How do you find asymptotes, local extrema, and points of inflection, given #f(x) = (x^2 - 8)/(x+3)#?

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Answer 1 · 2015-04-13T16:27:02

Have a look:
enter image source here
The inflection or change of concavity occurs at the point of discontinuity.

graph{(x^2-8)/(x+3) [-41.1, 41.13, -20.54, 20.55]}

Answer 2 · 2015-04-13T16:53:08

If you also want the slant asymptote, do the division:

#(x^2 - 8)/(x+3) =x-3+1/(x+3) #.

So the line #y=x-3# is a slant asymptote.

That is, as #xrarroo#, the difference between #f(x)# and the line #y=x-3# approaches #0#. (And the same as #xrarr -oo#,)

Slant asymptotes are also called oblique asymptotes.