1 Answer

Rogeriolino · Answer 1 · 2022-03-28T11:56:24+0000

Answer:

The vertex is at
(0, -9)

The axis of symmetry
x = 0

Explanation:

Note: You can answer all the questions looking at the graph

We have the function
$f: \mathbb{R} \rightarrow\mathbb{R}$ (I am assuming this) such that
f(x) = y = (x-3)(x+3)

We note that

(x-3)(x+3) = x^2-9 once we have a difference of squares

Therefore, we have a quadratic function.

So

y = x^2-9

The vertex
(h, k) is

$h = (-b)/(2a) = (-0)/(2 \cdot 1) = 0$

k= h^2 - 9 = 0^2 - 9 =-9

Therefore, the vertex is at
(0, -9)

As we know the vertex, we conclude that the axis of symmetry
x = 0

The x-intercepts occur at
y = 0

$y = (x-3)(x+3) \implies x = -3, x=3$

So, the left x-intercept is
(-3, 0) and the right x-intercept is
(3, 0)

As I stated in the beginning, the domain is the set of all real numbers. Precisely,

$Dom(f) = \mathbb{R} = (-\infty, \infty)$

Once, we know the vertex, we also conclude that the Range is

$Ran(f)= [-9,\infty)$

Greater than or equal to -9

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