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By a theorem of Serre, if $R$ is a commutative artinian ring, every projective module [over $R$] is free. (The theorem states that for any commutative noetherian ring $R$ and projective module $P$ [over $R$], if $\operatorname{rank}(P) > \dim(R)$, then there exists a projective [$R$-module] $Q$ with $\operatorname{rank}(Q)=\dim(R)$ such that $P\cong R^k \oplus Q$ where $k=\operatorname{rank}(P)−\dim(R)$.)

When $R$ is a PID, this is in Lang's Algebra (Section III.7), and when $R$ is local this is a famous theorem of Kaplansky. But in spite of a reasonable effort, I can't seem to find any other reference to this theorem of Serre. Does anyone know of one? Is there any other way to show that every projective module over an artinian ring is free?

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Let $R=\mathbb{Z}_6$ and $P=\hat{2}\mathbb{Z}_6$. Then $R$ is artinian, $P$ is projective and not free. –  user26857 Oct 15 '12 at 22:02
    
@navigetor23: Oops! I was even looking at that example earlier this evening. Now that I look at it again, there must be a condition missing in the statement of the theorem since the notion of rank isn't even well-defined for arbitrary projective $R$-modules (Wikipedia says $R$ or its quotient by its nilradical has to be a domain). –  Hamish Oct 15 '12 at 22:28
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For any (non-zero) commutative ring $R$, you can construct finite projective modules on $R\times R$ which aren't free by gluing two $R$-modules of different ranks. In particular you can do this for $k\times k$ where $k$ is any field, which is an Artinian ring. –  Keenan Kidwell Oct 15 '12 at 22:54

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up vote 6 down vote accepted

Let $R$ be any commutative ring whose projective modules are all free, and let $e\notin \{0,1\}$ be an idempotent of $R$.

Then $eR$ and $(1-e)R$ are both projective, hence free of some rank 1 or more, and $eR\oplus(1-e)R=R$, so that we have $R^n\cong R$ as $R$ module for some natural number $n\geq 2$. This is absurd since commutative rings have IBN.

This shows that $R$ cannot have any nontrivial idempotents.

Since an Artinian ring without nontrivial idempotents is local, you can see now the dramatic failure of Artinian rings to have the "projective implies free" property, except in the "good" local case.

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@navigetor23 Commtative implies IBN is hardly a theorem: it can even be proved here. It's apparent that $R^n\cong R^m$ iff there are matrices of appropriate sizes such that $AB=I_n$ and $BA=I_m$. Let $R$ be nonzero commutative and suppose $R^m\cong R^n$ with $n\neq m$. Project with $\pi$ onto $R/M=F$ for $M$ a maximal ideal. If the above $A,B$ exist, then projecting all the entries with $\pi$ says that the field $F$ does not have IBN, an absurdity. I know you'll probably be able to provide a similar length proof of your own statement, but please don't spoil it for me :) –  rschwieb Oct 16 '12 at 16:25

Sorry to show up late to this party, but you were quoting my comment and somehow I missed it.

Yes, a condition was overlooked: we must presume that $P$ has constant rank, alternatively, $\operatorname{Spec}(A)$ is connected, or $A$ has no non-trivial idempotents, etc.

This result is Serre's Splitting Theorem which states that a projective $A$-module, $P$, of constant rank $r \geq d+1$ where $d=\dim(A)$ must contain a unimodular element (SST) [not to be left out: $P$ will also be cancellative under this condition (Bass's Cancellation Theorem)].

$P$ containing a unimodular element $p \in P$ is equivalent to a surjection $P \twoheadrightarrow A$, giving us kernel $Q$ (which will also be projective), and because the surjection splits we have $P \simeq A \oplus Q$. Repeat this splitting until the rank of the resulting kernel matches the dimension of $A$.

As a result, projective $A$-modules for which $\operatorname{rank}(P)=\dim(A)$ are called projective modules of top-rank.

For further reference: see T.Y. Lam's Serre's Problem on Projective Modules (esp. p.291-2)

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And since a connected commutative Artinian ring is local, this unfortunately fell under the conditions originally listed in that post (local, PID), and nothing new is gained. I'm glad to learn about this theorem and reference, though! –  rschwieb Feb 22 '13 at 17:41
    
@YACP Thanks, I went ahead and deleted all the unuseful ones pointed at your self-deleted posts. I'm not sure why you would discourage edits to improve posts, so I'll just guess you didn't know how to start otherwise and leave it at that. –  rschwieb Feb 22 '13 at 17:52
    
Indeed, this result becomes rather trivial when $\dim(A) = 0$. Also, I'm happy to be reminded of the full list of my standard assumptions. –  Andrew Parker Feb 22 '13 at 17:52
    
Serre's Splitting Theorem was recently mentioned here in a comment of @manoj. –  user26857 Feb 22 '13 at 17:56

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