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12 votes
I need help please? thank you :)

I need help please? thank you :)-example-1
User Octavian Vladu
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2 Answers

21 votes
21 votes

Break into two parts and simplify


\\ \rm\dashrightarrow (z^2-14z+48)/(z^2+6z-27)


\\ \rm\dashrightarrow (z^2-8z-6z+48)/(z^2+9z-3z-27)


\\ \rm\dashrightarrow ((z-8)(z-6))/((z+9)(z-3))

Now divide by the denominator


\\ \rm\dashrightarrow ((z-8)(z-6)(z-3))/((z+9)(z-3)(z-8))


\\ \rm\dashrightarrow (z-6)/(z+9)

User Puffpio
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12 votes
12 votes


{\qquad\qquad\huge\underline{{\sf Answer}}}

Here we go ~


\qquad \sf  \dashrightarrow \: \cfrac{ {z}^(2) - 14z + 48 }{ {z}^(2) + 6x - 27} ÷ \cfrac{z -8}{z-3}


\qquad \sf  \dashrightarrow \: \cfrac{ {z}^(2) - 8z - 6z+ 48 }{ {z}^(2) + 9z- 3z- 27} ÷ \cfrac{z -8}{z-3}


\qquad \sf  \dashrightarrow \: \cfrac{ {z(}^{} z- 8) - 6(z - 8) }{ {z}^{} (z+ 9)- 3(z + 9)} ÷ \cfrac{z -8}{z-3}


\qquad \sf  \dashrightarrow \: \cfrac{ {(}^{} z- 8) (z - 6) }{ {}^{} (z+ 9)(z - 3)} ÷ \cfrac{z -8}{z-3}


\qquad \sf  \dashrightarrow \: \cfrac{ (z - 6) }{ {}^{} (z+ 9)}

User Julio CamPlaz
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3.0k points