How do we put a group structure on $K(G,n)$ that makes it a topological group?
I know that $\Omega K(G,n+1)=K(G,n)$ and since we have a product of loops this makes $K(G,n)$ into a H-space. But what about being a topological group?
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3See algori's answer to this thread: http://mathoverflow.net/questions/12469/group-structure-on-cpinfinty basically, your question was answered by John Milnor in his paper "universal bundles I" – Ryan Budney Jun 15 '11 at 18:20
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The standard classifying space functor $B$ from topological groups to topological spaces is product preserving, so it takes abelian topological groups to abelian topological groups. Start with an abelian group $G$ as a discrete topological group, so a $K(G,0)$. Apply the functor $B$ iteratively $n$ times to reach $B^nG$, which is an abelian topological group and a $K(G,n)$.
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// This is essentially the same answer that Qiaochu Yuan deleted for some reason. Hence CW.
By the Dold-Thom theorem $\pi_\bullet(\mathbb Z[X])=H_\bullet(X)$, where $\mathbb Z[X]$ is the free abelian group generated by $X$. Note that $\mathbb Z[X]$ is never connected ($\pi_0(\mathbb Z[X])=H_0(X)\supset\mathbb Z$) but it has reduced version: (fix a point $x_0\in X$ and define) $\widetilde{\mathbb Z[X]}:=\mathbb Z[X]/\mathbb Z[x_0]$ — and $\pi_\bullet\widetilde{\mathbb Z[X]}=\tilde H_\bullet(X)$.
// Remark 1. Actually (for connected $X$, at least), $\widetilde{\mathbb Z[X]}$ is homotopy equivalent to the free abelian monoid generated by $X$ with $x_0$ as the unit (aka $Sym^\infty(X):=\operatorname{colim}_{+x_0}Sym^n(X)$) that is used in the formulation of the Dold-Thom theorem in, say, nLab.
Now, it's easy to construct a Moore space $M(G,n)$ s.t. $\tilde H_n(M(G,n))=G$ and all other (reduced) homology groups of $M(G,n)$ are zero. And by Dold-Thom theorem topological abelian group $\widetilde{\mathbb Z[M(G,n)]}$ has homotopy type $K(G,n)$.
// Remark 2. In particular, $\widetilde{\mathbb Z[S^2]}$ is a topological abelian group with homotopy type of $\mathbb CP^\infty$. (Looks more explicit to me than most answers on MO.)
Upd. It's even easier to use $\widetilde{G[S^n]}\cong K(G,n)$.
Reference: M. C. McCord, Classifying spaces and infinite symmetric products, Transactions of the American Mathematical Society 146 (1969), 273–298.
See def. in the strart of Sec. 5 ($B(G,X)$ is my $\widetilde {G[X]}$), Prop. 6.6 (if $G$ is abelian group, so is $B(G,X)$), Cor. 10.6 ($\widetilde{G[S^n]}$ is an abelian group of homotopy type $K(G,n)$), Thm 11.4 (Dold-Thom type theorem I use; stated for any based $X$ having homotopy type of CW complex).
Another way to find homotopy type of $\mathbb Z[X]$ is to observe that if $X$ is cofibrant (e.g is a CW complex), $|X^\Delta|\to X$ (where $X^\Delta$ is the simplicial set of singular simplices in $X$) is a homotopy equivalence, so $\mathbb Z[X]\cong |\mathbb Z[X^\Delta]|$; now, by Dold-Kan correspondence homotopy groups of $\mathbb Z[X^\Delta]$ coincide with homology group of the corresponding complex — which is exactly singular complex of $X$.
Grigory M
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I'm still a bit doubtful as to the precise hypotheses on $X$ that are involved here. I agree that morally this should work, but as I already pointed out in a comment to Qiaochu's answer Dold and Thom didn't prove that result in this generality. I must say that I don't see the nlab as a very reliable source and while they're looking nice, the notes Qiaochu directed me to still haven't dispelled my doubts. Can you provide me with a reputable source in which the Dold-Thom theorem is stated and proved in the form that you use it? – t.b. Jun 15 '11 at 23:50
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@Grigory M: what is $\mathbb Z[x_0]$ isn't this just $x_0$, recall that in other notation $\mathbb Z[X]$ is just the infinite symmetric product $SP^{\infty}(X)$ the direct limit over $n$ of $SP^{n}(X)=X^n/S_n$ where $S_n$ is the symmetric group. – palio Jun 16 '11 at 16:20
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@palio No-no, $\mathbb Z[x_0]=\mathbb Z$ (free abelian group generated on 1 generator, naturally); and $SP^\infty(X)$ is not $\mathbb Z[X]$ but $\widetilde{\mathbb Z[X]}$. – Grigory M Jun 16 '11 at 17:39
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@Grigory M: i think the infinite symmetric product is a free abelian monoid on $X$ not free abelian GROUP. Other thing, i think there is a confusion here between inifinite symmetric product and James construction!!! – palio Jun 17 '11 at 08:21
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@palio Yes, SP is a free abelian monoid and $\mathbb Z[-]$ is a free abelian group. (Nevertheless, it turns out, the natural inclusion $SP^\infty(X)\to\widetilde{\mathbb Z[X]}$ is a homotopy equivalence.) – Grigory M Jun 17 '11 at 08:29
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3@Grigory: So I know that Dold-Kan almost gives you this (take the Eilenberg-MacLane space in the simplicial category by inverting Dold-Kan on a complex in one degree, then take the geometric realization). Since the object in the simplicial category is a group object and the realization functor preserves products to compactly generated spaces, it follows that an E-M space can be taken to be a topological group in the compactly generated category. Do you know if it's possible to refine this to get an ordinary topological group? – Akhil Mathew Jun 17 '11 at 15:10
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@Akhil I'm not an expert in these matters, I'm afraid. The problem is that products in $Top$ and $Top_{cg}$ sometimes differ, right? Does it happen for CW-complexes? – Grigory M Jun 18 '11 at 06:30
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Well, an interval is a $K(\{e\},1)$, where $\{e\}$ is the trivial group, and an interval has no group structure that can make it a topological group (every continuous map has a fixed point). So there certainly are some $K(G,n)$'s out there that cannot be made into topological groups. Maybe if you refine the question there could be some sort of answer.
MartianInvader
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2I think the question should be made "how do we put a group structure on a space homotopy equivalent to $K(G, n)$?" (which is itself, of course, only well-defined up to homotopy). – Qiaochu Yuan Jun 15 '11 at 16:54