Sufficiency of subgroup criterion: Difference between revisions

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 subgroup
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Statement

For a subset ${\displaystyle H}$ of a group ${\displaystyle G}$, the following are equivalent:

• ${\displaystyle H}$ is a subgroup, viz ${\displaystyle H}$ is closed under the binary operation of multiplication, the inverse map, and contains the identity element
• ${\displaystyle H}$ is a nonempty set closed under left quotient of elements (that is, for any ${\displaystyle a,b}$ in ${\displaystyle H}$, ${\displaystyle b^{-1}a}$ is also in ${\displaystyle H}$)
• ${\displaystyle H}$ is a nonempty set closed under right quotient of elements (that is, for any ${\displaystyle a,b}$ in ${\displaystyle H}$, ${\displaystyle a{b}^{-1}}$ is also in ${\displaystyle H}$)

Proof

We shall here prove the equivalence of the first two conditions. Equivalence of the first and third conditions follows by analogous reasoning.

First implies second

Clearly, if ${\displaystyle H}$ is a subgroup:

• ${\displaystyle H}$ is nonempty since ${\displaystyle H}$ contains the identity element
• Whenever ${\displaystyle a,b}$ are in ${\displaystyle H}$ so is ${\displaystyle b^{-1}}$ and hence ${\displaystyle b^{-1}a}$

Second implies first

Suppose ${\displaystyle H}$ is a nonempty subset closed under left quotient of elements. Then, pick an element ${\displaystyle a}$ from ${\displaystyle H}$.

• ${\displaystyle a^{-1}a}$ is contained in ${\displaystyle H}$, hence ${\displaystyle e}$ is in ${\displaystyle H}$
• Now that ${\displaystyle e}$ is in ${\displaystyle H}$, ${\displaystyle a^{-1}e}$ is also in ${\displaystyle H}$, so ${\displaystyle a^{-1}}$ is in ${\displaystyle H}$
• Suppose ${\displaystyle a,b}$ are in ${\displaystyle H}$. Then, ${\displaystyle a^{-1}}$ is also in ${\displaystyle H}$. Hence, ${\displaystyle (a^{-1}{)}^{-1}b}$ is in ${\displaystyle H}$, which tells us that ${\displaystyle ab}$ is in ${\displaystyle H}$.

Thus, ${\displaystyle H}$ satisfies all the three conditions to be a subgroup.