Graphing Rational Functions

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carebear

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I have been asked to sketch y = x2/(x2 + 2x - 8)

According to the lesson notes it has a horizontal asymptote at y = 1 because the degree of the numerator is equal to the degree of the denominator ( said to divide the leading coefficients). However, is it really a horizontal asymptote if at least 1 part of the graph exists when y = 1. For example....in this question, when x = 4, y = 1.

When I look at the left side of the graph alone, it definitely has a horizontal asymptote of y = 1.

So can I say the graph has a horizontal asymptote at y= 1?
 
carebear said:
I have been asked to sketch y = x2/(x2 + 2x - 8)

According to the lesson notes it has a horizontal asymptote at y = 1 because the degree of the numerator is equal to the degree of the denominator ( said to divide the leading coefficients). However, is it really a horizontal asymptote if at least 1 part of the graph exists when y = 1. For example....in this question, when x = 4, y = 1.

When I look at the left side of the graph alone, it definitely has a horizontal asymptote of y = 1.

So can I say the graph has a horizontal asymptote at y= 1?
Click to expand...

Yes - the graph can even intersect horizontal assymptote.

The graph of a function cannot intersect its vertical assymptote.
 
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