VLDB 2026 Research / reviewers in the wild / expert
Carmen D'Andrea
dblp:176/5228
· DBLP profile ↗
15ranked-venue papers
2as first author
6since 2021 · last 2026
0000-0002-9398-4111ORCID · verified
Domains — the database's venue-derived domains; a paper can count in several
Computer networks · 11 · 1 first-author · 5 since 2021Artificial intelligence and machine learning · 1 · 1 since 2021Databases, data management, data science and information retrieval · 1 · 1 since 2021Graphics, computer vision, multimedia, augmented reality and games · 1Applied, interdisciplinary, general and emerging computing · 1 · 1 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2026 | Scalable Integrated Sensing and Communications for Multi-Target Detection and Tracking in Cell-Free Massive MIMO: A Unified FrameworkabstractThis paper investigates a cell-free massive MIMO (multiple-input multiple-output) system where distributed access points (APs) perform integrated sensing and communications (ISAC) tasks, enabling simultaneous user communication and target detection/tracking. A unified framework and signal model are developed for detecting potential targets and tracking previously detected ones, even in arbitrary positions. Leveraging the Generalized Likelihood Ratio Test technique, novel detection/tracking algorithms are proposed to handle unknown target responses and interference. Scalable AP-user and AP-target association rules are evaluated, explicitly considering multi-zone sensing scenarios. Additionally, a scalable power control mechanism extends fractional power control principles to ISAC, balancing power allocation between communication and sensing tasks. For benchmarking, a non-scalable power control optimization problem is also formulated to maximize the minimum user data rate while ensuring a Quality of Service constraint for sensing, solved via successive convex approximation. Extensive numerical results validate the proposed framework, demonstrating its effectiveness in both communication and sensing, revealing the impact of interference from other targets, and highlighting fundamental trade-offs between sensing and communication performance. Sergi Liesegang, Stefano Buzzi, Carmen D'Andrea |
IEEE Trans. Commun. | 3 |
| 2025 | Approaching Massive MIMO Performance With Reconfigurable Intelligent Surfaces: We Do Not Need Many AntennasabstractThis paper considers an antenna structure where a (non-large) array of radiating elements is placed at short distance in front of a reconfigurable intelligent surface (RIS), herein nicknamed reconfigurable intelligent base station (RIBS). We firstly derive a closed-form expression for the channel between the array of radiating elements and the RIS that captures the near-field effects, and give some considerations on the channel hardening and favorable propagation in this scenario. Focusing on both active and passive RIS, we describe channel estimation and downlink signal processing techniques suitable for the RIBS structure. Additionally, we formulate and solve an optimization problem aimed at maximizing the fairness among the users with respect to the downlink power coefficients and RIS configuration both in the cases of active and passive RIBS. Numerical results show that the proposed structure is effective and capable of outperforming conventional non-RIS aided MIMO systems, especially in the case of active RIBS. The proposed antenna structure is thus shown to be able to approach massive MIMO performance levels in a cost-effective way with reduced hardware resources. Giovanni Interdonato, Francesca Di Murro, Carmen D'Andrea, Giovanni Di Gennaro, Stefano Buzzi |
IEEE Trans. Commun. | 3 |
| 2023 | Cybersecurity in Public Space: Leveraging CNN and LSTM for Proactive Multivariate Time Series ClassificationabstractMobile communications have become a vital domain for criminals and terrorists to exploit vulnerabilities, posing significant threats to public safety and national security. More precisely, they can employ cell site simulators such as International Mobile Subscriber Identity (IMSI) catchers to intercept and monitor mobile communications, enabling eavesdropping, tracking individuals’ movements, and potentially coordinating illegal activities while evading detection by law enforcement agencies. To overcome this issue, an innovative approach to detect IMSI catchers using Convolutional Neural Networks (CNN) and Long Short-Term Memory (LSTM) models is proposed. Leveraging the power of deep learning, the developed models process multivariate time series data to distinguish suspicious patterns indicative of IMSI catcher presence. This work compares nine different model architectures based on CNN, LSTM, or a combination of both through a series of case studies. We demonstrate that LSTM-based and Parallel CNNLSTM models outperform other architectures, achieving high precision and recall rates. Then, the best two models are tested with several sequence lengths. The presented models serve as valuable tools, providing a further enhancement to the security of mobile networks. The goal of this research work is to contribute to the broader mission of integrating artificial intelligence within the daily investigative practices of law enforcement agencies. Aimen Ahmed Al Odaini, Francesco Zola, Lander Segurola, Amaia Gil-Lertxundi, Carmen D'Andrea |
IEEE Big Data | 5 |
