How do you simplify $\frac{x^{2} + 3 x + 2}{x^{2} - 1}$ $(x^2+3x+2)/(x^2-1)$ ?

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How do you simplify $\frac{x^{2} + 3 x + 2}{x^{2} - 1}$ $(x^2+3x+2)/(x^2-1)$ ?

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Answer 1 · 2018-05-15T10:15:30

$\frac{x ² + 3 x + 2}{x ² - 1} = \frac{x + 2}{x - 1}$ $(x²+3x+2)/(x²-1)=(x+2)/(x-1)$

Explanation:

$\frac{x ² + 3 x + 2}{x ² - 1}$ $(x²+3x+2)/(x²-1)$
$= \frac{(x + 1) (x + 2)}{(x - 1) (x + 1)}$ $=(cancel((x+1)) (x+2))/((x-1)cancel((x+1)))$
$= \frac{x + 2}{x - 1}$ $=(x+2)/(x-1)$
\0/ here's our answer!

Answer 2 · 2018-05-15T11:35:46

First we should split the middle term

By the video... you should have understood that we need to make $3 x$ $3x$ in two number that one is divisible by 2 and the other is divisible itself

$\frac{x^{2} + x + 2 x + 2}{x^{2} - 1}$ $(x^2+x+2x+2)/(x^2-1)$

You should always remember that
$1 = 1^{2}$ $1=1^2$
It'll always help you

Factorize
$\frac{x (x + 1) + 2 (x + 1)}{x^{2} - 1^{2}}$ $(x(x+1)+2(x+1))/(x^2-1^2)$

It is a law of exponents
$a^{2} - b^{2} = (a + b) (a - b)$ $a^2-b^2=(a+b)(a-b)$

$\frac{(x + 2) (x + 1)}{(x - 1) (x + 1)}$ $((x+2)cancel((x+1)))/((x-1)cancel((x+1)))$

You are left with
$\frac{x + 2}{x - 1}$ $(x+2)/(x-1)$

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How do you simplify $\frac{x^{2} + 3 x + 2}{x^{2} - 1}$ $(x^2+3x+2)/(x^2-1)$ ?

2 Answers

Explanation:

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