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Pavel Zalesski

Publications and source records attributed to Pavel Zalesski.

5 recordsLinked to original sources

Profinite detection of free products and free factors

Let $G$ be the fundamental group of a graph of finitely generated virtually free groups with virtually cyclic edge groups. We shaw that $G$ is cohomologically good if $G$ is residually finite. If $G$ is LERF, we prove that G splits non-trivially as a free product if and only if its profinite completion $\widehat{G}$ splits non-trivially as a free profinite product. Moreover, we are able to detect one-ended free factors of $G$ from $\widehat{G}$. As an application, we deduce that any profinitely rigid word in a finitely generated free group is universally profinitely rigid.

math.GR↗

Generalized Stallings' decomposition theorem for pro-$p$ groups

The celebrated Stallings' decomposition theorem states that the splitting of a finite index subgroup $H$ of a finitely generated group $G$ as an amalgamated free product or an HNN-extension over a finite group implies the same for $G$. We generalize the pro-$p$ version of it proved by Weigel and the second author to splittings over infinite pro-$p$ groups. This generalization does not have any abstract analogs. We also prove that generalized accessibility of finitely generated pro-$p$ groups is closed for commensurability.

math.GR↗

The profinite completion of the fundamental group of infinite graphs of groups

Let $(\mathcal{G},Γ)$ be an abstract graph of finite groups. If $Γ$ is finite, we can construct a profinite graph of groups in a natural way $(\hat{\mathcal{G}},Γ)$, where $\hat{\mathcal{G}}(m)$ is the profinite completion of $\mathcal{G}(m)$ for all $m \in Γ$. The main reason for this is that $Γ$ is finite, so it is already profinite. In this paper we deal with the infinite case, by constructing a profinite graph $\overlineΓ$ where $Γ$ is densely embedded and then defining a profinite graph of groups $(\widehat{\mathcal{G}},\overlineΓ)$. We also prove that the fundamental group $Π_1(\widehat{\mathcal{G}},\overlineΓ)$ is the profinite completion of $Π_1^{abs}(\mathcal{G},Γ)$. This answers Open Question 6.7.1 of the book Profinite Graphs and Groups, published by Luis Ribes in 2017. Later we generalise the main theorem of a paper by Luis Ribes and the second author, proving that if $R$ is a virtually free abstract group and $H$ is a finitely generated subgroup of $R$, then $\overline{N_{R}(H)}=N_{\hat{R}}(\overline{H})$ answering Open Question 15.11.10 of the book of Ribes. Finally, we generalise the main theorem of a paper by Sheila Chagas and the second author, showing that every virtually free group is subgroup conjugacy separable. This answers Open Question 15.11.11 of the same book of Ribes.

math.GR↗

Normal subgroups of the algebraic fundamental group of affine curves in positive characteristic

Let $π_1(C)$ be the algebraic fundamental group of a smooth connected affine curve, defined over an algebraically closed field of characteristic $p>0$ of countable cardinality. Let $N$ be a normal (resp. characteristic) subgroup of $π_1(C)$. Under the hypothesis that the quotient $π_1(C)/N$ admits an infinitely generated Sylow $p$-subgroup, we prove that $N$ is indeed isomorphic to a normal (resp. characteristic) subgroup of a free profinite group of countable cardinality. As a consequence, every proper open subgroup of $N$ is a free profinite group of countable cardinality.

math.AG↗