| 2023 | Non-Orthogonal Multiplexing of eMBB and URLLC in Multi-cell Massive MIMOabstractThe non-orthogonal coexistence between the enhanced mobile broadband (eMBB) and the ultra-reliable low-latency communication (URLLC) in the downlink of a multi-cell massive MIMO system is investigated in this work. We provide a unified information-theoretic framework blending an infinite-blocklength analysis of the eMBB spectral efficiency (SE) in the ergodic regime with a finite-blocklength analysis of the URLLC error probability. Puncturing (PUNC) and superposition coding (SPC) are considered as alternative coexistence strategies to deal with the inter-service interference. eMBB and URLLC performances are then evaluated over different precoding techniques and power control schemes, by accounting for imperfect channel state information knowledge at the base stations, pilot-based estimation overhead, spatially correlated channels, and the structure of the radio frame. Simulation results reveal that SPC is, in many operating regimes, superior to PUNC in providing higher SE for the eMBB yet achieving the target reliability for the URLLC with high probability. However, PUNC turns to be necessary to preserve the URLLC performance in scenarios where the multi-user interference cannot be satisfactorily alleviated. Giovanni Interdonato, Stefano Buzzi, Carmen D'Andrea, Luca Venturino |
WCNC | 3 |
| 2022 | Multi-UE Multi-AP Beam Alignment in User-Centric Cell-Free Massive MIMO Systems Operating at mmWaveabstractThis paper considers the problem of beam alignment in a cell-free massive MIMO deployment with multiple access points (APs) and multiple user equipments (UEs) simultaneously operating in the same millimeter wave frequency band. Assuming the availability of a control channel at sub-6 GHz frequencies, a protocol is developed that permits estimating, for each UE, the strongest propagation path from each of the surrounding APs, and to perform user-centric association between the UEs and the APs. Estimation of the strongest paths from nearby APs is realized at the UE in a one-phase procedure, during which all the APs simultaneously transmit on pseudo-randomly selected channels with pseudo-random transmit beamformers. An algorithm for orthogonal channels assignment to the APs is also proposed, with the aim of minimizing the mutual interference between APs that transmit on the same channels. The performance of the proposed strategy is evaluated both in terms of probability of correct detection of the directions of arrival and of departure associated to the strongest beam from nearby APs, and in terms of downlink and uplink signal-to-interference-plus-noise ratio. Numerical results show that the proposed approach is effective and capable of efficiently realizing beam alignment in a multi-UE multi-AP wireless scenario. Stefano Buzzi, Carmen D'Andrea, Maria Fresia |
IEEE Trans. Wirel. Commun. | 2 |
| 2021 | Beam Alignment in mmWave User-Centric Cell-Free Massive MIMO SystemsabstractThe problem of beam alignment (BA) in a cell-free massive multiple-input multiple-output (CF-mMIMO) system operating at millimeter wave (mmWaves) carrier frequencies is considered in this paper. Two estimation algorithms are proposed, in association with a protocol that permits simultaneous estimation, on a shared set of frequencies, for each user equipment (UE), of the direction of arrival and departure of the radio waves associated to the strongest propagation paths from each of the surrounding access points (APs), so that UE-AP association can take place. The proposed procedure relies on the existence of a reliable control channel at sub-6 GHz frequency, so as to enable exchange of estimated values between the UEs and the network, and assumes that APs can be identifies based on the prior knowledge of the orthogonal channels and transmit beamforming codebook. A strategy for assigning codebook entries to the several APs is also proposed, with the aim of minimizing the mutual interference between APs that are assigned the same entry. Numerical results show the effectiveness of the proposed detection strategy, thus enabling one shot fast BA for CF-mMIMO systems. Stefano Buzzi, Carmen D'Andrea, Maria Fresia |
GLOBECOM | 2 |
| 2020 | Resource Allocation in Wireless Networks Assisted by Reconfigurable Intelligent SurfacesabstractReconfigurable Intelligent Surfaces (RISs) are recently attracting a wide interest due to their capability of tuning wireless propagation environments in order to increase the system performance of wireless networks. In this paper, a multi-user single-cell wireless network assisted by a RIS is studied. First of all, for the special case of a single-user system, three possible approaches are shown in order to optimize the Signal-to-Noise Ratio with respect to the beamformer used at the base station and to the RIS phase shifts. Then, for a multi-user system, assuming channel-matched beamforming, the geometric mean of the downlink Signal-to-Interference plus Noise Ratios across users is maximized with respect to the base stations transmit powers and RIS phase shifts configurations. Numerical results show that the proposed procedures are effective and greatly improve the performance of the system. Stefano Buzzi, Carmen D'Andrea, Alessio Zappone, Maria Fresia, Shulan Feng |
PIMRC | 2 |
