Given f(x)=-1/7√16-x^2 find f^-1(x)

Question

asked Sep 3, 2020 101k views

2 Answers

Mynd · Answer 1 · 2020-09-07T05:56:44+0000

Answer:

$f^(-1)(x)=\pm √(49x^2-16)$

Not a function.

Explanation:

The given function is;

f(x)=-(1)/(7)√(16-x^2)

Let
y=-(1)/(7)√(16-x^2)

Interchange x and y;

x=-(1)/(7)√(16-y^2)

Solve for y;

-7x=√(16-y^2)

Square both sides

(-7x)^2=(√(16-y^2))^2

49x^2^2=16-y^2

49x^2^2-16=y^2

$y=\pm √(49x^2-16)$

The inverse is

$f^(-1)(x)=\pm √(49x^2-16)$

$f^(-1)(x)=\pm √(49x^2-16)$ is not a function because one x-value maps onto to different y-values.