The two opposite vertices of a square are (–1, 2) and (3, 2). Find the co-ordinates of the other two vertices. [4 MARKS]

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Solution

Concept : 1 Mark
Application : 1 Mark
Calculation : 2 Marks

Let ABCD be a square and two opposite vertices of it are A(-1, 2) and C(3, 2). ABCD is a square.

Since ABCD is a square.

$\Rightarrow A B = B C$

$\Rightarrow A B^{2} = B C^{2}$
[Distance between the points is given by
$\sqrt{{(x_{1} - x_{2})}_{1}^{2} + {(y_{1} - y_{2})}_{1}^{2}}$ ]

$\Rightarrow {(x + 1)}^{2} + {(y - 2)}^{2} = {(x - 3)}^{2} + {(y - 2)}^{2}$

$\Rightarrow x^{2} + 2 x + 1 = x^{2} - 6 x + 9$

$\Rightarrow 2 x + 6 x = 9 - 1 = 8$

$\Rightarrow 8 x = 8 \Rightarrow x = 1$

ABC is right $Δ$ at B, then

$A C^{2} = A B^{2} + B C^{2}$ (Pythagoras theorem)

$\Rightarrow (3 + 1)^{2} + (2 - 2)^{2} = (x + 1)^{2} + (y - 2)^{2} + (x - 3)^{2} + (y - 2)^{2}$

$\Rightarrow 16 = 2 (y - 2)^{2} + (1 + 1)^{2} + (1 - 3)^{2}$

$\Rightarrow 16 = 2 (y - 2)^{2} + 4 + 4 \Rightarrow 2 (y - 2)^{2} = 16 - 8 = 8$

$\Rightarrow (y - 2)^{2} = 4 \Rightarrow y - 2 = \pm 2 \Rightarrow y = 4$ and 0

i.e when x = 1 then y = 4 and 0

Co-ordinates of the opposite vertices are: B(1,0) or D(1,4)

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Question 4
The two opposite vertices of a square are (-1, 2) and (3, 2). Find the coordinates of the other two vertices.

The two opposite vertices of a square as shown in the figure are (-1, 2) and (3, 2). Find the coordinates of the other two vertices.

(3, 4)

(1, - 1)

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