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nLab: free coalgebra

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- CommentRowNumber1.
- CommentAuthorjim_stasheff
- CommentTimeJan 14th 2012
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Author: jim_stasheff
Format: TextOver at mathoverflow, there is a rather chatty discussion of the construction/definition of a free coalgebra - can't find anything here in nForum but maybe I don't know how to search
Over at mathoverflow, there is a rather chatty discussion of the construction/definition
of a free coalgebra - can't find anything here in nForum
but maybe I don't know how to search
- CommentRowNumber2.
- CommentAuthorTodd_Trimble
- CommentTimeJan 14th 2012
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Author: Todd_Trimble
Format: MarkdownItexIs "free" a slip for cofree? Generally speaking, "free" refers to a left adjoint to a forgetful functor, but the forgetful functor from coalgebras to vector spaces doesn't have a left adjoint. It does have a right adjoint, called the cofree coalgebra on a vector space.

Is “free” a slip for cofree? Generally speaking, “free” refers to a left adjoint to a forgetful functor, but the forgetful functor from coalgebras to vector spaces doesn’t have a left adjoint. It does have a right adjoint, called the cofree coalgebra on a vector space.
- CommentRowNumber3.
- CommentAuthorjim_stasheff
- CommentTimeJan 15th 2012
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Author: jim_stasheff
Format: TextLanguage problems OK cofree if you prefer but then do you insist on COassociative coalgebra? In either language, is there any detailed discussion of the issue e.g. versus the tensor coalgebra (surely no cotensor?) here at n-forum or elsewhere at n-lab?
Language problems
OK cofree if you prefer
but then do you insist on COassociative coalgebra?
In either language, is there any detailed discussion of the issue
e.g. versus the tensor coalgebra (surely no cotensor?)
here at n-forum or elsewhere at n-lab?
- CommentRowNumber4.
- CommentAuthorTodd_Trimble
- CommentTimeJan 15th 2012
- (edited Jan 15th 2012)
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Author: Todd_Trimble
Format: MarkdownItexThere is not much good discussion on this (yet) in the nLab; there's a little bit [here](http://ncatlab.org/nlab/show/free+functor#cofree_functors_12), and some over at [[linear logic]]. If you apply the search function within the nLab to ["cofree"](http://ncatlab.org/nlab/search?_form_key=a874f372ff49a77c778c7e25455c513b7fb57ef4&query=cofree), you may find pages closer to your interests (e.g., [[differential graded coalgebra]]). I mean to link back to (maybe even amplify on) the [MathOverflow discussion](http://mathoverflow.net/questions/31109/is-there-an-explicit-construction-of-a-free-coalgebra) I think you're referring to; Theo Johnson-Freyd's answer is IMO very nice. By the way, I didn't mean to imply that "free" was your slip; indeed, I remember it was the OP of the MO discussion who introduced the slip. And I'm afraid I really do consider it a mistake, or at the very least highly misleading. I do not however insist on coassociative or cocommutative unless it's important to do so (e.g., in a Hopf algebra context). There is, by the way, a notion of cotensor = [[power]] in category theory, and also a notion of [[cotensor product]]. :-)

There is not much good discussion on this (yet) in the nLab; there’s a little bit here, and some over at linear logic. If you apply the search function within the nLab to “cofree”, you may find pages closer to your interests (e.g., differential graded coalgebra). I mean to link back to (maybe even amplify on) the MathOverflow discussion I think you’re referring to; Theo Johnson-Freyd’s answer is IMO very nice.

By the way, I didn’t mean to imply that “free” was your slip; indeed, I remember it was the OP of the MO discussion who introduced the slip. And I’m afraid I really do consider it a mistake, or at the very least highly misleading. I do not however insist on coassociative or cocommutative unless it’s important to do so (e.g., in a Hopf algebra context). There is, by the way, a notion of cotensor = power in category theory, and also a notion of cotensor product. :-)
- CommentRowNumber5.
- CommentAuthorTodd_Trimble
- CommentTimeJan 15th 2012
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Author: Todd_Trimble
Format: MarkdownItexStarted something on [[cofree coalgebra]].

