1.5 Sylow Theorem

Motivation. Let $G$ be a finite abelian group. If $m ∣ n$ , then there exists some subgroup $H < G$ such that $∣ H ∣ = m$ .

Lemma

Let $H$ be a group with $∣ H ∣ = p^{n}$ . Suppose $H$ acts on finite set $S$ . Let $S_{0} = {x \in S : h x = x, \forall h \in H} = S^{H} =$ fixed points. Then $∣ S_{0} ∣ \equiv ∣ S ∣ mod p$ .

\begin{proof} Note that $∣ S ∣ = ∣ S_{0} ∣ + \sum_{s \in / S_{0}} ∣ \overline{s} ∣$ . Since $∣ \overline{s} ∣∣ H_{s} ∣ = ∣ H ∣$ , then $∣ \overline{s} ∣ \equiv 0 mod p$ . It follows that $∣ S_{0} ∣ \equiv ∣ S ∣ mod p$ . \end{proof}

Cauchy

Let $G$ be a finite group and $p ∣ ∣ G ∣$ . Then there exists $a \in G$ such that $∣ a ∣ = p$ .

\begin{proof} Let $S = {(a_{1}, \dots, a_{p}) : a_{i} \in G, a_{1} \dots a_{p} = 1}$ . Then $∣ S ∣ = n^{p - 1}$ and $p ∣ ∣ S ∣$ . Consider $Z / p Z ↷ S$ such that $k \cdot (a_{1}, \dots, a_{p}) = (a_{k 1}, \dots, a_{k p})$ . Also $S_{0} = {(a, \dots, a) : a \in G}$ is divisible by $p$ by ^acf430. Since $(1, \dots, 1) \in S_{0}$ , then $S_{0}$ is non-empty and so it has a non-trivial element $(a, \dots, a)$ . Therefore, we have that $a^{p} = 1$ and so $∣ a ∣ = p$ . \end{proof}

Definition

Let $G$ be a group.

If $\forall x \in G$ , $∣ x ∣ = p^{a}$ , then we say $G$ is a $p$ -group.

Let $H < G$ . If $H$ is a $p$ -group, then $H$ is called a $p$ -subgroup.

Corollary

Let $∣ G ∣ < \infty$ . Then $G$ is a $p$ -group iff $∣ G ∣ = p^{n}$ for some $n$ .

\begin{proof} Assume that $∣ G ∣ = p^{n}$ . Then by Lagrange theorem $G$ is a $p$ -group. Conversely, assume that $G$ is a $p$ -group. If there is a $q \neq = p$ such that $q ∣ ∣ G ∣$ , then by ^9af89b there is a $a \in G$ with $∣ a ∣ = q$ , contradiction. \end{proof}

Corollary

Let $G$ be a finite $p$ -group. Then its center $∣ C (G) ∣ ⩾ p$ .

Lemma

Let $G$ be a finite group, and let $H$ be a $p$ -subgroup. Then $[N_{G} (H) : H] \equiv [G : H] mod p$ .

\begin{proof} Let $S = {x H : x \in G}$ . Consider $H$ acts on $S$ by $h (x H) = h x H$ . Consider $S_{0}$ . Note that $h x H = x H$ iff $x^{- 1} h x \in H$ for all $h \in H$ iff $x \in N_{G} (H)$ . Therefore, $∣ S_{0} ∣ = [N_{G} (H) : H]$ . By ^acf430, $∣ S ∣ \equiv ∣ S_{0} ∣ mod p$ . \end{proof}

Corollary

Let $H < G$ be a $p$ -group. If $p ∣ [G : H]$ , then $N_{G} (H) ⊋ H$ .

\begin{proof} By ^e0a58f. \end{proof}

First Sylow theorem

Let $G$ be a finite group with $∣ G ∣ = p^{n} \cdot m$ , $(p, m) = 1$ . Then $G$ contains a subgroup of order $p^{i}$ for each $1 ⩽ i ⩽ n$ . And each subgroup of order $p^{i}$ is normal in some subgroup of order $p^{i + 1}$ .

