How do you find the Vertical, Horizontal, and Oblique Asymptote given f(x)= (2x+4) /( x^2-3x-4)f(x)=2x+4x23x4?

1 Answer
Shell
Sep 25, 2016

The vertical asymptotes are x=4x=4 and x=-1x=1. The horizontal asymptote is y=0y=0. There are no oblique asymptotes.

Explanation:

f(x)=(2x+4)/(x^2-3x-4)f(x)=2x+4x23x4

Factor the denominator.

f(x)=frac{2x+4}{(x-4)(x+1)}f(x)=2x+4(x4)(x+1)

To find the vertical asymptotes, set the denominator equal to zero and solve.
(x-4)(x+1)=0(x4)(x+1)=0
x-4=0color(white)(aaa)x+1=0x4=0aaax+1=0
x=4color(white)(aaa)x=-1color(white)(aaa)x=4aaax=1aaaThese are the VA's.

To find the horizontal asymptotes, compare the degree of the numerator to the degree of the denominator.

  • If the deg of the num > deg of den, there is an oblique asymptote.

  • If the deg of the num = deg of den, the HA is the leading coefficient of the numerator divided by the leading coefficient of the denominator.

  • If the deg of the num < deg of den, the HA is y=0y=0.

In this example, the degree of the numerator is color(red)11 and the degree of the denominator is color(blue)22
f(x)=(2x^color(red)1+4)/(x^color(blue)2-3x-4)f(x)=2x1+4x23x4

The degree of the numerator < degree of the denominator, so the HA is y=0y=0.

There is no oblique asymptote, because the degree of the numerator is not greater than the degree of the denominator.

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