Question

What is the domain and range of `F(x) = 1/ sqrt(4 - x^2)`?

Answer 1

The domain is `x in (-2,2)`. The range is `[1/2, +oo)`.

Explanation:

The function is

`f(x)=1/sqrt(4-x^2)`

What'under the `sqrt` sign must be `>=0` and we cannot divide by `0`

Therefore,

`4-x^2>0`

`=>`, `(2-x)(2+x)>0`

`=>`, `{(2-x>0),(2+x>0):}`

`=>`, `{(x<2),(x> -2):}`

Therefore,

The domain is `x in (-2,2)`

Also,

`lim_(x->2^-)f(x)=lim_(x->2^-)1/sqrt(4-x^2)=1/O^+=+oo`

`lim_(x->-2^+)f(x)=lim_(x->-2^+)1/sqrt(4-x^2)=1/O^+=+oo`

When `x=0`

`f(0)=1/sqrt(4-0)=1/2`

The range is `[1/2, +oo)`

graph{1/sqrt(4-x^2) [-9.625, 10.375, -1.96, 8.04]}