Conjugacy Action on Identity
Theorem
Let $G$ be a group whose identity is $e$.
For the conjugacy action:
- $\order {\Orb e} = 1$
and thus:
- $\Stab e = G$
Proof
| \(\ds g * e\) | \(=\) | \(\ds g e g^{-1}\) | ||||||||||||
| \(\ds \) | \(=\) | \(\ds g g^{-1}\) | ||||||||||||
| \(\ds \) | \(=\) | \(\ds e\) |
So the only conjugate of $e$ is $e$ itself.
Thus:
- $\Orb e = \set e$
and so:
- $\order {\Orb e} = 1$
From the Orbit-Stabilizer Theorem, it follows immediately that:
- $\Stab e = G$
$\blacksquare$
Sources
- 1965: J.A. Green: Sets and Groups ... (previous) ... (next): $\S 5.5$. Groups acting on sets: Example $103$