VLDB 2026 Research / reviewers in the wild / expert
Jessica Illiano
dblp:302/1060
· DBLP profile ↗
6ranked-venue papers
3as first author
6since 2021 · last 2026
0000-0002-7688-9593ORCID · verified
Domains — the database's venue-derived domains; a paper can count in several
Computer networks · 6 · 3 first-author · 6 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2026 | Entanglement-Based Crossbar for Quantum Routers
Jessica Illiano, Caterina De Risi, Marcello Caleffi, Angela Sara Cacciapuoti |
ICC | 1 |
| 2026 | QPing: A Quantum Ping Primitive for Quantum NetworksabstractWe introduce the concept of Quantum Ping (QPing) as a diagnostic primitive for future quantum networks, designed to assess whether two or more end nodes can establish practical quantum entanglement under given resource and time constraints, with controlled overhead and time-adaptive fidelity thresholds. Unlike classical ping, which probes network-layer connectivity through ICMP messages, our proposed quantum version is adapted to the unique features of quantum networks, where connectivity depends on the availability and quality of shared entanglement. We develop a formal framework for QPing and leverage tools such as sequential hypothesis testing to probe quantum connectivity. We present several strategies, including active strategies with path-based and segment-based variants, and resource-based strategies that utilize pre-shared entangled resources. We further provide a quantitative performance evaluation of these strategies, including diagnostic cost, latency, and feasibility under time-dependent decoherence. QPing can serve as a flexible diagnostic building block for quantum networks, designed to operate alongside fundamental network operations and to accommodate different architectural assumptions and protocol design approaches. Jorge Miguel-Ramiro, Jessica Illiano, Francesco Mazza, Alexander Pirker, Julia Freund, Angela Sara Cacciapuoti, Marcello Caleffi, Wolfgang Dür |
IEEE J. Sel. Areas Commun. | 2 |
| 2024 | Distributed quantum computing: A surveyabstractNowadays, quantum computing has reached the engineering phase, with fully-functional quantum processors integrating hundreds of noisy qubits. Yet – to fully unveil the potential of quantum computing out of the labs into the business reality – the challenge ahead is to substantially scale the qubit number, reaching orders of magnitude exceeding thousands of fault-tolerant qubits. To this aim, the distributed quantum computing paradigm is recognized as the key solution for scaling the number of qubits. Indeed, accordingly to such a paradigm, multiple small-to-moderate-scale quantum processors communicate and cooperate for executing computational tasks exceeding the computational power of single processing devices. The aim of this survey is to provide the reader with an overview about the main challenges and open problems arising with distributed quantum computing from a computer and communications engineering perspective. Furthermore, this survey provides an easy access and guide towards the relevant literature and the prominent results in the field. Marcello Caleffi, Michele Amoretti, Davide Ferrari 0002, Jessica Illiano, Antonio Manzalini, Angela Sara Cacciapuoti |
Comput. Networks | 4 |
| 2024 | Quantum MAC: Genuine Entanglement Access Control via Many-Body Dicke StatesabstractMultipartite entanglement plays a crucial role for the design of the Quantum Internet, due to its peculiarities with no classical counterpart. Yet, for entanglement-based quantum networks, a key open issue is constituted by the lack of an effectiveentanglement access control(EAC) strategy for properly handling and coordinating the quantum nodes in accessing the entangled resource. In this paper, we design aquantum-genuineentanglement access control (EAC) to solve the contention problem arising in accessing a multipartite entangled resource. The proposed quantum-genuine EAC is able to: i) fairly select a subset of nodes granted with the access to the contended resource; ii) preserve the privacy and anonymity of the identities of the selected nodes; iii) avoid to delegate the signaling arising with entanglement access control to the classical network. We also conduct a theoretical analysis of noise effects on the proposed EAC. This theoretical analysis is able to catch the complex noise effects on the EAC through meaningful parameters. Jessica Illiano, Marcello Caleffi, Michele Viscardi, Angela Sara Cacciapuoti |
IEEE Trans. Commun. | 1 |
| 2024 | Multipartite Entanglement Distribution in the Quantum Internet: Knowing When to Stop!abstractMultipartite entanglement distribution is a key functionality of the Quantum Internet. However, quantum entanglement is very fragile, easily degraded by decoherence, which strictly constraints the time horizon within the distribution has to be completed. This, coupled with the quantum noise irremediably impinging on the channels utilized for entanglement distribution, may imply the need to attempt the distribution process multiple times before the targeted network nodes successfully share the desired entangled state. And there is no guarantee that this is accomplished within the time horizon dictated by the coherence times. As a consequence, in noisy scenarios requiring multiple distribution attempts, it may be convenient to stop the distribution process early. In this paper, we take steps in the direction of knowing when to stop the entanglement distribution by developing a theoretical framework, able to capture the quantum noise effects. Specifically, we first prove that the entanglement distribution process can be modeled as a Markov decision process. Then, we prove that the optimal decision policy exhibits attractive features, which we exploit to reduce the computational complexity. The developed framework provides quantum network designers with flexible tools to optimally engineer the design parameters of the entanglement distribution process. Angela Sara Cacciapuoti, Jessica Illiano, Michele Viscardi, Marcello Caleffi |
IEEE Trans. Netw. Serv. Manag. | 2 |
| 2022 | Quantum Internet protocol stack: A comprehensive survey
Jessica Illiano, Marcello Caleffi, Antonio Manzalini, Angela Sara Cacciapuoti |
Comput. Networks | 1 |