Question

What is the equation of the parabola with a focus at (-3,1) and a directrix of y= 0?

Answer 1

The equation of parabola is `y=1/2(x+3)^2+0.5`

Explanation:

Focus is at `(-3,1)`and directrix is `y= 0`. Vertex is at midway

between focus and directrix. Therefore vertex is at `(-3,(1-0)/2)`

or at `(-3, 0.5)` . The vertex form of equation of parabola is

`y=a(x-h)^2+k ; (h.k) ;` being vertex. `h=-3 and k = 0.5`

Therefore vertex is at `(-3,0.5)` and the equation of parabola is

`y=a(x+3)^2+0.5`. Distance of vertex from directrix is

`d= 0.5-0=0.5`, we know `d = 1/(4|a|) :. 0.5 = 1/(4|a|)` or

`|a|= 1/(4*0.5)=1/2`. Here the directrix is below

the vertex , so parabola opens upward and `a` is positive.

`:. a=1/2` . The equation of parabola is `y=1/2(x+3)^2+0.5`

graph{1/2(x+3)^2+0.5 [-10, 10, -5, 5]} [Ans]