1 Answer

Dmitriy Kisil · Answer 1 · 2023-04-16T15:00:44+0000

Answer:

Zero: x=0

Asymptotes:

Horizontal: y=0

Vertical: x=4, x=-4

Explanation:

For the function

f(x)=(4x)/(x^2-16)

The degree of the numerator (1) is less than the degree of the denominator (2), so there is a horizontal asymptote at y=0.

The vertical asymptotes are found by setting the denominator equal to zero:

$x^2-16=0\\(x^2-16)+16=(0)+16\\x^2=16\\√(x^2)=√(16)$

x=4 and
x=-4

The vertical asymptotes of the function are found at x=4 and x=-4

To find the zero of the function, set the numerator equal to zero:

$4x=0\\(4x)/(4)=(0)/(4)\\x=0$

Please log in or register to add a comment.