Davide Della Giustina

dblp:133/7161 · DBLP profile ↗
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5ranked-venue papers
3as first author
2since 2021 · last 2024
—ORCID · conflict

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

Systems, architecture and hardware · 1Computer networks · 1Software engineering, systems software and programming languages · 1 · 1 first-author · 1 since 2021Databases, data management, data science and information retrieval · 1 · 1 first-authorTheory of computation · 1 · 1 first-author · 1 since 2021Applied, interdisciplinary, general and emerging computing · 1 · 1 first-author · 1 since 2021
YearPublicationVenuePosition
2024 Quantum encoding of dynamic directed graphs
abstract
In application domains such as routing, network analysis, scheduling, and planning, directed graphs are widely used as both formal models and core data structures for the development of efficient algorithmic solutions. In these areas, graphs are often evolving in time: for example, connection links may fail due to temporary technical issues, meaning that edges of the graph cannot be traversed for some time interval and alternative paths have to be followed. In classical computation graphs have been implemented both explicitly through adjacency matrices/lists and symbolically as ordered binary decision diagrams. Moreover, ad-hoc visit procedures have been developed to deal with dynamically evolving graphs. Quantum computation, exploiting interference and entanglement, has provided an exponential speed-up for specific problems, e.g., database search and integer factorization. In the quantum framework everything must be represented and manipulated using reversible operators. This poses a challenge when one has to deal with traversals of dynamically evolving directed graphs. Graph traversals are not intrinsically reversible because of converging paths. In the case of dynamically evolving graphs also the creation/destruction of paths comes into play against reversibility. In this paper we propose a novel high level graph representation in quantum computation supporting dynamic connectivity typical of real-world network applications. Our procedure allows to encode any multigraph into a unitary matrix. We devise algorithms for computing the encoding that are optimal in terms of time and space and we show the effectiveness of the proposal with some examples. We describe how to react to edge/node failures in constant time. Furthermore, we present two methods to perform quantum random walks taking advantage of this encoding: with and without projectors. We implement and test our encoding obtaining that the theoretical bounds for the running time are confirmed by the empirical results and providing more details on the behavior of the algorithms over graphs of different densities.
Davide Della Giustina, C. Londero, Carla Piazza, Brian Riccardi, Riccardo Romanello
J. Log. Algebraic Methods Program.1
2022 Directed Graph Encoding in Quantum Computing Supporting Edge-Failures
Davide Della Giustina, Carla Piazza, Brian Riccardi, Riccardo Romanello
RC1
2019 A New Linear-Time Algorithm for Centroid Decomposition
Davide Della Giustina, Nicola Prezza, Rossano Venturini
SPIRE1
2018 Experiences of Laboratory and Field Demonstrations of Distribution Network Congestion Management
abstract
This paper presents experiences of laboratory testing and field demonstration of a distribution network congestion management algorithm. Development process for new smart grid functionalities and automation architectures is discussed both in general level and through the example case of congestion management. The practical implementation of the developed algorithm is explained and test setups in all development process steps (offline simulations, laboratory testing and field demonstration) are presented. The objectives in different stages of the algorithm development and testing process are discussed and lessons learned from all the steps are represented.
Anna Kulmala, Andrea Angioni, Sami Repo, Davide Della Giustina, Antimo Barbato, Ferdinanda Ponci
IECON4
2016 Time synchronization over heterogeneous network for smart grid application: Design and characterization of a real case
Stefano Rinaldi, Davide Della Giustina, Paolo Ferrari 0001, Alessandra Flammini, Emiliano Sisinni
Ad Hoc Networks2