Normal subgroup equals kernel of homomorphism: Difference between revisions

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This article gives the statement, and possibly proof, of a basic fact in group theory.
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This article gives a proof/explanation of the equivalence of multiple definitions for the term normal subgroup
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Statement

Verbal statement

A subgroup of a group occurs as the Kernel (?) of a group homomorphism if and only if it is normal.

Symbolic statement

A subgroup $N$ of a group $G$ occurs as the kernel of a group homomorphism if and only if, for every $g$ in $G$ , $g N g^{- 1} \subseteq N$ .

Definitions used

Kernel of a group homomorphism

A map $φ : G \to H$ is a homomorphism of groups if

$φ (g h) = φ (g) φ (h)$ for all $g, h$ in $G$
$φ (e) = e$
$φ (g^{- 1}) = (φ (g))^{- 1}$

The kernel of $φ$ is defined as the inverse image of the identity element under $ϕ$ .

Normal subgroup

For the purpose of this statement, we use the following definition of normality: a subgroup $H$ is normal in a group $G$ if $H$ contains each of its conjugate subgroups, that is, $g N g^{- 1} \subseteq N$ for every $g$ in $G$ .

Related facts

Closely related to this are the isomorphism theorems.

Proof

Kernel of homomorphism implies normal subgroup

Let $φ : G \to H$ be a homomorphism of groups. We first prove that the kernel (which we call $N$ ) of $ϕ$ is a subgroup:

Identity element: Since $φ (e) = e$ , $e$ is contained in $N$
Product: Suppose $a, b$ are in $N$ . Then $φ (a) = e$ and $φ (b) = e$ . Using the fact that $φ (a b) = φ (a) φ (b)$ , we conclude that $φ (a b) = e$ . Hence $a b$ is also in $N$ .
Inverse: Suppose $a$ is in $N$ . Then $φ (a) = e$ . Using the fact that $φ (a^{- 1}) = φ (a)^{- 1}$ , we conclude that $φ (a^{- 1}) = e$ . Hence, $a^{- 1}$ is also in $N$ .

Now we need to prove that $N$ is normal. In other words, we must show that if $g$ is in $G$ and $n$ is in $N$ , then $g n g^{- 1}$ is in $N$ .

Since $n$ is in $N$ , $ϕ (n) = e$ .

Consider $φ (g n g^{- 1}) = φ (g) φ (n) φ (g^{- 1}) = φ (g) φ (g^{- 1}) = φ (g g^{- 1}) = φ (e) = e$ . Hence, $g n g^{- 1}$ must belong to $N$ .

Normal subgroup implies kernel of homomorphism

Let $N$ be a normal subgroup of a group $G$ . Then, $N$ occurs as the kernel of a group homomorphism. This group homomorphism is the quotient map $φ : G \to G / N$ , where $G / N$ is the set of cosets of $N$ in $G$ .

The map is defined as follows:

$φ (x) = x N$

Notice that the map is a group homomorphism if we equip the coset space $G / N$ with the following structure:

$(a N) (b N) = a b N$

This gives a well-defined group structure because, on account of $N$ being normal, the equivalence relation of being in the same coset of $N$ yields a congruence.

Explicitly:

The map is well-defined, because if $a^{'} = a n_{1}, b^{'} = b n_{2}$ for $n_{1}, n_{2} \in N$ , then $a^{'} b^{'} = a n_{1} b n_{2} = a b (b^{- 1} n_{1} b n_{2}) \in a b N$ (basically, we're using that $b N = N b$ ).
The image of the map can be thought of as a group because it satisfies associativity ( $((a N) (b N)) (c N) = (a N) ((b N) (c N))$ ), has an identity element ( $N$ itself), has inverses (the inverse of $a N$ is $a^{- 1} N$ )

Further information: quotient map

References

Textbook references

Abstract Algebra by David S. Dummit and Richard M. Foote, 10-digit ISBN 0471433349, 13-digit ISBN 978-0471433347, ^{More info}, Page 82, Proposition 7

@@ Line 7: / Line 7: @@
 ===Verbal statement===
-A [[subgroup]] of a [[group]] occurs as the [[fact about::kernel]] of a group [[fact about::homomorphism of groups|homomorphism]]if and only if it is [[fact about::normal subgroup|normal]].
+A [[subgroup]] of a [[group]] occurs as the [[fact about::kernel]] of a group [[fact about::homomorphism of groups|homomorphism]] if and only if it is [[fact about::normal subgroup|normal]].
 ===Symbolic statement===
@@ Line 44: / Line 44: @@
 * ''Identity element'': Since <math>\varphi(e) = e</math>, <math>e</math> is contained in <math>N</math>
 * ''Product'': Suppose <math>a, b</math> are in <math>N</math>. Then <math>\varphi(a) = e</math> and <math>\varphi(b) = e</math>. Using the fact that <math>\varphi(ab) = \varphi(a)\varphi(b)</math>, we conclude that <math>\varphi(ab) = e</math>. Hence <math>ab</math> is also in <math>N</math>.
-* '''Inverse''': Suppose <math>a</math> is in <math>N</math>. Then <math>\varphi(a) = e</math>. Using the fact that <math>\varphi(a^{-1} = \varphi(a)^{-1}</math>, we conclude that <math>\varphi(a^{-1}) = e</math>. Hence, <math>a^{-1}</math> is also in <math>N</math>.
+* '''Inverse''': Suppose <math>a</math> is in <math>N</math>. Then <math>\varphi(a) = e</math>. Using the fact that <math>\varphi(a^{-1}) = \varphi(a)^{-1}</math>, we conclude that <math>\varphi(a^{-1}) = e</math>. Hence, <math>a^{-1}</math> is also in <math>N</math>.
 Now we need to prove that <math>N</math> is [[normal subgroup|normal]]. In other words, we must show that if <math>g</math> is in <math>G</math> and <math>n</math> is in <math>N</math>, then <math>gng^{-1}</math> is in <math>N</math>.