\begin{proof} By induction. When $i = 1$ , by ^9af89b. Assume that there exists $H < G$ such that $∣ H ∣ = p^{i}$ with $1 ⩽ i < n$ . It suffices to find a subgroup with order $p^{i + 1}$ . Since $p ∣ [G : H]$ , then $p ∣ ∣ N_{G} (H) / H ∣$ by ^e0a58f. By ^9af89b, $N_{G} (H) / H$ has a subgroup of order $p$ , which is of form $H_{1} / H$ with $H ⊲ H_{1} < N_{G} (H)$ . Then $∣ H_{1} ∣ = p^{i + 1}$ and $H ⊲ H_{1}$ . Now we finish the proof. \end{proof}

Second Sylow theorem

Let $∣ G ∣ = p^{n} \cdot m$ and $H < G$ a $p$ -group. Let $P < G$ be a Sylow $p$ -subgroup. Then there exists $x \in G$ such that $H < x P x^{- 1}$ . In particular, any two Sylow $p$ -subgroups are conjugate to each other.

\begin{proof} Let $S = {g P : g \in G}$ . Note that $∣ S ∣ = [G : P]$ and $p \neq ∣ ∣ S ∣$ . Consider $H$ acts on $S$ by left translation. Then $g P \in S_{0}$ iff $h g P = g P$ for all $h \in H$ iff $g^{- 1} h g \in P$ for all $h \in H$ iff $g^{- 1} H g < P$ . Since $∣ S_{0} ∣ \equiv ∣ S ∣ mod S$ , then $∣ S_{0} ∣$ is non-empty. Now we finish the proof. \end{proof}

Third Sylow theorem

Let $G$ be a finite group, and let $n_{p} = \mbox n u mb ero f S y l o w p \mbox - s u b g ro u p s$ . Then $n_{p} ∣ ∣ G ∣$ and $n_{p} = k p + 1$ for some $k ⩾ 0$ .

\begin{proof} Let $P$ be a fixed Sylow $p$ -subgroup. Let $S = {\mbox a llS y l o w p \mbox - s u b g ro u p s}$ . By ^0acdfe, $S = {g^{- 1} P g : g \in G}$ . Note that $G ↷ S$ by conjugation. It follows that $S = ∣ \overline{P} ∣ = [G : N_{G} (P)]$ . By Lagrange theorem, $n_{p} ∣ ∣ G ∣$ . Consider $P$ acts on $S$ . Then $Q \in S_{0}$ iff $x Q x^{- 1} = Q$ for all $x \in P$ iff $P ⩽ N_{G} (Q)$ . So $P, Q$ are two distinct Sylow $p$ -subgroups of $N_{G} (Q)$ and so $P = Q$ . Therefore, $S_{0} = {P}$ and $∣ S ∣ \equiv ∣ S_{0} ∣ = 1 mod p$ by ^acf430. \end{proof}

Theorem

Let $G$ be a finite group. If $P < G$ is a Sylow $p$ -subgroup. Then $N_{G} (N_{G} (P)) = N_{G} (P)$ .

\begin{proof} Firstly, note that $N_{G} (N_{G} (P)) ⩾ N_{G} (P)$ . It suffices to show $N_{G} (P) ⩾ N_{G} (N_{G} (P))$ . Since $P$ is a Sylow $p$ -subgroup of $N_{G} (P)$ , then $P$ is the unique Sylow $p$ -subgroup of $N_{G} (P)$ . Let $x \in N_{G} (N_{G} (P))$ . Then $N_{G} (P)^{x} = N_{G} (P)$ and $P^{x} \subseteq N_{G} (P)$ . Therefore, $P^{x} = P$ and $x \in N_{G} (P)$ . \end{proof}

Remark. $P < G$ is a Sylow $p$ -subgroup. Suppose $P ⊲ Q ⊲ R$ , then $P ⊲ R$ .

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1.5 Sylow Theorem

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