Chapter 10.2, Problem 42E

To determine

To find: The vertex, focus and the directrixof the parabola.

Answer to Problem 42E

The vertex, focus and the directrix of the parabola are $\left(-1,2\right)$ , $\left(0,2\right)$ , and $x=-2$ respectively.

Explanation of Solution

Given information:

The equation of the parabola is given,

$y^2-4y-4x=0$

Concept used:

Write the standard equation of a parabola along the vertical axis.

${\left(x-h\right)}^2=4p\left(y-k\right)$

For this equation, the focus is at $\left(h,k+p\right)$ and the directrix is $y=k-p$ .

Write the standard equation of a parabola along the horizontal axis.

${\left(y-k\right)}^2=4p\left(x-h\right)$

For this equation, the focus is at $\left(h+p,k\right)$ and the directrix is $x=h-p$ .

The equation of the parabola can be written as,

$\begin{array}{l}{y}^2-4y-4x=0\\ y^2-2\cdot 2\cdot y+{\left(2\right)}^2-4=4x\\ {\left(y-2\right)}^2=4x+4\\ {\left(y-2\right)}^2=4\left(1\right)\left(x+1\right)\end{array}$

Write the standard equation of a parabola along the horizontal axis.

${\left(y-k\right)}^2=4p\left(x-h\right)$

Compare given and the standard equation of the parabola to get,

$\begin{array}{l}h=-1\\ k=2\\ p=1\end{array}$

The vertex of the parabola is,

$\left(h,k\right)=\left(-1,2\right)$

The focus of the parabola is,

$\begin{array}{c}\left(h+p,k\right)=\left(-1+\left(1\right),2\right)\\ =\left(0,2\right)\end{array}$

The directrix of the parabola is,

$\begin{array}{c}x=h-p\\ =-1-\left(1\right)\\ x=-2\end{array}$

Thus, the vertex, focus and the directrix of the parabola are $\left(-1,2\right)$ , $\left(0,2\right)$ , and $x=-2$ respectively.