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Math4302 Modern Algebra (Lecture 4)
Groups
Group Isomorphism
Definition of isomorphism
Let (G_1,*_1) and (G_2,*_2) be two groups. Then (G_1,*_1) and (G_2,*_2) are isomorphic if there exists a bijection f:G_1\to G_2 such that for all x,y\in G_1, f(x*y)=f(x)*f(y). We say that (G_1,*_1) is isomorphic to (G_2,*_2).
(G_1,*_1)\simeq (G_2,*_2)
Example and non-example for isomorphism
As we have seen in class, (\mathbb{Z}_4,+) and (\{1,-1,i,-i\},*) are isomorphic.
(\mathbb{Z},+) and (\mathbb{R},+) are not isomorphic. There is no bijection from (\mathbb{Z},+) to (\mathbb{R},+).
Let M_2(\mathbb{R}) denotes the set of 2\times 2 matrices with addition. Then (\mathbb{R}^4,+) and (M_2(\mathbb{R}),+) are isomorphic.
(\mathbb{Z},+) and (\mathbb{Q},+) are not isomorphic.
- There exists bijection mapping
\mathbb{Z}\to \mathbb{Q}, but
Suppose we have f(1)=a\in \mathbb{Q}, so there exists unique element f(x), x\in \mathbb{Z} such that f(x)=\frac{a}{2}, if such function f is isomorphic (preserves addition), then f(2x)=f(x)+f(x)=a. So 2x=1, such x does not exist in \mathbb{Z}.
Isomorphism of Groups defines an equivalence relation
Isomorphism of groups is an equivalence relation.
- Reflexive:
(G_1,*_1)\simeq (G_1,*_1) - Symmetric:
(G_1,*_1)\simeq (G_2,*_2)\implies (G_2,*_2)\simeq (G_1,*_1) - Transitive:
(G_1,*_1)\simeq (G_2,*_2)\land (G_2,*_2)\simeq (G_3,*_3)\implies (G_1,*_1)\simeq (G_3,*_3)
Easy to prove using bijective maps and definition of isomorphism.
Some fun facts
For any prime number, there is only one group of order p for any p\in\mathbb{N}.
Example of non-abelian finite groups
Permutations (Symmetric groups) S_n.
Let A be a set of n elements, a permutation of A is a bijection from A to A.
\sigma: A\to A
Let A be a finite set, A=\{1,2,...,n\}. Then there are n! permutations of A.
We can denote each permutation on A=\{1,2,...,n\} by
\sigma=\begin{pmatrix}
1&2&...&n\\
\sigma(1)&\sigma(2)&...&\sigma(n)
\end{pmatrix}
Symmetric Groups
The set of permutation on a set A form a group under function composition.
- Identity: $\sigma_{id}=\begin{pmatrix} 1&2&...&n\ 1&2&...&n \end{pmatrix}$
- Inversion: If
f: A\to Ais a bijection, thenf^{-1}: A\to Ais a bijection and is the inverse off. - Associativity:
(\sigma_1*\sigma_2)*\sigma_3=\sigma_1*(\sigma_2*\sigma_3)
|S_n|=n!
When n=1,2, the group is abelian.
but when n=3, we have some \sigma,\tau\in S_3 such that \sigma*\tau\neq \tau*\sigma.
Let $\sigma=\begin{pmatrix} 1&2&3\ 2&3&1 \end{pmatrix}$ and $\tau=\begin{pmatrix} 1&2&3\ 3&2&1\ \end{pmatrix}$, then $\sigma*\tau=\begin{pmatrix} 1&2&3\ 1&3&2 \end{pmatrix}$ and $\tau*\sigma=\begin{pmatrix} 1&2&3\ 2&1&3 \end{pmatrix}$.
Therefore \tau*\sigma\neq \sigma*\tau.
Then we have a group of order 3!=6 that is not abelian.
For any n\geq 3, S_n is not abelian. (Proof by induction, keep \sigma,\tau extra entries being the same$).
Another notation for permutations is using the cycle.
Suppose we have $\sigma=\begin{pmatrix}
1&2&3&4\
2&3&1&4\
\end{pmatrix}$, then we have the cycle (1,2,3)(4).
this means we send 1\to 2\to 3\to 1 and 4\to 4.
Some case we ignore (4) and just write (1,2,3).
Tip
From now on, we use
Gto denote(G,*)andabto denotea*bto save chalks.If
Gis abelian, we use+to denote the group operations
- Instead of
a*borab, we writea+b.- Instead of
a^{-1}, we write-a.- Instead of
e, we write0.- Instead of
a^{n}, we writena.