Question

What is the vertex form of `4(y-1)=(x-2)^2`?

Answer 1

`y=1/4(x-2)^2+1`

Explanation:

Vertex form has the form `y=a(x-b)^2+c`

Divide both sides by `4`

`4*4(y-1)=1/4(x-2)^2`

`cancel4*cancel4(y-1)=1/4(x-2)^2`

`y-1=1/4(x-2)^2`

Add `1` to both sides

`y-1+1=1/4(x-2)^2+1`

`y-cancel1+cancel1=1/4(x-2)^2+1`

`y=1/4(x-2)^2+1`