Proving No Constructible Roots for x^(6) - x^(2) + 2 = 0

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The equation x6 - x2 + 2 = 0 has no constructible roots, as established through algebraic analysis. The discussion highlights the transformation of the original polynomial into y6 + 6y5 + 15y4 + 20y3 + 14y2 + 4y + 2 = 0 by substituting x = y + 1. It is concluded that the roots of this polynomial are not algebraic of order a power of 2, which confirms the absence of constructible roots.

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Homework Statement



prove that x^(6) - x^(2) +2 =0 has no constructible roots

Homework Equations



see above

The Attempt at a Solution



I have to divide the equation by x^(3) which would give me x^(3) - x^(-1) + 2x^(-2)= 0
I can't find a suitable substitution in terms of x which would change this into a proper cubic equation and see if it has rational roots.
 
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saadsarfraz said:
prove that x^(6) - x^(2) +2 =0 has no constructible roots

Typo? It has no real roots at all.
 
how do i show it then? by assuming x=p/q as a rational root and then going on from there?
 
ok i made the substitution x=y+1 and now I have this polynomial y^6 + 6y^5 + 15y^4 + 20y^3 + 14y^2 + 4y + 2 = 0, all i have to do is show that this has irrational roots but i just don't know how.
 
What precisely do you mean by "constructible"? In the version I'm familiar with, many complex numbers are constructible. (In particular, anything with constructible real and imaginary parts is constructible)
 
anything that can be drawn using a straight edge and a compass, the only problem i have is to show that the equation i have written has no rational roots.
 
saadsarfraz said:
ok i made the substitution x=y+1 and now I have this polynomial y^6 + 6y^5 + 15y^4 + 20y^3 + 14y^2 + 4y + 2 = 0, all i have to do is show that this has irrational roots but i just don't know how.

No, you have to use a cubic for the theorem to apply.

How about w=x^2?
 
Why would irrational roots tell you anything about constructible roots? Many irrational numbers, for example \sqrt{2}, are constructible.

It's hard to tell you how to proceed without know what fact, theorems, etc. you have to work with. If it were me, I would just use the fact that all constructible numbers are algebraic of order a power of 2. Then show that none of the roots of x^6- x^2+ 2= 0 (which is equivalent to y^3- y+ 2= 0 with y= x^2) are algebraic of order 2 or 0.
 

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