Question

How do you find the vertex and the intercepts for `f(x) = (x + 5)^2 - 2`?

Answer 1

Vertex is at `(-5, -2)` x intercepts are at
`(-5+sqrt 2, 0) and (-5-sqrt 2, 0)`, y intercept is at `(0,23)`

Explanation:

`f(x) =(x+5)^2-2` . Comparing with vertex form of

equation `f(x) = a(x-h)^2+k ; (h,k)` being vertex we find

here `h=-5 , k= -2 :.` Vertex is at `(-5, -2)` . y intercept

is found by putting `x=0` in the equation `y = (x+5)^2-2` or

`y=(0+5)^2-2 or y =23 :.` y intercept is `y=23 or (0,23)`

x intercept is found by putting `y=0` in the equation

`y = (x+5)^2-2 or 0 = (x+5)^2-2 or (x+5)^2=2`

`(x+5)=+- sqrt 2 or x = -5+- sqrt 2 :.` x intercepts are

at `(-5+sqrt 2, 0) and (-5-sqrt 2, 0)`.

graph{(x+5)^2-2 [-45, 45, -22.5, 22.5]}