Michal Wroclawski

dblp:244/0535 · DBLP profile ↗
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4ranked-venue papers
1as first author
3since 2021 · last 2025
—ORCID · none

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Theory of computation · 4 · 1 first-author · 3 since 2021
YearPublicationVenuePosition
2025 Online and Feasible Presentability: From Trees to Modal Algebras
abstract
We investigate whether every computable member of a given class of structures admits a fully primitive recursive (also known as punctual) or fully P-TIME copy. A class with this property is referred to as punctually robust or P-TIME robust, respectively. We present both positive and negative results for structures corresponding to well-known representations of trees, such as binary trees, ordered trees, sequential (or prefix) trees, and partially ordered (poset) trees. A corollary of one of our results on trees is that semilattices and lattices are not punctually robust. In the main result of the paper, we demonstrate that, unlike Boolean algebras, modal algebras - that is, Boolean algebras with modality - are not punctually robust. The question of whether distributive lattices are punctually robust remains open. The paper contributes to a decades-old program on effective and feasible algebra, which has recently gained momentum due to rapid developments in punctual structure theory and its connections to online presentations of structures.
Nikolay Bazhenov 0001, Dariusz Kalocinski, Michal Wroclawski
ICALP3
2024 Punctual Presentability in Certain Classes of Algebraic Structures
Dariusz Kalocinski, Luca San Mauro, Michal Wroclawski
MFCS3
2022 Intrinsic Complexity of Recursive Functions on Natural Numbers with Standard Order
abstract
Intrinsic complexity of a relation on a given computable structure is captured by the notion of its degree spectrum - the set of Turing degrees of images of the relation in all computable isomorphic copies of that structure. We investigate the intrinsic complexity of unary total recursive functions on nonnegative integers with standard order. According to existing results, possible spectra of such functions include three sets consisting of precisely: the computable degree, all c.e. degrees and all $Δ_2$ degrees. These results, however, fall far short of the full classification. In this paper, we obtain a more complete picture by giving a few criteria for a function to have intrinsic complexity equal to one of the three candidate sets of degrees. Our investigations are based on the notion of block functions and a broader class of quasi-block functions beyond which all functions of interest have intrinsic complexity equal to the c.e. degrees. We also answer the questions raised by Wright and Harrison-Trainor by showing that the division between computable, c.e. and $Δ_2$ degrees is insufficient in this context as there is a unary total recursive function whose spectrum contains all c.e. degrees but is strictly contained in the $Δ_2$ degrees.
Nikolay Bazhenov 0001, Dariusz Kalocinski, Michal Wroclawski
STACS3
2019 Representations of Natural Numbers and Computability of Various Functions
Michal Wroclawski
CiE1