Prove that $(4, 0), (- 2, - 3), (3, 2), (- 3, - 1)$ coordinates are not the vertices of parallelogram.

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Solution

We know that the distance between the two points $(x_{1}, y_{1})$ and $(x_{2}, y_{2})$ is
$d = \sqrt{{(x_{2} - x_{1})}^{2} + {(y_{2} - y_{1})}^{2}}$

Let the given vertices be $A = (4, 0)$ , $B = (- 2, - 3)$ , $C = (3, 2)$ and $D = (- 3, - 1)$

We first find the distance between $A = (4, 0)$ and $B = (- 2, - 3)$ as follows:

$A B = \sqrt{{(x_{2} - x_{1})}^{2} + {(y_{2} - y_{1})}^{2}} = \sqrt{{(- 2 - 4)}^{2} + {(- 3 - 0)}^{2}} = \sqrt{{(- 6)}^{2} + {(- 3)}^{2}} = \sqrt{36 + 9} = \sqrt{45}$

Similarly, the distance between $B = (- 2, - 3)$ and $C = (3, 2)$ is:

$B C = \sqrt{{(x_{2} - x_{1})}^{2} + {(y_{2} - y_{1})}^{2}} = \sqrt{{(3 - (- 2))}^{2} + {(2 - (- 3))}^{2}} = \sqrt{{(3 + 2)}^{2} + {(2 + 3)}^{2}} = \sqrt{5^{2} + 5^{2}} = \sqrt{25 + 25}$
$= \sqrt{50} = \sqrt{5^{2} \times 2} = 5 \sqrt{2}$

Now, the distance between $C = (3, 2)$ and $D = (- 3, - 1)$ is:

$C D = \sqrt{{(x_{2} - x_{1})}^{2} + {(y_{2} - y_{1})}^{2}} = \sqrt{{(- 3 - 3)}^{2} + {(- 7 - 2)}^{2}} = \sqrt{{(- 6)}^{2} + (- 9)^{2}} = \sqrt{36 + 81} = \sqrt{117}$

Now, the distance between $D = (- 3, - 1)$ and $A = (4, 0)$ is:

$D A = \sqrt{{(x_{2} - x_{1})}^{2} + {(y_{2} - y_{1})}^{2}} = \sqrt{{(- 3 - 4)}^{2} + {(- 7 - 0)}^{2}} = \sqrt{{(- 7)}^{2} + (- 7)^{2}} = \sqrt{49 + 49} = \sqrt{98} = \sqrt{7^{2} \times 2}$
$= 7 \sqrt{2}$

We also know that if the opposite sides have equal side lengths, then $A B C D$ is a parallelogram.

Here, since the lengths of the opposite sides are not equal that is:

$A B \neq C D$ and $B C \neq D A$

Hence, the given vertices are not the vertices of parallelogram.

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