How do you find the vertical asymptotes and holes of $f(x)=(x^2+4x+3)/(x+3)$ ?

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Answer 1 · 2016-11-16T07:33:47

There are no asymptotes, only a hole at $x=-3$

Let's factorise the numerator

$x^2+4x+3=(x+1)(x+3)$

Therefore,

$f(x)=(x^2+4x+3)/(x+3)=((x+1)cancel(x+3))/cancel(x+3)$

There we have a hole at $x=-3$

graph{(x^2+4x+3)/(x+3) [-7.316, 6.73, -5.28, 1.743]}

How do you find the vertical asymptotes and holes of f(x)=(x^2+4x+3)/(x+3)f(x)=(x^2+4x+3)/(x+3)?