How do you find the vertex, focus and directrix of $4 x - y^{2} - 2 y - 33 = 0$ $4x-y^2-2y-33=0$ ?

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How do you find the vertex, focus and directrix of $4 x - y^{2} - 2 y - 33 = 0$ $4x-y^2-2y-33=0$ ?

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Answer 1 · 2016-12-02T18:09:22

Please see the explanation.

Explanation:

Given: $4 x - y^{2} - 2 y - 33 = 0$ $4x - y^2 - 2y - 33 = 0$

Add #y^2 + 2y + 33 to both sides:

$4 x = y^{2} + 2 y + 33$ $4x = y^2 + 2y + 33$

Divide both side by 4:

$x = \frac{1}{4} y^{2} + \frac{1}{2} y + \frac{33}{4} [1]$ $x = 1/4y^2 + 1/2y + 33/4" [1]"$

This type of parabola opens to left or right. Because the coefficient, a, of the $y^{2}$ $y^2$ is greater than zero, we know that is opens to the right.

The vertex form of an equation of this type of parabola is:

$x = a {(y - k)}^{2} + h$ $x = a(y - k)^2 + h$

where "a" is the coefficient of the $y^{2}$ $y^2$ term and $(h, k)$ $(h, k)$ is the vertex.

The focus of this type is located at $(h + \frac{1}{4 a}, k)$ $(h + 1/(4a),k)$

The equation of the directrix is $x = h - \frac{1}{4 a}$ $x = h - 1/(4a)$

Lets put equation [1] in vertex from. Add zero to equation [1] in the form of $\frac{1}{4} k^{2} - \frac{1}{4} k^{2}$ $1/4k^2 - 1/4k^2$ :

$x = \frac{1}{4} y^{2} + \frac{1}{2} y + \frac{1}{4} k^{2} - \frac{1}{4} k^{2} + \frac{33}{4}$ $x = 1/4y^2 + 1/2y + 1/4k^2 - 1/4k^2 + 33/4$

Factor $\frac{1}{4}$ $1/4$ from the first 3 terms:

$x = \frac{1}{4} (y^{2} + 2 y + k^{2}) - \frac{1}{4} k^{2} + \frac{33}{4} [2]$ $x = 1/4(y^2 + 2y + k^2) - 1/4k^2 + 33/4" [2]"$

Please observe that the right side of the pattern ${(y - k)}^{2} = y^{2} - 2 k + k^{2}$ $(y - k)^2 = y^2 -2k + k^2$ matches what is inside the parenthesis in equation [2]. Set the middle term of the right side of the pattern equal to the corresponding term in equation [2]:

$- 2 k = 2 y$ $-2k = 2y$

$k = - 1$ $k = -1$

Substitute the left side of the pattern into the ()s in equation [2]:

$x = \frac{1}{4} {(y - k)}^{2} - \frac{1}{4} k^{2} + \frac{33}{4}$ $x = 1/4(y - k)^2 - 1/4k^2 + 33/4$

Substitute -1 for every k:

$x = \frac{1}{4} {(y - - 1)}^{2} - \frac{1}{4} {(- 1)}^{2} + \frac{33}{4}$ $x = 1/4(y - -1)^2 - 1/4(-1)^2 + 33/4$

Simplify the constant term:

$x = \frac{1}{4} {(y - - 1)}^{2} + 8$ $x = 1/4(y - -1)^2 + 8$

The vertex is at $(8, - 1)$ $(8, -1)$

The focus is at

#(8 + 1/(4(1/4)), -1)

This simplifies to:

(9, - 1)#

The equation of the directrix is

$x = 8 - \frac{1}{4 (\frac{1}{4})}$ $x = 8 - 1/(4(1/4))$

$x = 7$ $x = 7$

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How do you find the vertex, focus and directrix of $4 x - y^{2} - 2 y - 33 = 0$ $4x-y^2-2y-33=0$ ?

1 Answer

Explanation:

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How do you find the vertex, focus and directrix of 4x-y^2-2y-33=04x−y2−2y−33=04x-y^2-2y-33=0?

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How do you find the vertex, focus and directrix of $4 x - y^{2} - 2 y - 33 = 0$ $4x-y^2-2y-33=0$ ?