Question

How do you graph the parabola `y = (x - 3)^2 + 5` using vertex, intercepts and additional points?

Answer 1

Refer explanation section

Explanation:

Given -

`y=(x-3)^2+5`

The equation of the parabola is already in vertex form
So, its vertex is `(3,5)`
To find its y-intercept, put `x=0`

`y=(0-3)^2+5=9+5=14`

Its Y-intercept `(0,14)`

Its vertex is in the first quadrant. Its y-intercept is well above the vertex. Hence the curve cannot have x-intercept.

Take a series of x values ; these values must include vertex and y-intercept. The range of values `-1` to `6`