How do you find all the zeros of $h (x) = x^{4} + 6 x^{3} + 10 x^{2} + 6 x + 9$ $h(x)=x^4+6x^3+10x^2+6x+9$ ?

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How do you find all the zeros of $h (x) = x^{4} + 6 x^{3} + 10 x^{2} + 6 x + 9$ $h(x)=x^4+6x^3+10x^2+6x+9$ ?

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Answer 1 · 2016-05-30T08:30:24

$x = - 3$ $x=-3$ (multiplicity 2)

$x = \pm i$ $x=+-i$

Explanation:

$h (x) = x^{4} + 6 x^{3} + 10 x^{2} + 6 x + 9$ $h(x) = x^4+6x^3+10x^2+6x+9$

By the rational root theorem, any rational zeros of $h (x)$ $h(x)$ are expressible in the form $\frac{p}{q}$ $p/q$ for integers $p, q$ $p, q$ with $p$ $p$ a divisor of the constant term $9$ $9$ and $q$ $q$ a divisor of the coefficient $1$ $1$ of the leading term.

That means that the only possible rational zeros are:

$\pm 1$ $+-1$ , $\pm 3$ $+-3$ , $\pm 9$ $+-9$

In addition, note that all of the coefficients of $h (x)$ $h(x)$ are positive. So it has no positive zeros. So the only possible rational zeros are:

$- 1$ $-1$ , $- 3$ $-3$ , $- 9$ $-9$

We find:

$h (- 1) = 1 - 6 + 10 - 6 + 9 = 8$ $h(-1) = 1-6+10-6+9 = 8$

$h (- 3) = 81 - 162 + 90 - 18 + 9 = 0$ $h(-3) = 81-162+90-18+9 = 0$

So $x = - 3$ $x=-3$ is a zero and $(x + 3)$ $(x+3)$ a factor:

$x^{4} + 6 x^{3} + 10 x^{2} + 6 x + 9 = (x + 3) (x^{3} + 3 x^{2} + x + 3)$ $x^4+6x^3+10x^2+6x+9 = (x+3)(x^3+3x^2+x+3)$

The remaining cubic factors by grouping:

$x^{3} + 3 x^{2} + x + 3$ $x^3+3x^2+x+3$

$= (x^{3} + 3 x^{2}) + (x + 3)$ $=(x^3+3x^2)+(x+3)$

$= x^{2} (x + 3) + 1 (x + 3)$ $=x^2(x+3)+1(x+3)$

$= (x^{2} + 1) (x + 3)$ $=(x^2+1)(x+3)$

$= (x - i) (x + i) (x + 3)$ $=(x-i)(x+i)(x+3)$

So $x = - 3$ $x=-3$ is a zero again, giving it a total multiplicity $2$ $2$ and the other zeros are $x = \pm i$ $x=+-i$

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How do you find all the zeros of $h (x) = x^{4} + 6 x^{3} + 10 x^{2} + 6 x + 9$ $h(x)=x^4+6x^3+10x^2+6x+9$ ?

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How do you find all the zeros of h(x)=x4+6x3+10x2+6x+9h(x)=x^4+6x^3+10x^2+6x+9?

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How do you find all the zeros of $h (x) = x^{4} + 6 x^{3} + 10 x^{2} + 6 x + 9$ $h(x)=x^4+6x^3+10x^2+6x+9$ ?