3.5 Proof of Fundamental Theorem of Galois Theory

In this section, we prove the fundamental theorem of Galois theory. Firstly we prove the following theorem.

Theorem

Let $F / K$ be a finite extension. Then TFAE:

$F / K$ is Galois;

$F / K$ is separable and normal;

$F$ is a splitting field of a separable polynomial $f (T) \in K [T]$ .

\begin{proof} i)→ii) Let $u \in F$ . Suppose $Irr (u, K) = f (T)$ factors as $\prod_{i = 1}^{n} (T - u_{i})$ in some $\overline{F} [T]$ . We aim to show $u_{i} \in F$ and $u_{i}$ are distinct. Now suppose (after reordering) $u_{1}, \dots, u_{m}$ are all the distinct $F$ -roots with $u_{1} = u$ and write $g (T) = \prod_{j = 1}^{m} (T - u_{j}) \in F [T]$ . Note that $Aut_{K} F$ acts on the set ${u_{1}, \dots, u_{m}}$ because given any $σ \in Aut_{K} F$ , $σ (g (T)) = \prod_{j = 1}^{m} (T - σ (u_{j})) = g (T)$ . Hence, $g (T) \in F^{Aut_{K} F} [T] = K [T]$ and so $g (T) = f (T)$ . Therefore, $u_{1}, \dots, u_{n}$ are all contained in $F$ and they are distinct.

ii)→iii) Since $F / K$ is normal, $F$ is a splitting field of some $f (T) \in K [T]$ . Each irreducible factor of $f (T)$ is the minimal polynomial of some $u \in F$ and so it is separable.

iii)→i) By ^m1looz, we need to find $[F : K]$ -many elements in $Aut_{K} F$ . By induction on $[F : K]$ . Pick any root $α$ of $f (T)$ and let $p (T) = Irr (α, K) ∣ f (T)$ .

We will construct elements in $Aut_{K} F$ using $K \subseteq K (α) \subseteq F$ . Let $p (T) = \prod_{i = 1}^{s} (T - α_{i})$ with $α = α_{1}$ . Recall that for any $1 ⩽ i ⩽ s$ we have $θ_{i} : K (α) ≃ K [T] / (p (T)) ≃ K (α_{i})$ . Then by ^28f933, $θ_{i}$ extends to $θ_{i} : F \to F$ , and these are distinct elements in $Aut_{K} F$ by $θ_{i} (α) = α_{i}$ .

Since $f (T)$ is separable over $K (α) [T]$ and $F$ is a splitting field of $f$ , we have $F / K (α)$ is Galois by induction hypothesis. By ^m1looz $Aut_{K (α)} F$ has exactly $n / s$ elements, denoted as ${β_{1}, \dots, β_{n / s}}$ . It is easy to show $θ_{i} β_{j}$ are distinct elements in $Aut_{K} F$ . Otherwise, suppose $Q_{i} β_{j} = Q_{a} β_{b}$ , then $Q_{i} (α) = Q_{a} (α)$ and $i = a$ . Thus $j = b$ .

Now we finish the proof by induction. \end{proof}

Corollary

If $F / K$ is Galois and $F \supseteq E \supseteq K$ , then $F / E$ is Galois.

\begin{proof} By ^232bdc ii). \end{proof}

Now we are ready to show the fundamental theorem of Galois theory.

For any $K \subseteq E \subseteq F$ , $F / E$ is also Galois and $E / K$ is Galois iff $E^{'}$ is a normal subgroup. In this case, $Gal (E / K) = Gal (F / K) / E^{'} = Gal (F / K) / Gal (F / E)$ .
Link to original

\begin{proof} Step 0. Show the bijection. That is:

$E \mapsto E^{'} \mapsto (E^{'})^{'} = E^{''}$ , aiming to show $E^{''} = E$ ;
$H \mapsto H^{'} \mapsto H^{''}$ , aiming to show $H^{''} = H$ .

Note that $E^{''} = F^{E^{'}} = F^{Aut_{E} F} = E$ because $F / E$ is Galois. Also, note that $H^{''} = Aut_{H^{'}} F = Aut_{F^{H}} F$ and $H ⩽ H^{''}$ . By ^l2077i, $F / F^{H}$ is Galois and $[F : F^{H}] = ∣ Gal (F / F^{H}) ∣ = ∣ H^{''} ∣$ by ^m1looz and $[F : F^{H}] = ∣ H ∣$ by ^ehefrs. Hence, $∣ H ∣ = ∣ H^{''} ∣$ and so $H = H^{''}$ . Now we finish the proof.

