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- CommentRowNumber1.
- CommentAuthorUrs
- CommentTimeDec 6th 2010
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Author: Urs
Format: MarkdownItexstub for [[rank]]

stub for rank
- CommentRowNumber2.
- CommentAuthorzskoda
- CommentTimeDec 6th 2010
- (edited Dec 6th 2010)
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Author: zskoda
Format: MarkdownItexI think it is wrong. There is a nontrivial ring $R$ for which there is a possibility of having two different numbers $m$ and $n$ such that the free modules $R^n$ and $R^m$ are isomorphic. In other words, the rank of a free module over an arbitrary ring is not necessarily unique. This is related to the number of issues including those important in the business of Serre's conjecture (every finitely generated projective module over a polynomial ring is free). As wikipedia puts it in article [module (mathematics)](http://en.wikipedia.org/wiki/Module_%28mathematics%29) "However, modules can be quite a bit more complicated than vector spaces; for instance, not all modules have a basis, and even those that do, free modules, need not have a unique rank if the underlying ring does not satisfy the invariant basis number condition, unlike vector spaces which always have a basis whose cardinality is then unique (assuming the axiom of choice)."

I think it is wrong. There is a nontrivial ring $R$ for which there is a possibility of having two different numbers $m$ and $n$ such that the free modules $R^n$ and $R^m$ are isomorphic. In other words, the rank of a free module over an arbitrary ring is not necessarily unique. This is related to the number of issues including those important in the business of Serre’s conjecture (every finitely generated projective module over a polynomial ring is free). As wikipedia puts it in article module (mathematics) “However, modules can be quite a bit more complicated than vector spaces; for instance, not all modules have a basis, and even those that do, free modules, need not have a unique rank if the underlying ring does not satisfy the invariant basis number condition, unlike vector spaces which always have a basis whose cardinality is then unique (assuming the axiom of choice).”
- CommentRowNumber3.
- CommentAuthorUrs
- CommentTimeDec 6th 2010
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Author: Urs
Format: MarkdownItexdang it. Could you fix that? I need to rush off now.

dang it. Could you fix that? I need to rush off now.
- CommentRowNumber4.
- CommentAuthorzskoda
- CommentTimeDec 6th 2010
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Author: zskoda
Format: MarkdownItexWell fix it later (or I will even later). I do not fully understand what you wanted to say there, it would require to think too thoroughly for such a crazy moment before the trip for which I am not yet even starting packing.

Well fix it later (or I will even later). I do not fully understand what you wanted to say there, it would require to think too thoroughly for such a crazy moment before the trip for which I am not yet even starting packing.
- CommentRowNumber5.
- CommentAuthorTim_Porter
- CommentTimeDec 6th 2010
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Author: Tim_Porter
Format: MarkdownItexThere is a whole large part of ring Theory very much influenced by P. M.Cohn and his book `Free rings and their relations'. I handles invariant basis number rings (It is over 30 years since I worked on that stuff but I remember it was nice... and very well written.)

There is a whole large part of ring Theory very much influenced by P. M.Cohn and his book ‘Free rings and their relations’. I handles invariant basis number rings (It is over 30 years since I worked on that stuff but I remember it was nice… and very well written.)
- CommentRowNumber6.
- CommentAuthorzskoda
- CommentTimeDec 6th 2010
- (edited Dec 6th 2010)
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Author: zskoda
Format: MarkdownItexBut it should be rewritten. It is clear for example that many proofs there hide almost apparent tricks with quasideterminants (which were introduced around 1990). Also one should take into account huge shift in understanding Cohn localization by Vogel and then by Ranicki and Neeman in terms of Bousfield localization for unbounded derived categories.

But it should be rewritten. It is clear for example that many proofs there hide almost apparent tricks with quasideterminants (which were introduced around 1990). Also one should take into account huge shift in understanding Cohn localization by Vogel and then by Ranicki and Neeman in terms of Bousfield localization for unbounded derived categories.
- CommentRowNumber7.
- CommentAuthorTobyBartels
- CommentTimeDec 7th 2010
- (edited Dec 7th 2010)
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Author: TobyBartels
Format: MarkdownItexUrs, it looked like you set this page up to be a page on all of the meanings of ‘rank’, which I like. So I formatted it a bit to go with that, and added another meaning. I also fixed the bit about ranks' being unique.

