Richard Hladík

dblp:280/3871 · DBLP profile ↗
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4ranked-venue papers
1as first author
3since 2021 · last 2026
0000-0001-7153-3056ORCID · corroborated

Domains — the database's venue-derived domains; a paper can count in several

Theory of computation · 3 · 3 since 2021Artificial intelligence and machine learning · 1 · 1 first-author
YearPublicationVenuePosition
2026 Fast and Simple Sorting Using Partial Information
Bernhard Haeupler, Richard Hladík, John Iacono, Václav Rozhon, Robert E. Tarjan, Jakub Tetek
Algorithmica2
2025 Fast and Simple Sorting Using Partial Information
abstract
We consider the problem of sorting n items, given the outcomes of m pre-existing comparisons. We present a simple and natural deterministic algorithm that runs in O(m + log T ) time and does O(log T ) comparisons, where T is the number of total orders consistent with the pre-existing comparisons.
Bernhard Haeupler, Richard Hladík, John Iacono, Václav Rozhon, Robert E. Tarjan, Jakub Tetek
SODA2
2024 Universal Optimality of Dijkstra Via Beyond-Worst-Case Heaps
abstract
This paper proves that Dijkstra's shortest-path algorithm is universally optimal in both its running time and number of comparisons when combined with a sufficiently efficient heap data structure. Universal optimality is a powerful beyond-worst-case performance guarantee for graph algorithms that informally states that a single algorithm performs as well as possible for every single graph topology. We give the first application of this notion to any sequential algorithm. We design a new heap data structure with a working-set property guaranteeing that the heap takes advantage of locality in heap operations. Our heap matches the optimal (worst-case) bounds of Fibonacci heaps but also provides the beyond-worst-case guarantee that the cost of extracting the minimum element is merely logarithmic in the number of elements inserted after it instead of logarithmic in the number of all elements in the heap. This makes the extraction of recently added elements cheaper. We prove that our working-set property guarantees universal optimality for the problem of ordering vertices by their distance from the source vertex: The sequence of heap operations generated by any run of Dijkstra's algorithm on a fixed graph possesses enough locality that one can couple the number of comparisons performed by any heap with our working-set bound to the minimum number of comparisons required to solve the distance ordering problem on this graph for a worst-case choice of arc lengths.
Bernhard Haeupler, Richard Hladík, Václav Rozhon, Robert E. Tarjan, Jakub Tetek
FOCS2
2020 On the Complexity of a Periodic Scheduling Problem with Precedence Relations
Richard Hladík, Anna Minaeva, Zdenek Hanzálek
COCOA1