Step 1. i) is easy to show by

[E_{2} : E_{1}] = \frac{[ F : E _{1} ]}{[ F : E _{2} ]} = \frac{∣ Gal ( F / E _{1} ) ∣}{∣ Gal ( F / E _{2} ) ∣} = \frac{∣ E _{1}^{'} ∣}{∣ E _{2}^{'} ∣} .

Step 2. Show ii).

We first show the followings.

Definition

For $K \subseteq E \subseteq F$ , we say $E$ is stable if for any $σ \in Aut_{K} F$ , $σ (E) \subseteq E$ .

Remark. If above holds, then $σ^{- 1} (E) \subseteq E$ and $E \subseteq σ (E)$ . Thus $σ (E) = E$ . Furthermore, it implies that $σ ∣_{E} \in Aut_{K} E$ .

Lemma

Let $F / K$ be any algebraic extension.

Let $F \supseteq E \supseteq K$ with $E$ stable. Then $E^{'} = Aut_{E} F < Aut_{K} F$ is normal.

If $H < Aut_{K} F$ is normal, then $H^{'} = F^{H}$ is stable.

\begin{proof} i) Let $τ \in E^{'}$ , and let $σ \in Aut_{K} F$ . It suffices to show $σ^{- 1} τ σ \in Aut_{E} F$ . Let $e \in E$ . Then $σ^{- 1} τ σ (e) = e$ as $σ (e) \in E$ .

ii) Let $σ \in Aut_{K} F$ . We want to show $σ (u) \in H^{'}$ for all $u \in H^{'}$ . That is, for any $h \in H$ , $h (σ (u)) = σ (u)$ for all $u \in H^{'}$ . Then $(σ^{- 1} hσ) (u) = u$ by $σ^{- 1} hσ \in H$ and we finish the proof. \end{proof}

Lemma

Let $K \subseteq E \subseteq F$ , $F / K$ is Galois and $E$ is stable. Then $E / K$ is Galois.

\begin{proof} Note that $E / K$ is Galois iff $E^{Aut_{K} E} = K$ iff $E^{Aut_{K} E} \subseteq K$ iff for any $u \in E ∖ K$ there exists $σ \in Aut_{K} E$ such that $σ (u) \neq = u$ . Now we construct $σ$ for each given $u$ .

Since $F / K$ is Galois, for this $u \in F ∖ K$ , there exists $σ \in Aut_{K} F$ such that $σ (u) \neq = u$ . Since $E$ is stable, $σ ∣_{E} \in Aut_{K} E$ and it is what we desire. \end{proof}

Lemma

Let $K \subseteq E \subseteq F$ be a finite extension. Suppose $E / K$ is Galois, then $E$ is stable.

\begin{proof} For any given $u \in E$ , we aim to show $σ (u) \in E$ for all $σ \in Aut_{K} F$ . Let $Irr (u, K) = \prod_{i = 1}^{n} (T - u_{i})$ with $u_{i} \in E$ and $u_{1} = u$ by $E / K$ Galois and ^232bdc. Then $σ (u) = u_{j}$ for some $1 ⩽ j ⩽ n$ and so $σ (u) \in E$ . Therefore, $E$ is stable. \end{proof}

summary of lemmas above

Suppose $K \subseteq E \subseteq F$ is a finite extension and $F / K$ is Galois. Then TFAE:

$E / K$ is Galois;

$Aut_{E} F ⊲ Aut_{K} F$ ;

$E$ is stable.

Now we get back to here and continue to prove ii) of the fundamental theorem of Galois theory.

By ^049cad, it remains to show $Gal (E / K) = Gal (F / K) / E^{'} = Gal (F / K) / Gal (F / E)$ . Since $E$ is stable, there is a map

α : Aut_{K} F \to Aut_{K} E, σ \mapsto σ ∣_{E}

which is a group homomorphism with $ker α = Aut_{E} F$ . Thus there is an embedding $Aut_{K} F / Aut_{E} F ↪ Aut_{K} E$ . But this is bijective because

∣ LHS ∣ = \frac{[ F : K ]}{[ F : E ]} = [E : K] = ∣ RHS ∣.

Now we finish the proof. \end{proof}

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3.5 Proof of Fundamental Theorem of Galois Theory

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