Urs, it looked like you set this page up to be a page on all of the meanings of ‘rank’, which I like. So I formatted it a bit to go with that, and added another meaning.

I also fixed the bit about ranks’ being unique.
- CommentRowNumber8.
- CommentAuthorUrs
- CommentTimeDec 7th 2010
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Author: Urs
Format: MarkdownItexYes, thanks!

Yes, thanks!
- CommentRowNumber9.
- CommentAuthorMike Shulman
- CommentTimeDec 8th 2010
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Author: Mike Shulman
Format: MarkdownItexA finitely generated free module is dualizable, and therefore we can consider the trace of its identity map, which can be defined in a basis-invariant way. If the rank of the module is not well-defined, then which of its possible ranks does the trace of the identity give you?

A finitely generated free module is dualizable, and therefore we can consider the trace of its identity map, which can be defined in a basis-invariant way. If the rank of the module is not well-defined, then which of its possible ranks does the trace of the identity give you?
- CommentRowNumber10.
- CommentAuthorTodd_Trimble
- CommentTimeDec 8th 2010
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Author: Todd_Trimble
Format: MarkdownItexIn the case of a commutative ring, I think your argument works, Mike (since left modules form a monoidal category and "dualizable" makes obvious sense there). It looks to me more problematic in the noncommutative ring case. In any case, Wikipedia gives an example <a href="http://en.wikipedia.org/wiki/Invariant_basis_number#Examples">here</a> of what Zoran is referring to.

In the case of a commutative ring, I think your argument works, Mike (since left modules form a monoidal category and “dualizable” makes obvious sense there). It looks to me more problematic in the noncommutative ring case. In any case, Wikipedia gives an example here of what Zoran is referring to.
- CommentRowNumber11.
- CommentAuthorMike Shulman
- CommentTimeDec 8th 2010
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Author: Mike Shulman
Format: MarkdownItexA finitely generated free (or even projective) module over a noncommutative ring is still dualizable in the *bicategory* of rings and bimodules. In that bicategory there is a notion of trace, called the Hattori-Stallings trace, which is a special case of a general notion of trace in a bicategory defined by Kate Ponto, cf. for instance [arxiv:0910.1306](http://arxiv.org/abs/0910.1306). In general, the trace is not necessarily an integer, but rather an element of the ground ring (in the commutative case) or of a suitable quotient of the ring (in the noncommutative case). If I have a moment, maybe I'll think about what the trace of the identity would be for those modules over $\mathcal{M}_{\mathbb{N}}(R)$.

A finitely generated free (or even projective) module over a noncommutative ring is still dualizable in the bicategory of rings and bimodules. In that bicategory there is a notion of trace, called the Hattori-Stallings trace, which is a special case of a general notion of trace in a bicategory defined by Kate Ponto, cf. for instance arxiv:0910.1306. In general, the trace is not necessarily an integer, but rather an element of the ground ring (in the commutative case) or of a suitable quotient of the ring (in the noncommutative case). If I have a moment, maybe I’ll think about what the trace of the identity would be for those modules over $\mathcal{M}_{\mathbb{N}}(R)$ .
- CommentRowNumber12.
- CommentAuthorMike Shulman
- CommentTimeDec 8th 2010
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Author: Mike Shulman
Format: MarkdownItexAh, of course, the answer is that $1=2$ in $\langle\langle \mathcal{M}_{\mathbb{N}}(R) \rangle\rangle$, which is where traces of endomorphisms of dualizable $\mathcal{M}_{\mathbb{N}}(R)$-modules live. By definition, $\langle\langle \mathcal{M}_{\mathbb{N}}(R) \rangle\rangle$ is the abelian group obtained by quotienting $\mathcal{M}_{\mathbb{N}}(R)$ by the additive subgroup generated by $x y - y x$, for all $x$ and $y$. In this case, if $1$ denotes the identity matrix, $A$ the odd columns of the identity matrix, $B$ the even columns of the identity matrix, and $A^\top$ and $B^\top$ their transposes, then we have $A A^\top + B B^\top = 1$, but $A^\top A = B^\top B = 1$, hence $1 = 1 + 1$ in the quotient $\langle\langle \mathcal{M}_{\mathbb{N}}(R) \rangle\rangle$. Of course that implies $0=1$ in $\langle\langle \mathcal{M}_{\mathbb{N}}(R) \rangle\rangle$ as well, and so the "rank" of any finite-dimensional free module is zero according to this definition. Seeing that, I wouldn't be surprised if $\langle\langle \mathcal{M}_{\mathbb{N}}(R) \rangle\rangle = 0$, but I don't see how to prove it at this time of night. (Note that the trace-theoretic notion of "rank" has other issues arising from where it lives, even in the commutative case. For instance, this "rank" of a $p$-dimensional $\mathbb{F}_p$-vector-space is zero, since it is $p$ regarded as an element of $\mathbb{F}_p$.)

