Question

How do you find the x intercepts and vertex of `y=x^2-2x-4`?

Answer 1

X-intercepts are

`(1-sqrt5, 0)`
`(1+sqrt5, 0)`

Vertex`(1, -5)`

Explanation:

Given -

`y=x^2-2x-4`

To find the x-intercepts put `y=0`

`x^2-2x-4=0`
`x^2-2x=4`
`x^2-2x+1=4+1`
`(x-1)^2=5`
`x-1=+-sqrt5`

X-intercepts are

`(1-sqrt5, 0)`
`(1+sqrt5, 0)`

Vertex

`x=(-b)/(2a)=(-(-2))/(2xx1)=2/2=1`

At `x=1`

`y=(1)^2-2(1)-4=1-2-4=-5`

Vertex`(1, -5)`