The equation x - a 2- y - b 2- k p x - qy - r 2- where pa - qb - r -0 representsA- a parabola for k 1- p 2- q 2D- a point circle for k -0

The correct options are B an ellipse for 0 lt;k lt;1/p^2+q^2 C a hyperbola for k gt;1/p^2+q^2 D a point circle for k=0Here (x a)^2+(y b)^2=k(px+qy+r)^2 re ...

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Standard XII

Mathematics

Solving Linear Differential Equations of First Order

The equation ...

Question

The equation $(x - a)^{2} + (y - b)^{2} = k (p x + q y + r)^{2},$ where $(p a + q b + r) \neq 0$ represents

a parabola for

k < \frac{1}{p^{2} + q^{2}}

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an ellipse for

0 < k < \frac{1}{p^{2} + q^{2}}

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a hyperbola for

k > \frac{1}{p^{2} + q^{2}}

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a point circle for

k = 0

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Solution

The correct options are
B an ellipse for $0 < k < \frac{1}{p^{2} + q^{2}}$
C a hyperbola for $k > \frac{1}{p^{2} + q^{2}}$
D a point circle for $k = 0$
Here $(x - a)^{2} + (y - b)^{2} = k (p x + q y + r)^{2}$ represents conic with $(a, b)$ as focus and $p x + q y + r = 0$ as directrix
$(x - a)^{2} + (y - b)^{2} = k (p^{2} + q^{2}) {(\frac{p x + q y + r}{\sqrt{p^{2} + q^{2}}})}^{2}$
Here $e^{2} = k (p^{2} + q^{2})$
For ellipse
$0 < e^{2} < 1 \Rightarrow 0 < k (p^{2} + q^{2}) < 1 \Rightarrow 0 < k < \frac{1}{p^{2} + q^{2}}$
For parabola,
$e^{2} = 1 \Rightarrow k = \frac{1}{p^{2} + q^{2}}$
For hyperbola,
$e^{2} > 1 \Rightarrow k > \frac{1}{p^{2} + q^{2}}$
For $k = 0, (x - a)^{2} + (y - b)^{2} = 0 \Rightarrow (x, y) = (a, b)$ a point circle

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Similar questions

Q. The equation

(x - a)^{2} + (y - b)^{2} = k (p x + q y + r)^{2},

where

(p a + q b + r) \neq 0

represents

If $p x + q y + r = 0$ is tangent of the parabola $\frac{x^{2}}{a^{2}} - \frac{y^{2}}{b^{2}} = 1$ then

Q. Suppose that the equation of the circle having

(- 3, 5)

and

(5, - 1)

as end point of a diameter is

(x - a)^{2} + (y - b)^{2} = r^{2}

. Then

a + b + r, (r > 0)

is?

Q. Show that the equation to the tangent at

A

where

θ = α

to the circle

(x - a)^{2} + (y - b)^{2} = r^{2}

(x - a) cos α + (y - b) sin α = r

Q.
A function f (x) is given by the equation ,

x^{2} f^{'} (x) + 2 x f (x) - x + 1 = 0, f (1) = 0

f (x) = \frac{a x^{2} + b x + 1}{p x^{2} + q x + r}

, then

a^{2} + b^{2} + p^{2} + q^{2} + r^{2}

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The equation (x−a)2+(y−b)2=k(px+qy+r)2, where (pa+qb+r)≠0 represents

The equation $(x - a)^{2} + (y - b)^{2} = k (p x + q y + r)^{2},$ where $(p a + q b + r) \neq 0$ represents