Ah, of course, the answer is that $1=2$ in $\langle\langle \mathcal{M}_{\mathbb{N}}(R) \rangle\rangle$ , which is where traces of endomorphisms of dualizable $\mathcal{M}_{\mathbb{N}}(R)$ -modules live. By definition, $\langle\langle \mathcal{M}_{\mathbb{N}}(R) \rangle\rangle$ is the abelian group obtained by quotienting $\mathcal{M}_{\mathbb{N}}(R)$ by the additive subgroup generated by $x y - y x$ , for all $x$ and $y$ . In this case, if $1$ denotes the identity matrix, $A$ the odd columns of the identity matrix, $B$ the even columns of the identity matrix, and $A^\top$ and $B^\top$ their transposes, then we have $A A^\top + B B^\top = 1$ , but $A^\top A = B^\top B = 1$ , hence $1 = 1 + 1$ in the quotient $\langle\langle \mathcal{M}_{\mathbb{N}}(R) \rangle\rangle$ .

Of course that implies $0=1$ in $\langle\langle \mathcal{M}_{\mathbb{N}}(R) \rangle\rangle$ as well, and so the “rank” of any finite-dimensional free module is zero according to this definition. Seeing that, I wouldn’t be surprised if $\langle\langle \mathcal{M}_{\mathbb{N}}(R) \rangle\rangle = 0$ , but I don’t see how to prove it at this time of night.

(Note that the trace-theoretic notion of “rank” has other issues arising from where it lives, even in the commutative case. For instance, this “rank” of a $p$ -dimensional $\mathbb{F}_p$ -vector-space is zero, since it is $p$ regarded as an element of $\mathbb{F}_p$ .)
- CommentRowNumber13.
- CommentAuthorTobyBartels
- CommentTimeDec 12th 2010
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Author: TobyBartels
Format: MarkdownItexI put in Wikipedia's examples of three broad classes of rings with IBN, as well as its example of a nontrivial ring without IBN (but explained a bit more abstractly and concisely).

I put in Wikipedia’s examples of three broad classes of rings with IBN, as well as its example of a nontrivial ring without IBN (but explained a bit more abstractly and concisely).
- CommentRowNumber14.
- CommentAuthorTim_Porter
- CommentTimeDec 12th 2010
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Author: Tim_Porter
Format: MarkdownItexRings with IBN have other nice properties.... but forget what!!!

Rings with IBN have other nice properties…. but forget what!!!
- CommentRowNumber15.
- CommentAuthorIngoBlechschmidt
- CommentTimeFeb 8th 2013
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Author: IngoBlechschmidt
Format: MarkdownItexAdded to _[[rank]]_ the definition of the rank of a sheaf of modules on a locally ringed space $X$ and its characterization in the internal language of the sheaf topos $\mathrm{Sh}(X)$.

Added to rank the definition of the rank of a sheaf of modules on a locally ringed space $X$ and its characterization in the internal language of the sheaf topos $\mathrm{Sh}(X)$ .
- CommentRowNumber16.
- CommentAuthorUrs
- CommentTimeApr 4th 2023
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Author: Urs
Format: MarkdownItexIt seems we were lacking an entry answering to "rank of a linear map". So I have added a line [here](https://ncatlab.org/nlab/show/rank#RankOfALinearMap). <a href="https://ncatlab.org/nlab/revision/diff/rank/14">diff</a>, <a href="https://ncatlab.org/nlab/revision/rank/14">v14</a>, <a href="https://ncatlab.org/nlab/show/rank">current</a>

It seems we were lacking an entry answering to “rank of a linear map”. So I have added a line here.

diff, v14, current

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nLab > Latest Changes: rank