$y = x + 2$ is a tangent to the parabola $y^{2} = 8 x$ . The point on this line, the other tangent from which is perpendicular to this tangent is

(2, 4)

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(- 2, 0)

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(- 1, 1)

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(2, 0)

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Solution

The correct option is A $(- 2, 0)$
Given line is $y = x + 2$
Slope of this line is $1$
Then, slope of the line perpendicular to the given line will be $- 1$
Let $(x_{1}, y_{1})$ be a point on $y = x + 2$
$∴ y_{1} = x_{1} + 2$
Equation of the line perpendicular to the given line through $(x_{1}, y_{1})$ is
$y - (x_{1} + 2) = - (x - x_{1}) \Rightarrow y = - x + 2 (x_{1} + 1)$
If this line is a tangent to $y^{2} = 8 x,$
$c = \frac{a}{m}$ gives
$2 (x_{1} + 1) = \frac{2}{- 1} \Rightarrow x_{1} + 1 = - 1 \Rightarrow x_{1} = - 2$
Hence $y_{1} = 0$
$∴$ The required point is $(- 2, 0)$ .

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y=x+2 is a tangent to the parabola y2=8x. The point on this line, the other tangent from which is perpendicular to this tangent is

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