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I can not solve the following two problems on Group Theory.

  1. A subgroup $H$ of a group $G$ has the property that $x^2 \in H$ for every $x\in G$. Prove that $H$ is normal in $G$ and $G/H$ is abelian.

  2. Let $G$ be a group of order 8 and $x$ be an element of $G$. Prove that $x^2$ is in the center of $G$.

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Please add the [homework] tag if it is homework. –  Srivatsan Sep 8 '11 at 3:50
    
For 1, recall that a subgroup is normal iff it is closed under conjugation by elements of $G$. Then take an $h \in H$ and try conjugating it by some $g \in G$. –  Oliver Sep 8 '11 at 3:57
    
For the second part of 1, I recommend temporarily ignoring quotient groups to prove that if every element of a group has order 2 then the group is abelian. –  Jonas Meyer Sep 8 '11 at 4:07
    
For the second part of (1) consider the following: let $aH$ be an arbitrary element of $G/H$ then $aH^2=aHaH=aaH=a^2H$ but $a\in G$ which implies that $aH^2=e$ and hence each element in $G/H$ has order 2. Then consider two elements $a,b\in G/H$ which has order 2. $(ab)^2=e$ clearly and $a^2b^2=ee=e$ so we can see that $abab=aabb$ which implies that $ba=ab$. –  Deven Ware Sep 8 '11 at 4:29
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1 Answer 1

up vote 7 down vote accepted
  1. If $H$ is normal, then the condition that $x^2\in H$ for all $x \in G$ means that $G/H$ is a group of exponent $2$ (every element satisfies $a^2 = 1$). It is a standard exercise that such a group is abelian (HINT: consider $(ab)^2$ and $a^2b^2$).

    So it is enough to show that if $x^2\in H$ for all $x\in G$, then $H$ is normal. Let $g\in G$, $h\in H$. We need to show that $ghg^{-1}\in H$. Since $ghgh = (gh)^2\in H$, then $ghgh = h'$ for some $h'\in H$, so $ghg = h'h^{-1}\in H$, hence $ghg^{-1} = (ghg)g^{-2}\in H$ (as both $ghg$ and $g^{-2} = (g^{-1})^2$ are in $H$). Therefore, for every $g\in G$ and $h\in H$, $ghg^{-1}\in H$, so $H$ is normal.

  2. Well, the heavy-handed way of doing is to note that the groups of order $8$ are $C_8$, $C_4\times C_2$, $C_2\times C_2\times C_2$, $Q_8$ (the quaternion group of order $8$), and $D_8$ (the dihedral group of order $8$), and all of them have the desired property. Somehow I suspect this is not the intended answer...

    Since $G$ is a $p$-group, its center is nontrivial. Consider $G/Z(G)$. It is a group of order $1$, $2$, or $4$. If it is of order $1$ or $2$, then for every $g\in G$ you have $g^2\in Z(G)$ (since $(gZ(G))^2$ is trivial in $G/Z(G)$). (In fact, it cannot be of order $2$, as noted below, but that doesn't matter here).

    If it is of order $4$, then it is either isomorphic to the Klein $4$-group $C_2\times C_2$, or to the cyclic group of order $4$. But $G/Z(G)$ cannot be nontrivial cyclic for any group $G$, so if $|G/Z(G)|$ is of order $4$, then it is isomorphic to $C_2\times C_2$ and hence of exponent $2$. Again, we conclude that $(gZ(G))^2 = Z(G)$ for every $g\in G$, proving that $x^2\in Z(G)$ for all $x\in G$.

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