| 2020 | User-Centric 5G Cellular Networks: Resource Allocation and Comparison With the Cell-Free Massive MIMO ApproachabstractRecently, the so-called cell-free (CF) massive multiple-input multiple-output (MIMO) architecture has been introduced, wherein a very large number of distributed access points (APs) simultaneously and jointly serve a much smaller number of mobile stations (MSs). The paper extends the CF approach to the case in which both the APs and the MSs are equipped with multiple antennas, proposing a beamfoming scheme that, relying on the zero-forcing strategy, does not require channel estimation at the MSs. We contrast the originally proposed formulation of CF massive MIMO with a user-centric (UC) approach wherein each MS is served only by a limited number of APs. Exploiting the framework of successive lower-bound maximization, the paper also proposes and analyzes power allocation strategies aimed at either sum-rate maximization or minimum-rate maximization, both for the uplink and downlink. Results show that the UC approach, which requires smaller backhaul overhead and is more scalable that the CF deployment, also achieves generally better performance than the CF approach for the vast majority of the users, especially on the uplink. Stefano Buzzi, Carmen D'Andrea, Alessio Zappone, Ciro D'Elia |
IEEE Trans. Wirel. Commun. | 2 |
| 2020 | Communications and Radar Coexistence in the Massive MIMO Regime: Uplink AnalysisabstractThis paper considers the uplink of a massive MIMO communication system using 5G New Radio-compliant multiple access, which has to co-exist with a radar system using the same frequency band. A system model taking into account the reverberation (clutter) produced by the radar system onto the massive MIMO receiver is proposed. In this scenario, several receivers for uplink channel estimation and data detection are proposed, ranging from the simple channel-matched beamformer to the zero-forcing and linear minimum mean square error receivers for clutter disturbance rejection, under the two opposite situations of perfectly known and completely unknown clutter covariance. A theoretical analysis is also provided, deriving a lower bound on the achievable uplink spectral efficiency and the mutual information between the input Gaussian-encoded symbols and the observables available at the communication receiver of the cellular massive MIMO system: regarding the latter, in particular, it is shown that, in the large antenna number regime, and under the assumption of perfect channel state information (CSI), the effect of radar clutter at the base station is suppressed and single-user capacity may be restored. Numerical results, illustrating the performance of the proposed detection schemes, confirm the findings of the theoretical analysis, and permit quantifying the system robustness to clutter effect for increasing number of antennas at the base station. Carmen D'Andrea, Stefano Buzzi, Marco Lops |
IEEE Trans. Wirel. Commun. | 1 |
| 2019 | On Massive MIMO Cellular Systems Resilience to Radar InterferenceabstractIn this paper we consider a massive multiple-input multiple-output (MIMO) communication system using 5G New Radio-compliant multiple access, which is to co-exist with a radar system using the same frequency band. Building upon a recently proposed system model taking into account the reverberation (clutter) produced by the radar system at the massive MIMO receiver, we provide a theoretical analysis, in terms of a lower bound on the achievable uplink (UL) spectral efficiency (SE) and in terms of the mutual information of the cellular massive MIMO system, showing that for large number of antennas at the base station the radar clutter effects can be suppressed. Simulation results confirm the paper theoretical findings. Stefano Buzzi, Carmen D'Andrea, Marco Lops |
ICASSP | 2 |
| 2019 | Subspace Tracking and Least Squares Approaches to Channel Estimation in Millimeter Wave Multiuser MIMOabstractThe problem of multiple-input multiple-output (MIMO) channel estimation at millimeter-wave frequencies, both in single-user setting and in multi-user setting, is tackled in this paper. Using a subspace approach, we develop a protocol enabling the estimation of the right (respectively, left) singular vectors at the transmitter (respectively, receiver) side; then, we adapt the projection approximation subspace tracking with deflation and the orthogonal Oja algorithms to our framework and obtain two-channel estimation algorithms. We also present an alternative algorithm based on the least squares approach. The hybrid analog/digital nature of the beamformer is also explicitly taken into account at the algorithm design stage. In order to limit the system complexity, a fixed analog beamformer is used at both sides of the communication links. The obtained numerical results, showing the accuracy in the estimation of the channel matrix dominant singular vectors, the system achievable spectral efficiency, and the system bit error rate, prove that the proposed algorithms are effective and that they compare favorably, in terms of the performance-complexity tradeoff, with respect to several competing alternatives. Stefano Buzzi, Carmen D'Andrea |
IEEE Trans. Commun. | 2 |
