Suppose $R=S/I$ is the homomorphic image of a local ring $(S,m)$. I know the completion of $R$ as an $S$-module is just $R \otimes \hat S$, where $\hat S$ is the $m$-adic completion of $S$. Is this also the completion of $R$ as a ring? (I think this comes down to showing that the inverse limit of $S/(m^i +I)$ is the same as the inverse limit of $S/m^i$ tensored with $S/I$.)
Completion of the homomorphic image of a local ring.
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ring-theory
commutative-algebra
1 Answers
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If $S$ is any local ring with maximal ideal $m_S$, and $R = S/I$ is a quotient of $S$, then the maximal ideal $m_R$ of $R$ is $m_S/I$, and its $i$th power (for any $i \geq 0$) is equal to $m_S^i + I /I$.
The $m_R$-adic completion of $R$ is equal to
inverse limit of $R/m_R^i$ = inverse limit of $S/(I + m_S^n)$.
The completion of $R$ as an $S$-module is equal to
inverse limit of $R\otimes_S (S/m_S^i)$ = inverse limit of $S/(I +m_s^i)$
(which by the Artin--Rees theorem is the same as $R\otimes_S \hat{S}$).
Thus the two notions of completion are indeed the same.