How do you identify all asymptotes or holes for h(x)=(2x^2+9x+2)/(2x+3)?

1 Answer
Jim G.
Aug 30, 2017

"vertical asymptote at "x=-3/2
"oblique asymptote "y=x+3

Explanation:

The denominator of h(x) cannot be zero as tis would make h(x) undefined. Equating the denominator to zero and solving gives the value that x cannot be and if the numerator is non-zero for this value then it is a vertical asymptote.

"solve "2x+3=0rArrx=-3/2" is the asymptote"

Horizontal asymptotes occur when the degree of the numerator <= degree of the denominator. This is not the case here hence there are no horizontal asymptotes.

Oblique (slant ) asymptotes occur when the degree of the numerator > degree of the denominator. This is the case here hence there is an oblique asymptote.

"dividing out"

x(2x+3)+3(2x+3)-7

rArrh(x)=(2x^2+9x+2)/(2x+3)=x+3-7/(2x+3)

"as "xto+-oo,h(x)tox+3

rArry=x+3" is the asymptote"

Holes occur when there is a cancellation of a common factor on the numerator/denominator. This is not the case here hence there are no holes.
graph{(2x^2+9x+2)/(2x+3) [-10, 10, -5, 5]}

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