Started something on cofree coalgebra.
- CommentRowNumber6.
- CommentAuthorUrs
- CommentTimeJan 15th 2012
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Author: Urs
Format: MarkdownItexI have added various hyperlinks. Also, I have added cross-links between this entry and the formal duals _[[free monoid]]_ and _[[tensor algebra]]_.

I have added various hyperlinks.

Also, I have added cross-links between this entry and the formal duals free monoid and tensor algebra.
- CommentRowNumber7.
- CommentAuthorzskoda
- CommentTimeJan 16th 2012
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Author: zskoda
Format: MarkdownItexIt is usual to say coassociative coalgebra, as usually one deals with bialgebra and similar contexts where both algebra and coalgebra structures are present so it is good to emphasise which "associativity" one means. But of course, it is OK in pure coalgebra context to say associativity for dual associativity. Of course, one can not say cotensor coalgebra for tensor coalgebra; as it is based on the tensor and not on the cotensor product.

It is usual to say coassociative coalgebra, as usually one deals with bialgebra and similar contexts where both algebra and coalgebra structures are present so it is good to emphasise which “associativity” one means. But of course, it is OK in pure coalgebra context to say associativity for dual associativity. Of course, one can not say cotensor coalgebra for tensor coalgebra; as it is based on the tensor and not on the cotensor product.
- CommentRowNumber8.
- CommentAuthorTodd_Trimble
- CommentTimeJan 21st 2012
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Author: Todd_Trimble
Format: MarkdownItexI have been adding a bit more to [[cofree coalgebra]]. In the course of doing so, I've pondered a bit more on the construction given by Theo in the MathOverflow discussion alluded to in #4, and I don't quite see how his description (as a certain pullback in $Vect$, if I'm reading his description correctly) gives a coalgebra. In particular, I don't understand how the comultiplication for his description is supposed to work. If the inclusion of the pullback $V \times_{V^{\ast \ast}} T(V^\ast)^\circ \to T(V^\ast)^\circ$ gives a subcoalgebra inclusion, then I believe all would be well. But at the moment, I have my suspicions that the pullback is "too big" for this to actually work. In any case, I'm hoping Theo can address this here. I also realize that what I've written up at [[cofree coalgebra]] is unlikely to satisfy Jim (see #1); similar discussions for cofree cocommutative coalgebras took place at the Café some years ago, but I'm pretty sure they were not carried out to Jim's full satisfaction. I hope a better job can be done this time around, but there is rather a lot to say.

I have been adding a bit more to cofree coalgebra. In the course of doing so, I’ve pondered a bit more on the construction given by Theo in the MathOverflow discussion alluded to in #4, and I don’t quite see how his description (as a certain pullback in $Vect$ , if I’m reading his description correctly) gives a coalgebra. In particular, I don’t understand how the comultiplication for his description is supposed to work.

If the inclusion of the pullback $V \times_{V^{\ast \ast}} T(V^\ast)^\circ \to T(V^\ast)^\circ$ gives a subcoalgebra inclusion, then I believe all would be well. But at the moment, I have my suspicions that the pullback is “too big” for this to actually work. In any case, I’m hoping Theo can address this here.

