Question

Consider the graph of the function `f(x) = 2(x+3)^2+2`. Over which interval is the graph decreasing?

Answer 1

`f(x)` is decreasing over `(-oo, -3)`

Explanation:

`f(x)=2(x+3)^2+2`

First let's expand `f(x)`

`f(x) =2(x^2+6x+9)+2`

`= 2x^x+12x+20`

Note that `f(x)` is defined `forall x in RR`
`:.`the domain of `f(x)` is `(-oo, +oo)`

Also note that as `f(x)` is a parabola it will have a single turning point.

`f(x)` will be decreasing where `f'(x)<0`

`f'(x)= 4x+12` (Power rule)

Hence `f(x)` will be decreasing where: `4x+12<0`

i.e. where `x+3<0 -> x<-3`

Since the domain of `f(x)` is `(-oo, +oo)`, `f(x)` will be decreasing over: `(-oo, -3)`

This can be seen by the graph of `f(x)` below.

graph{2(x+3)^2+2 [-17.09, 11.38, -2.16, 12.08]}