Talk:Galois theory: Difference between revisions

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imported>Ragnar Schroder
imported>Ragnar Schroder
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As an example,  let us look at the second-degree polynomial <math>x^2-5</math>, with the coefficients {-5,0,1} viewed as elements of Q.  
As an example,  let us look at the second-degree polynomial <math>x^2-5</math>, with the coefficients {-5,0,1} viewed as elements of Q.  


This polynomial has no roots in Q.  However, from the [[fundamental theorem of algebra]] we know that any it has exacly two roots in C, and can be written as the product of two first-degree polynomials there - i.e. <math>x^2-5 = (x-r_0)(x-r_1), r_0, r_1 \in  C</math>.
This polynomial has no roots in Q.  However, from the [[fundamental theorem of algebra]] we know that it has exacly two roots in C, and can be written as the product of two first-degree polynomials there - i.e. <math>x^2-5 = (x-r_0)(x-r_1), r_0, r_1 \in  C</math>. From direct inspection of the polynomial we also realize that <math>r_0 = -r_1</math>.
 
We now look for the smallest subfield of C that contains Q and both <math>r_0</math> and <math>-r_0</math>, which is { <math>  a+b r_0, a,b \in Q  </math>  }.  Since <math>r_0^2 = 5 \in Q</math>,  all products and sums are well defined.
 


We now look for the smallest subfield of C that contains Q and both <math>r_0</math> and <math>r_1</math>.





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The following is just a scratch to work out the 1st non-stub version of the article


Galois theory is an area of mathematical study that originated with Evariste Galois around 1830, as part of an effort to understand the relationships between the roots of polynomials, in particular why there are no simple formulas for extracting the roots of the general polynomial of fifth (or higher) degree.


Introduction

Galois expressed his theory in terms of polynomials and complex numbers, today Galois theory is usually formulated using general field theory.

Key concepts are field extensions and groups, which should be thoroughly understood before Galois theory can be properly studied.

The core idea behind Galois theory is that given a polynomial with coefficients in a field K (typically the rational numbers), there exists

  • a smallest possible field L that contains K (or a field isomorphic to K) as a subfield and also all the roots of . This field is known as the extension of K by the roots of .
  • a group containing all automorphisms in L that leave the elements in K untouched - the Galois group of the polynomial .

Providing certain technicalities are fullfilled, the structure of this group contains information about the nature of the roots, and whether the equation has solutions expressible as a finite formula involving only ordinary arithmetical operations (addition, subtraction, multiplication, division and rational powers) on the coefficients.


The Galois group of a polynomial - a basic example

As an example, let us look at the second-degree polynomial , with the coefficients {-5,0,1} viewed as elements of Q.

This polynomial has no roots in Q. However, from the fundamental theorem of algebra we know that it has exacly two roots in C, and can be written as the product of two first-degree polynomials there - i.e. . From direct inspection of the polynomial we also realize that .

We now look for the smallest subfield of C that contains Q and both and , which is { }. Since , all products and sums are well defined.



blabber on ...


However, we may create an extension field L containing two elements such that . By the fundamental theorem of algebra this is always possible - there exists a subfield L of C such that

As an example, the second-degree polynomial - when the coefficients {0,1,5} are viewed as elements of Q - turns out to have the Galois group .

From the subgroup structure of - the only proper subgroup is the trivial group - we may conclude that the chain of extension fields from Q to the smallet extension field of Q such that the polynomial splits is trivial - no intermediate extension fields exist.

Finding the Galois group of a polynomial is in general a tedious process, in this example it was easy, since the group had to be contained in .


Looking again at the polynomial , one may wonder exactly what it's "Galois group" is, and how to find it.

... Mention something about the Fundamental theorem of algebra, which implies that there is a subfield in C such that can be split into linear factors ...

...Mention , where n is the degree of the polynomial ...

Basic concepts/glossary

  • Polynomial over a field K: An expression of the form , with .
  • Root of a polynomial : a number r such that
  • A splitting field for a polynomial : A field which contains the original field K as a subfield, and also contains all the roots of .

Summary of the theory

Given a polynomial with coefficients in some field K, it may be the case that the equation has no solutions in K. In that case, is said to be irreducible in K.

Anyway, if K is a subfield of C, we are guaranteed by the fundamental theorem of algebra that there exists a subfield of C containing K and all the roots.

...blabber about field of characteristic <> 0 ...



Field extensions

Any field K can be "extended" by including one or more "foreign" elements, f.i. the field Q can be extended by including sqr(2). The resulting field is the subset of R described by a+b sqrt(2), a,b in Q.

Similarly, if r1, r2, ... rn are roots of a polynomial α , a lattice of extension fields may be constructed. ...

Algebraic extension vs transcendental...

The order of an extension ...

Normal extensions and splitting fields ...

Given a polynomial with coefficients in a field K, there exists a field M ⊇ K - known as a splitting field of - which contains all the roots of .


The Galois correspondence

The correspondence between the Galois group subgroup structure and the field extension lattice ...

Caveat - separability - only relevant with non-zero characteristic fields.

Soluble groups ... Why neither the quintic nor its friend S5 are "soluble". Why 60 degree angles won't let themselves be "trisected". Why this was a triumph for Galois theory, 2000+ year old riddles solved.



How much to rely on an extra "Field extensions" article?
Ragnar Schroder 05:38, 12 December 2007 (CST)