I also realize that what I’ve written up at cofree coalgebra is unlikely to satisfy Jim (see #1); similar discussions for cofree cocommutative coalgebras took place at the Café some years ago, but I’m pretty sure they were not carried out to Jim’s full satisfaction. I hope a better job can be done this time around, but there is rather a lot to say.
- CommentRowNumber9.
- CommentAuthorjim_stasheff
- CommentTimeJan 22nd 2012
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Author: jim_stasheff
Format: TextI'm sure it's implicit in what's written here, but I miss any discussion of the tensor coalgebra i.e. the sum of the tensor powers with the deconcantenation coproduct and the cofreeness of it's completion.
I'm sure it's implicit in what's written here, but I miss any discussion of the tensor coalgebra i.e. the sum of the tensor powers with the deconcantenation coproduct and the cofreeness of it's completion.
- CommentRowNumber10.
- CommentAuthortheojf
- CommentTimeJan 22nd 2012
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Author: theojf
Format: TextHi all, Todd asked me to come over here to discuss the cofree coalgebra construction. I should emphasize that I don't have a lot of intuition for it, and tend to rely on Alex to know things. Anyway, the construction is from Sweedler's book on Hopf Algebras, section 6.4. I should not have written "$V \times_{V^{**}} T(V^*)^\circ$". Rather, I should have asked for the largest subcoalgebra of $T(V^*)^\circ$ that maps to $V$ under the map to $V^{**}$. I have corrected the offending MO post. This is clearly a subcoalgebra, and clearly has a map to $V$. Left to check is that it satisfies the universal property. Theo
Hi all,

Todd asked me to come over here to discuss the cofree coalgebra construction. I should emphasize that I don't have a lot of intuition for it, and tend to rely on Alex to know things. Anyway, the construction is from Sweedler's book on Hopf Algebras, section 6.4. I should not have written "$V \times_{V^{**}} T(V^*)^\circ$". Rather, I should have asked for the largest subcoalgebra of $T(V^*)^\circ$ that maps to $V$ under the map to $V^{**}$. I have corrected the offending MO post.

This is clearly a subcoalgebra, and clearly has a map to $V$. Left to check is that it satisfies the universal property.

Theo
- CommentRowNumber11.
- CommentAuthorTodd_Trimble
- CommentTimeJan 22nd 2012
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Author: Todd_Trimble
Format: MarkdownItexYes, that accords exactly with what I was thinking. Thanks for getting back to me on this, Theo.

Yes, that accords exactly with what I was thinking. Thanks for getting back to me on this, Theo.
- CommentRowNumber12.
- CommentAuthortheojf
- CommentTimeJan 23rd 2012
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Author: theojf
Format: TextIncidentally, if memory serves, Sweedler also claims that if V is of the form W* for some vector space W, then Cofree(V) = T(W)°. So you can interpret the story in two steps: (1) is that cofree(dual) = dual(free). (2) is that V is trying to be the dual of V*.
Incidentally, if memory serves, Sweedler also claims that if V is of the form W* for some vector space W, then Cofree(V) = T(W)°. So you can interpret the story in two steps: (1) is that cofree(dual) = dual(free). (2) is that V is trying to be the dual of V*.
- CommentRowNumber13.
- CommentAuthorTodd_Trimble
- CommentTimeJan 23rd 2012
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Author: Todd_Trimble
Format: MarkdownItexInteresting. The present version of the story as recorded at [[cofree coalgebra]] is just to say that $Cofree(V) = T(V^\ast)^\circ$ when $V$ is finite-dimensional, and in general $Cofree(V)$ is the filtered colimit (or you could simply say, "union") over $Cofree(V')$ where $V'$ ranges over finite-dimensional subspaces of $V$ and inclusions between them (NB: this colimit can be computed in $Vect$). This translates easily into your revised description at MathOverflow. Incidentally, looking at your direct sum description of the cofree (cocommutative) coalgebra on a 1-dimensional space $k$ (which we may identify with its dual), I would be interested to see exactly how it embeds as a subspace of $T(k)^\ast \cong \prod_n k \cdot x^n$, the vector space of formal power series in one variable. My own description of $T(k)^\circ \hookrightarrow T(k)^\ast$ is that it is (the underlying space of) the localization of $k[x]$ at the prime ideal $(x)$, embedded by writing each rational function in the localization as a formal power series. I discussed this calculation quite a while ago [here](http://golem.ph.utexas.edu/category/2007/12/transgression_of_ntransport_an.html#c014560). Our intuitions about finitely supported distributions have something in common, but I'm not quite seeing why the coalgebra is splitting so neatly as a direct sum of copies of $T(k)$ as you are claiming (even assuming the field $k$ is algebraically closed).

