Help me solve this rational problem?

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Help me solve this rational problem?

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Answer 1 · 2018-08-09T13:15:41

See explanation.

Explanation:

Given: $(x^2-16)/(x^2+x-20)$

There are several things to note.

$color(brown)("Consider the numerator:")$

$x^2-16 -> a^2-b^2=(a-b)(a+b)$

Thus we have $(x-4)(x+4)$

From this it MAY be the case that the question designer intended one of them to cancel out in the denominator.

$color(brown)("Consider the denominator:")$

As it is possible that there MAY be a cancelling out it is reasonable to explore $x=+-4$ as a factor

Note that $4xx5=20 and 5-4=1$ so lets look at

$x^2+x-20color(white)("ddd")->color(white)("ddd")(x+5)(x-4)$

$color(white)("dddddddddddd")->color(white)("ddd") x^2+5x-4x-20 larr" Works"$
~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
$color(brown)("Putting it all back together")$

$(x^2-16)/(x^2+x-20) -> (cancel((x-4))(x+4))/((x+5)cancel((x-4))) =(x+4)/(x+5) ->f(x)$

As the equation is undefined when the denominator becomes 0 we have a vertical asymptote at $x=-5$

$lim_(x->+oo) f(x)->k=+1$

$lim_(x->-oo) f(x)->k==+1$

Thus there is a horizontal asymptote at $y=1$
~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
$color(brown)("Any excluded value")$

Although the $(x-4)$ in the denominator cancels 'away' it still forms part of the original expression. Thus it has to be taken into account. This is done by setting $(x-4)=0$ and declaring $x=4$ as the excluded value.
~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
$color(brown)("The general behaviour of the plot")$

I will let you investigate this. You will need to shoe your logic in your solution.

We already know that there is a horizontal asymptote at $y=1$

Test out what happens very close to the vertical asymptote.
Tony B

color(white)("d")

Answer 2 · 2018-08-09T13:26:38

$"see explanation"$

Explanation:

$"let "f(x)=(x^2-16)/(x^2+x-20)$

$"the numerator is a "color(blue)"difference of squares"$

$x^2-16=(x-4)(x+4)$

$"denominator"$

$"the factors of "-20" which sum to "+1$
$"are "+5" and "-4$

$x^2+x-20=(x+5)(x-4)$

$f(x)=(cancel((x-4))(x+4))/((x+5)cancel((x-4)))=(x+4)/(x+5)$

$"the removal of the factor "(x-4)" from the numerator"$

$" and denominator indicates a hole at"$

$x-4=0rArrx=4toy=(4+4)/(4+5)=8/9$

$"hole at "(4,8/9)$

$"the graph of "f(x)=(x+4)/(x+5)" is the same as"$

$(x^2-16)/(x^2+x-20)" but without the hole"$

The denominator of f(x) cannot be zero as this would make f(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.

$"solve "x+5=0rArrx=-5" is the asymptote"$

$"Horizontal asymptotes occur as"$

$lim_(xto+-oo),f(x)toc" ( a constant)"$

$"divide terms on numerator/denominator by "x$

$f(x)=(x/x+4/x)/(x/x+5/x)=(1+4/x)/(1+5/x)$

$"as "xto+-oo,f(x)to(1+0)/(1+0)$

$y=1" is the asymptote"$

$"there is a discontinuity at "x=-5$

$"domain is "x in(-oo,-5)uu(-5,oo)$

$"there is a discontinuity at "y=1$

$"range is "y in(-oo,1)uu(1,oo)$

$"For Intercepts"$

$x=0rArry=4/5larrcolor(red)"y-intercept"$

$x+4=0rArrx=-4larrcolor(red)"x-intercept"$
graph{(x+4)/(x+5) [-10, 10, -5, 5]}

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Help me solve this rational problem?

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