| 2019 | MIMO-UFMC Transceiver Schemes for Millimeter-Wave Wireless CommunicationsabstractThe universal filtered multicarrier (UFMC) modulation is among the most considered solutions for the realization of beyond orthogonal frequency division multiplexing (OFDM) air interfaces for future wireless networks. This paper focuses on the design and analysis of a UFMC transceiver equipped with multiple antennas and operating at millimeter-wave carrier frequencies. This paper provides the full mathematical model of an MIMO-UFMC transceiver, taking into account the presence of hybrid analog/digital beamformers at both ends of the communication links. Then, several detection structures are proposed, both for the case of single-packet isolated transmission and for the case of multiple-packet continuous transmission. In the latter situation, this paper also considers the case in which no guard time among adjacent packets is inserted, trading off an increased level of interference with higher values of spectral efficiency. At the analysis stage, several considered detection structures and transmission schemes are compared in terms of bit-error rate, root-mean-square error, and system throughput. The numerical results show that the proposed transceiver algorithms are effective and that the linear minimum mean-square error (MMSE) data detector is capable of well managing the increased interference brought by the removal of guard times among consecutive packets, thus yielding throughput gains of about 10%-13%. The effect of phase noise at the receiver is also numerically assessed, and it is shown that the recursive implementation of the linear MMSE exhibits some degree of robustness against this disturbance. Stefano Buzzi, Carmen D'Andrea, Shulan Feng |
IEEE Trans. Commun. | 2 |
| 2018 | Adaptive Data Detection in Phase-Noise Impaired MIMO-UFMC Systems at mmWaveabstractThis paper provides results on the use of the Universal Filtered MultiCarrier (UFMC) modulation scheme in multiple-input-multiple-output (MIMO) wireless links operating at millimeter wave (mmWave) frequencies. After having provided mathematical details on the MIMO-UFMC signal model, taking into account both the hybrid analog/digital nature of the beamformers and the phase noise (PN) at the receiver, we propose adaptive algorithms, based on the normalized least-mean-squares (NLMS) and on the recursive-least-squares (RLS), for low-complexity data-detection. The proposed transceiver also includes a channel independent transmit beamformer, so as to avoid the need for channel state information at the transmitter, as well as a transmission format wherein no spacing between consecutive data packets is adopted, in order to have increased spectral efficiency. Numerical results show that the proposed algorithms exhibit a certain amount of robustness to the PN and achieve satisfactory performance. Carmen D'Andrea, Stefano Buzzi, Shulan Feng |
PIMRC | 1 |
| 2018 | Single-Carrier Modulation Versus OFDM for Millimeter-Wave Wireless MIMOabstractThis paper presents results on the achievable spectral efficiency and on the energy efficiency for a wireless multiple-input-multiple-output (MIMO) link operating at millimeter wave frequencies (mmWave) in a typical 5G scenario. Two different single-carrier modem schemes are considered, i.e., a traditional modulation scheme with linear equalization at the receiver, and a single-carrier modulation with cyclic prefix, frequency-domain equalization and fast Fourier transform-based processing at the receiver; these two schemes are compared with a conventional MIMO orthogonal frequency division multiplexing transceiver structure. Our analysis jointly takes into account the peculiar characteristics of MIMO channels at mmWave frequencies, the use of hybrid (analog-digital) pre-coding and post-coding beamformers, the finite cardinality of the modulation structure, and the non-linear behavior of the transmitter power amplifiers. Our results show that the best performance is achieved by single-carrier modulation with time-domain equalization, which exhibits the smallest loss due to the non-linear distortion, and whose performance can be further improved by using advanced equalization schemes. Results also confirm that performance gets severely degraded when the link length exceeds 90–100 m and the transmit power falls below 0 dBW. Stefano Buzzi, Carmen D'Andrea, Tommaso Foggi, Alessandro Ugolini, Giulio Colavolpe |
IEEE Trans. Commun. | 2 |
| 2016 | Doubly Massive mmWave MIMO Systems: Using Very Large Antenna Arrays at Both Transmitter and ReceiverabstractOne of the key features of next generation wireless communication systems will be the use of frequencies in the range 10-100GHz (aka mmWave band) in densely populated indoor and outdoor scenarios. Due to the reduced wavelength, antenna arrays with a large number of antennas can be packed in very small volumes, making thus it possible to consider, at least in principle, communication links wherein not only the base-station, but also the user device, are equipped with very large antenna arrays. We denote this configuration as a ``doubly-massive'' MIMO wireless link. This paper introduces the concept of doubly massive MIMO systems at mmWave, showing that at mmWave the fundamentals of the massive MIMO regime are completely different from what happens at conventional sub-6 GHz cellular frequencies. It is shown for instance that the multiplexing capabilities of the channel and its rank are no longer ruled by the number of transmit and receive antennas, but rather by the number of scattering clusters in the surrounding environment. The implications of the doubly massive MIMO regime on the transceiver processing, on the system energy efficiency and on the system throughput are also discussed. Stefano Buzzi, Carmen D'Andrea |
GLOBECOM | 2 |