How do you find all the zeros of $x^{3} - 3 x^{2} - x + 3$ $x^3-3x^2-x+3$ with 3 as a zero?

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How do you find all the zeros of $x^{3} - 3 x^{2} - x + 3$ $x^3-3x^2-x+3$ with 3 as a zero?

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Answer 1 · 2016-02-29T07:08:20

The zeros are $x = 3$ $x=3$ and $x = - 1$ $x=-1$ and $x = + 1$ $x=+1$

Explanation:

By synthetic division, arrange the numerical coefficients according to degree(from highest to lowest)

$x^{3} x^{2} x^{1} x^{0}$ $x^3" " " " " "x^2" " " " " "x^1" " " " " "x^0$

$1" " " "-3" " " "-1" " " " " " "3" " " " " "|__underline( 3 )$
$underline(" " " " " " " 3" " " " " " " 0" " " " "" " -3$
$1" " " " " "0" " " " " -1" " " " " " " 0" " "larr$ the remainder

Our depressed equation is now

$x^2+0*x-1=0$

which is reduced by 1 degree from degree 3.
Solve for the remaining roots

$x^2-1=0$

$x^2=1$

$sqrt(x^2)=+-sqrt(1)$

$x=-1$ and $x=+1$

God bless...I hope the explanation is useful

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How do you find all the zeros of $x^{3} - 3 x^{2} - x + 3$ $x^3-3x^2-x+3$ with 3 as a zero?

1 Answer

Explanation:

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How do you find all the zeros of $x^{3} - 3 x^{2} - x + 3$ $x^3-3x^2-x+3$ with 3 as a zero?