Interesting. The present version of the story as recorded at cofree coalgebra is just to say that $Cofree(V) = T(V^\ast)^\circ$ when $V$ is finite-dimensional, and in general $Cofree(V)$ is the filtered colimit (or you could simply say, “union”) over $Cofree(V')$ where $V'$ ranges over finite-dimensional subspaces of $V$ and inclusions between them (NB: this colimit can be computed in $Vect$ ). This translates easily into your revised description at MathOverflow.

Incidentally, looking at your direct sum description of the cofree (cocommutative) coalgebra on a 1-dimensional space $k$ (which we may identify with its dual), I would be interested to see exactly how it embeds as a subspace of $T(k)^\ast \cong \prod_n k \cdot x^n$ , the vector space of formal power series in one variable. My own description of $T(k)^\circ \hookrightarrow T(k)^\ast$ is that it is (the underlying space of) the localization of $k[x]$ at the prime ideal $(x)$ , embedded by writing each rational function in the localization as a formal power series. I discussed this calculation quite a while ago here. Our intuitions about finitely supported distributions have something in common, but I’m not quite seeing why the coalgebra is splitting so neatly as a direct sum of copies of $T(k)$ as you are claiming (even assuming the field $k$ is algebraically closed).
- CommentRowNumber14.
- CommentAuthorTodd_Trimble
- CommentTimeJan 25th 2012
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Author: Todd_Trimble
Format: MarkdownItexMy most recent edit at [[cofree coalgebra]] answers the question I raised in comment #13, in what could be an embarrassment of detail. Theo's description of the cofree coalgebra on one cogenerator is correct, but the nitty-gritty details are perhaps not super-trivial. (Still more to be done at that article.)

My most recent edit at cofree coalgebra answers the question I raised in comment #13, in what could be an embarrassment of detail. Theo’s description of the cofree coalgebra on one cogenerator is correct, but the nitty-gritty details are perhaps not super-trivial. (Still more to be done at that article.)
- CommentRowNumber15.
- CommentAuthorjim stasheff
- CommentTimeMay 25th 2023
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Author: jim stasheff
Format: TextAt a more bare hands level, what's your preferred description of free commutative algebra and ditto coalgebra over the intergers -= not erationals permitted. Hard to find it on n-lab. jim the ancient
At a more bare hands level, what's your preferred description of free commutative algebra and ditto coalgebra over the intergers -= not erationals permitted.
Hard to find it on n-lab. jim the ancient
- CommentRowNumber16.
- CommentAuthorTodd_Trimble
- CommentTimeMay 25th 2023
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Author: Todd_Trimble
Format: MarkdownItexJim, it is very good to hear from you. I hope you are well. The free commutative $\mathbb{Z}$-algebra on one element is the polynomial algebra $\mathbb{Z}[x]$. The free commutative $\mathbb{Z}$-algebra on $n$ elements is the polynomial algebra on $n$ variables, $\mathbb{Z}[x_1, \ldots, x_n]$. I feel a little shaky about cofree coalgebras when the base ring is not a field, but let me try to get back to you later. There's some related discussion in this thread, including discussion about the usage of "free" versus "cofree". In the past, you've never seemed happy with my attempts to describe cofree coalgebras. :-) :-(

Jim, it is very good to hear from you. I hope you are well.

The free commutative $\mathbb{Z}$ -algebra on one element is the polynomial algebra $\mathbb{Z}[x]$ . The free commutative $\mathbb{Z}$ -algebra on $n$ elements is the polynomial algebra on $n$ variables, $\mathbb{Z}[x_1, \ldots, x_n]$ .

I feel a little shaky about cofree coalgebras when the base ring is not a field, but let me try to get back to you later. There’s some related discussion in this thread, including discussion about the usage of “free” versus “cofree”. In the past, you’ve never seemed happy with my attempts to describe cofree coalgebras. :-) :-(

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nLab: free coalgebra