{2}}{2}, \frac{y_{1} + y_{2}}{2}$ ]
Similarly, M = $(\frac{6 + x_{4}}{2}, \frac{7 + y_{4}}{2})$

Since, ABCD is a parallelogram, therefore diagonals AC and BD will bisect each other.
Hence, L and M are the same points.So, equating both coordinates equal to each other
$∴$ $3 = \frac{6 + x_{4}}{2}$ and $3 = \frac{7 + y_{4}}{2}$
$\Rightarrow$ $6 = 6 + x_{4}$ and $6 = 7 + y_{4}$
$\Rightarrow$ $x_{4} = 0$ and $y_{4} = 6 - 7$
$∴$ $x_{4} = 0$ and $y_{4} = - 1$
Hence, fourth vertex of the parallelogram is
D = $(x_{4}, y_{4}) = (0, - 1)$

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