Dummit And Foote Solutions Chapter 4 Overleaf High Quality

\title\textbfDummit \& Foote \textitAbstract Algebra \\ Chapter 4 Solutions \authorYour Name \date\today

\subsection*Exercise 4.8.3 \textitShow that $\Inn(G) \cong G/Z(G)$.

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\subsection*Exercise 4.4.7 \textitShow that $\Aut(\Z/8\Z) \cong \Z/2\Z \times \Z/2\Z$. Dummit And Foote Solutions Chapter 4 Overleaf High Quality

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\beginsolution Define $\phi: G \to \Aut(G)$ by $\phi(g) = \sigma_g$ where $\sigma_g(x) = gxg^-1$. The image is $\Inn(G)$. Kernel: $\phi(g) = \textid_G$ iff $gxg^-1=x$ for all $x\in G$ iff $g \in Z(G)$. By the first isomorphism theorem, \[ G / Z(G) \cong \Inn(G). \] \endsolution

\section*Chapter 4: Cyclic Groups and Properties of Subgroups \addcontentslinetocsectionChapter 4: Cyclic Groups The image is $\Inn(G)$

\subsection*Exercise 4.3.12 \textitProve that if $H$ is the unique subgroup of a finite group $G$ of order $n$, then $H$ is normal in $G$.

\beginsolution We know $\Aut(\Z/n\Z) \cong (\Z/n\Z)^\times$, the group of units modulo $n$. For $n=8$, \[ (\Z/8\Z)^\times = \1,3,5,7\. \] This group has order 4 and each non-identity element has order 2: \beginalign* 3^2 &= 9 \equiv 1 \pmod8,\\ 5^2 &= 25 \equiv 1 \pmod8,\\ 7^2 &= 49 \equiv 1 \pmod8. \endalign* The only group of order 4 with all non-identity elements of order 2 is $\Z/2\Z \times \Z/2\Z$ (Klein four). Hence $\Aut(\Z/8\Z) \cong \Z/2\Z \times \Z/2\Z$. \endsolution

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\subsection*Exercise 4.2.6 \textitLet $G$ be a group and let $H$ be a subgroup of $G$. Prove that $C_G(H) \le N_G(H)$.

\beginsolution Let $G = \langle g \rangle$, $|G|=n$. For $d \mid n$, write $n = dk$. Then $\langle g^k \rangle$ has order $d$. Uniqueness: if $H \le G$, $|H|=d$, then $H = \langle g^m \rangle$ where $g^m$ has order $d$, so $n / \gcd(n,m) = d$, implying $\gcd(n,m) = k$. But $\langle g^m \rangle = \langle g^\gcd(n,m) \rangle = \langle g^k \rangle$. So unique. \endsolution then $G$ is abelian.

\subsection*Exercise 4.7.14 \textitProve that if $G$ is a group of order $p^2$ where $p$ is prime, then $G$ is abelian.