The vertex of a right angled triangle lies on the straight line $2 x + y - 10 = 0$ and the two of vertices, at points $(2, - 3)$ and $(4, 1)$ , then the area of triangle in sq. units is

\sqrt{10}

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3

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\frac{33}{5}

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11

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Solution

The correct option is A $3$
$2 x + y - 10 = 0$

$y = 10 - 2 x$

$∴ (x, 10 - 2 x)$ is the points of the 3rd vertex

$(2, - 3), (x + 10 - 2 x), (4, 1)$

$(\frac{10 - 2 x - 1}{x - 4}) (\frac{10 - 2 x + 3}{x - 2}) = - 1$

$(9 - 2 x) (13 - 2 x) = - (x - 2) (x - 4)$

$117 - 18 x - 26 x + 4 x^{2} = - x^{2} + 6 x - 8$

$5 x^{2} - 50 x + 125 = 0$

Solving the above quadratic equation, we get,

$x = 5$

$y = 10 - 2 x \Rightarrow y = 0$

The 3rd vertex is $(5, 0)$

$A = \frac{1}{2} b h$

$= \frac{1}{2} \sqrt{(4 - 5)^{2} + (1 - 0)^{2}} \sqrt{(5 - 2)^{2} + (0 + 3)^{2}}$

$= \frac{1}{2} \sqrt{2} \times 3 \sqrt{2}$

$= 3$ sq. units

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