Center is local powering-invariant: Difference between revisions

This article gives the statement, and possibly proof, of the fact that for any group, the subgroup obtained by applying a given subgroup-defining function (i.e., center) always satisfies a particular subgroup property (i.e., local powering-invariant subgroup)}
View subgroup property satisfactions for subgroup-defining functions

${\displaystyle |}$

View subgroup property dissatisfactions for subgroup-defining functions

Statement

The center of a group is a local powering-invariant subgroup. Explicitly, suppose ${\displaystyle G}$ is a group and ${\displaystyle Z}$ is the center. Suppose ${\displaystyle z\in Z}$ and ${\displaystyle n}$ is a natural number such that there is a unique ${\displaystyle x\in G}$ satisfying ${\displaystyle x^n=z}$. Then, ${\displaystyle x\in Z}$.

Related facts

Generalizations

• Fixed-point subgroup of a subgroup of the automorphism group implies local powering-invariant

Similar facts

• Upper central series members are local powering-invariant in nilpotent group

Analogues in other algebraic structures

• Center is local powering-invariant in Lie ring

Opposite facts

• Center not is quotient-local powering-invariant
• Derived subgroup not is local powering-invariant
• Second center not is local powering-invariant in solvable group
• Characteristic not implies powering-invariant

Facts used

1. Group acts as automorphisms by conjugation

Proof

Given: Group ${\displaystyle G}$ with center ${\displaystyle Z}$. Element ${\displaystyle z\in Z}$ and natural number ${\displaystyle n}$ such that there exists a unique ${\displaystyle x\in G}$ satisfying ${\displaystyle x^n=z}$.

To prove: ${\displaystyle x\in Z}$. In other words, ${\displaystyle yx{y}^{-1}=x}$ for all ${\displaystyle y\in G}$.

Proof: We have by Fact (1) that:

${\displaystyle (yx{y}^{-1}{)}^n=y{x}^n{y}^{-1}}$

Simplifying further, we get that:

${\displaystyle (yx{y}^{-1}{)}^n=y{x}^n{y}^{-1}=yz{y}^{-1}=z}$

where we use that ${\displaystyle x^n=z\in Z}$. Since ${\displaystyle x}$ is the unique element of ${\displaystyle G}$ whose <mah>n^{th}</math> power is ${\displaystyle z}$, the above forces that ${\displaystyle yx{y}^{-1}=x}$.