How do you factor $13 {(x^{6} + 1)}^{4} (18 x^{5}) {(9 x + 2)}^{3} + 9 {(9 x + 2)}^{2} (9) {(x^{6} + 1)}^{5}$ $13(x^6+ 1)^4(18x^5)(9x + 2)^3 + 9(9x + 2)^2(9)(x^6 + 1)^5$ ?

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How do you factor $13 {(x^{6} + 1)}^{4} (18 x^{5}) {(9 x + 2)}^{3} + 9 {(9 x + 2)}^{2} (9) {(x^{6} + 1)}^{5}$ $13(x^6+ 1)^4(18x^5)(9x + 2)^3 + 9(9x + 2)^2(9)(x^6 + 1)^5$ ?

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Answer 1 · 2016-04-15T19:14:15

$13 {(x^{6} + 1)}^{4} (18 x^{5}) {(9 x + 2)}^{3} + 9 {(9 x + 2)}^{2} (9) {(x^{6} + 1)}^{5}$ $13(x^6+1)^4(18x^5)(9x+2)^3+9(9x+2)^2(9)(x^6+1)^5$

$= 9 {(x^{2} + 1)}^{4} {(x^{2} - \sqrt{3} x + 1)}^{4} {(x^{2} + \sqrt{3} x + 1)}^{4} {(9 x + 2)}^{2} (243 x^{6} + 52 x^{5} + 9)$ $=9(x^2+1)^4(x^2-sqrt(3)x+1)^4(x^2+sqrt(3)x+1)^4(9x+2)^2(243x^6+52x^5+9)$

Explanation:

Given:

$13 {(x^{6} + 1)}^{4} (18 x^{5}) {(9 x + 2)}^{3} + 9 {(9 x + 2)}^{2} (9) {(x^{6} + 1)}^{5}$ $13(x^6+1)^4(18x^5)(9x+2)^3+9(9x+2)^2(9)(x^6+1)^5$

First note that both of the terms are divisible by:

$9 {(x^{6} + 1)}^{4} {(9 x + 2)}^{2}$ $9(x^6+1)^4(9x+2)^2$

So separate that out as a factor first to get:

$13 {(x^{6} + 1)}^{4} (18 x^{5}) {(9 x + 2)}^{3} + 9 {(9 x + 2)}^{2} (9) {(x^{6} + 1)}^{5}$ $13(x^6+1)^4(18x^5)(9x+2)^3+9(9x+2)^2(9)(x^6+1)^5$

$= 9 {(x^{6} + 1)}^{4} {(9 x + 2)}^{2} (13 (2 x^{5}) (9 x + 2) + (9) (x^{6} + 1))$ $=9(x^6+1)^4(9x+2)^2(13(2x^5)(9x+2)+(9)(x^6+1))$

$= 9 {(x^{6} + 1)}^{4} {(9 x + 2)}^{2} (243 x^{6} + 52 x^{5} + 9)$ $=9(x^6+1)^4(9x+2)^2(243x^6+52x^5+9)$

We can treat $x^{6} + 1$ $x^6+1$ as a sum of cubes to factorise it some way:

The sum of cubes identity can be written:

$a^{3} + b^{3} = (a + b) (a^{2} - a b + b^{2})$ $a^3+b^3 = (a+b)(a^2-ab+b^2)$

Use this with $a = x^{2}$ $a=x^2$ and $b = 1$ $b=1$ to find:

$x^{6} + 1 = {(x^{2})}^{3} + 1^{3} = (x^{2} + 1) (x^{4} - x^{2} + 1)$ $x^6+1 = (x^2)^3+1^3 = (x^2+1)(x^4-x^2+1)$

Next note that:

$(a^{2} - k a b + b^{2}) (a^{2} + k a b + b^{2}) = (a^{4} + (2 - k^{2}) a^{2} b^{2} + b^{4})$ $(a^2-kab+b^2)(a^2+kab+b^2)=(a^4+(2-k^2)a^2b^2+b^4)$

So, putting $a = x$ $a=x$ , $b = 1$ $b=1$ and $k = \sqrt{3}$ $k=sqrt(3)$ we find:

$x^{4} - x^{2} + 1 = (x^{2} - \sqrt{3} x + 1) (x^{2} + \sqrt{3} x + 1)$ $x^4-x^2+1 = (x^2-sqrt(3)x+1)(x^2+sqrt(3)x+1)$

So:

$x^{6} + 1 = (x^{2} + 1) (x^{2} - \sqrt{3} x + 1) (x^{2} + \sqrt{3} x + 1)$ $x^6+1 = (x^2+1)(x^2-sqrt(3)x+1)(x^2+sqrt(3)x+1)$

Putting it all together:

$13 {(x^{6} + 1)}^{4} (18 x^{5}) {(9 x + 2)}^{3} + 9 {(9 x + 2)}^{2} (9) {(x^{6} + 1)}^{5}$ $13(x^6+1)^4(18x^5)(9x+2)^3+9(9x+2)^2(9)(x^6+1)^5$

$= 9 {(x^{2} + 1)}^{4} {(x^{2} - \sqrt{3} x + 1)}^{4} {(x^{2} + \sqrt{3} x + 1)}^{4} {(9 x + 2)}^{2} (243 x^{6} + 52 x^{5} + 9)$ $=9(x^2+1)^4(x^2-sqrt(3)x+1)^4(x^2+sqrt(3)x+1)^4(9x+2)^2(243x^6+52x^5+9)$

The remaining quadratic factors have no Real zeros and therefore no linear factors with Real coefficients.

The remaining sextic factor has $6$ $6$ Complex zeros in $3$ $3$ conjugate pairs. That means that in theory it could be factored into $3$ $3$ quadratic factors with Real coefficients, but as far as I can tell the coefficients of those factors are not expressible in terms of $n$ $n$ th roots and other ordinary arithmetic operations. That is, they are not determinable by practical algebraic means. It is possible to find numeric approximations using Newton Raphson, Durand-Kerner or other similar numeric methods.

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How do you factor $13 {(x^{6} + 1)}^{4} (18 x^{5}) {(9 x + 2)}^{3} + 9 {(9 x + 2)}^{2} (9) {(x^{6} + 1)}^{5}$ $13(x^6+ 1)^4(18x^5)(9x + 2)^3 + 9(9x + 2)^2(9)(x^6 + 1)^5$ ?

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Explanation:

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How do you factor $13 {(x^{6} + 1)}^{4} (18 x^{5}) {(9 x + 2)}^{3} + 9 {(9 x + 2)}^{2} (9) {(x^{6} + 1)}^{5}$ $13(x^6+ 1)^4(18x^5)(9x + 2)^3 + 9(9x + 2)^2(9)(x^6 + 1)^5$ ?