$G$ is a group and $H$ is a subgroup of $G$. Prove that $C_G(H)<N_G(H)$.
Missed the discussion on normalizer and centralizer. I just have the definitions: $$N_G(H)=\{g\in G\mid gHg^{-1}=H\}$$ $$C_G(H)=\{g\in G\mid gh=hg, \forall h\in H\}$$
$G$ is a group and $H$ is a subgroup of $G$. Prove that $C_G(H)<N_G(H)$.
Missed the discussion on normalizer and centralizer. I just have the definitions: $$N_G(H)=\{g\in G\mid gHg^{-1}=H\}$$ $$C_G(H)=\{g\in G\mid gh=hg, \forall h\in H\}$$
If $x\in C_G(H)$ then $xH=Hx$.
So $xHx^{-1}=H$.
Hence $x\in N_G(H)$.