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From Galois to NOG

Evariste Galois (1811-1832) must rank pretty high on the all-time list of moving last words. Galois was mortally wounded in a duel he fought with Perscheux d\’Herbinville on May 30th 1832, the reason for the duel not being clear but certainly linked to a girl called Stephanie, whose name appears several times as a marginal note in Galois\’ manuscripts (see illustration). When he died in the arms of his younger brother Alfred he reportedly said “Ne pleure pas, j\’ai besoin de tout mon courage pour mourir ‚àö‚Ć 20 ans”. In this series I\’ll start with a pretty concrete problem in Galois theory and explain its elegant solution by Aidan Schofield and Michel Van den Bergh. Next, I\’ll rephrase the problem in non-commutative geometry lingo, generalise it to absurd levels and finally I\’ll introduce a coalgebra (yes, a co-algebra…) that explains it all. But, it will take some time to get there. Start with your favourite basefield $k$ of characteristic zero (take $k = \mathbb{Q}$ if you have no strong preference of your own). Take three elements $a,b,c$ none of which squares, then what conditions (if any) must be imposed on $a,b,c$ and $n \in \mathbb{N}$ to construct a central simple algebra $\Sigma$ of dimension $n^2$ over the function field of an algebraic $k$-variety such that the three quadratic fieldextensions $k\sqrt{a}, k\sqrt{b}$ and $k\sqrt{c}$ embed into $\Sigma$? Aidan and Michel show in \’Division algebra coproducts of index $n$\’ (Trans. Amer. Math. Soc. 341 (1994), 505-517) that the only condition needed is that $n$ is an even number. In fact, they work a lot harder to prove that one can even take $\Sigma$ to be a division algebra. They start with the algebra free product $A = k\sqrt{a} \ast k\sqrt{b} \ast k\sqrt{c}$ which is a pretty monstrous algebra. Take three letters $x,y,z$ and consider all non-commutative words in $x,y$ and $z$ without repetition (that is, no two consecutive $x,y$ or $z$\’s). These words form a $k$-basis for $A$ and the multiplication is induced by concatenation of words subject to the simplifying relations $x.x=a,y.y=b$ and $z.z=c$. Next, they look at the affine $k$-varieties $\wis{rep}n~A$ of $n$-dimensional $k$-representations of $A$ and their irreducible components. In the parlance of $\wis{geometry@n}$, these irreducible components correspond to the minimal primes of the level $n$-approximation algebra $\intn~A$. Aidan and Michel worry a bit about reducedness of these components but nowadays we know that $A$ is an example of a non-commutative manifold (a la Cuntz-Quillen or Kontsevich-Rosenberg) and hence all representation varieties $\wis{rep}n~A$ are smooth varieties (whence reduced) though they may have several connected components. To determine the number of irreducible (which in thi scase, is the same as connected) components they use _Galois descent, that is, they consider the algebra $A \otimesk \overline{k}$ where $\overline{k}$ is the algebraic closure of $k$. The algebra $A \otimesk \overline{k}$ is the group-algebra of the group free product $\mathbb{Z}/2\mathbb{Z} \ast \mathbb{Z}/2\mathbb{Z} \ast \mathbb{Z}/2\mathbb{Z}$. (to be continued…) A digression : I cannot resist the temptation to mention the tetrahedral snake problem in relation to such groups. If one would have started with $4$ quadratic fieldextensions one would get the free product $G = \mathbb{Z}/2\mathbb{Z} \ast \mathbb{Z}/2\mathbb{Z} \ast \mathbb{Z}/2\mathbb{Z} \ast \mathbb{Z}/2\mathbb{Z}$. Take a supply of tetrahedra and glue them together along common faces so that any tertrahedron is glued to maximum two others. In this way one forms a tetrahedral-snake and the problem asks whether it is possible to make such a snake having the property that the orientation of the \’tail-tetrahedron\’ in $\mathbb{R}^3$ is exactly the same as the orientation of the \’head-tetrahedron\’. This is not possible and the proof of it uses the fact that there are no non-trivial relations between the four generators $x,y,z,u$ of $\mathbb{Z}/2\mathbb{Z} \ast \mathbb{Z}/2\mathbb{Z} \ast \mathbb{Z}/2\mathbb{Z} \ast \mathbb{Z}/2\mathbb{Z}$ which correspond to reflections wrt. a face of the tetrahedron (in fact, there are no relations between these reflections other than each has order two, so the subgroup generated by these four reflections is the group $G$). More details can be found in Stan Wagon\’s excellent book The Banach-tarski paradox, p.68-71.