VLDB 2026 Research / reviewers in the wild / expert
Onur Dizdar
dblp:117/5587
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13ranked-venue papers
6as first author
9since 2021 · last 2026
0000-0001-5849-6887ORCID · verified
Domains — the database's venue-derived domains; a paper can count in several
Computer networks · 9 · 3 first-author · 8 since 2021Security and privacy · 1 · 1 first-author · 1 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2026 | NeuromorphicRx: From Neural to Spiking ReceiverabstractIn this work, we propose a novel energy-efficient spiking neural network (SNN)-based receiver for 5G-NR OFDM system, called neuromorphic receiver (NeuromorphicRx), replacing the channel estimation, equalization and symbol demapping blocks. We leverage domain knowledge to design the input with spiking encoding and propose a deep convolutional SNN with spike-element-wise residual connections. We integrate an SNN with artificial neural network (ANN) hybrid architecture to obtain soft outputs and employ surrogate gradient descent for training. We focus on generalization across diverse scenarios and robustness through quantized aware training. We focus on interpretability of NeuromorphicRx for 5G-NR signals and perform detailed ablation study for 5G-NR signals. Our extensive numerical simulations show that NeuromorphicRx is capable of achieving significant block error rate performance gain compared to 5G-NR receivers and similar performance compared to its ANN-based counterparts with 7.6× less energy consumption. Ankit Gupta 0008, Onur Dizdar, Yun Chen 0006, Fehmi Emre Kadan, Ata Sattarzadeh, Stephen Wang 0001 |
IEEE Trans. Wirel. Commun. | 2 |
| 2025 | OFDM-RSMA: Robust Transmission Under Inter-Carrier InterferenceabstractRSMA is a multiple access method designated to counteract the effects of the multi-user interference (MUI) present in multi-antenna systems. In this study, rate-splitting multiple access (RSMA)’s ability to manage interference is integrated with the flexibility of orthogonal frequency division multiplexing (OFDM) waveform incorporating multi-numerology concept. This fusion aims to confront the issue of inter-carrier interference (ICI) which compromises the orthogonality of OFDM subcarriers. Sum-rate maximization problem is formulated aiming to determine the optimal power and subcarrier allocation for downlink communication in a system with two users. We utilize a transformation grounded in the weighted minimum mean-square error (WMMSE) approach to address the non-convex problem. We show that the marriage of rate-splitting (RS) with OFDM provides complementary strengths to cope with peculiar characteristic of wireless medium and its performance-limiting challenges including ICI, inter-symbol interference (ISI), inter-numerology interference (INI), and MUI. The sum-rate and fairness performance of the proposed multi-numerology OFDM-RSMA approach is numerically evaluated against traditional orthogonal frequency division multiple access (OFDMA) and OFDM-non-orthogonal multiple access (NOMA). Mehmet Mert Sahin, Onur Dizdar, Bruno Clerckx, Hüseyin Arslan |
IEEE Trans. Commun. | 2 |
| 2024 | Hybrid Automatic Repeat Request for Downlink Rate-Splitting Multiple AccessabstractThis work investigates the design of Hybrid Automatic Repeat Request (HARQ) strategies for downlink Rate-Splitting Multiple Access (RSMA). The existence of private and common stream as well as their conditioning for Successive Interference Cancellation (SIC), gives rise to an expanded set of opportunities for retransmission of failed packets. Specifically, we devise a scheme in which the retransmissions are scheduled through the common stream, which offers a higher success probability. With this, the common stream needs to carry both new and retransmitted bits, which leads to a layered HARQ (L-HARQ) strategy which is capable of trading off throughput and reliability. Simulation results demonstrate that the devised HARQ scheme outperforms RSMA with conventional HARQ, where each retransmission is handled independently through its own stream. It also helps in closing the throughput gap between HARQ and Adaptive Modulation and Coding (AMC) in the high Signal-to-Noise Ratio (SNR) regime while also achieving a decreased Packet Error Rate (PER) and a lower latency. Rafael Cerna-Loli, Onur Dizdar, Bruno Clerckx, Petar Popovski |
IEEE Trans. Wirel. Commun. | 2 |
| 2024 | RSMA for Overloaded MIMO Networks: Low-Complexity Design for Max-Min FairnessabstractRate-Splitting Multiple Access (RSMA) is a robust multiple access scheme for multi-antenna wireless networks. In this work, we study the performance of RSMA in downlink overloaded networks, where the number of transmit antennas is smaller than the number of users. RSMA has been investigated in overloaded networks in previous works by formulated optimization problems and their solutions by interior-point methods. This limits the practical use of such designs in practical systems. Our aim is to develop low-complexity precoding, rate, and power allocation techniques for RSMA for its use in practical overloaded networks. First, we provide analysis and closed-form expressions for optimal power and rate allocations considering max-min fairness when low-complexity precoders are employed. The derived closed-form solutions are used to propose a low-complexity RSMA system design for precoder selection and resource allocation for arbitrary number of users and antennas under perfect and imperfect Channel State Information at the Transmitter (CSIT). We compare the performance of the proposed design with benchmark designs based on Space Division Multiple Access (SDMA) with and without user scheduling. By numerical results, we show that the proposed low-complexity RSMA design achieves a significantly higher rate compared to the SDMA-based benchmark designs under perfect and imperfect CSIT. Onur Dizdar, Ata Sattarzadeh, Yi Xien Yap, Stephen Wang 0001 |
IEEE Trans. Wirel. Commun. | 1 |
| 2023 | A Proof of Concept for OTFS Resilience in Doubly-Selective Channels by GPU-Enabled Real-Time SDRabstractOrthogonal time frequency space (OTFS) is a modulation technique which is robust against the disruptive effects of doubly-selective channels. In this paper, we perform an experimental study of OTFS by a real-time software defined radio (SDR) setup. Our SDR consists of a Graphical Processing Unit (GPU) for signal processing programmed using Sionna and TensorFlow, and Universal Software Radio Peripheral (USRP) devices for air interface. We implement a low-latency transceiver structure for OTFS and investigate its performance under various Doppler values. By comparing the performance of OTFS with Orthogonal Frequency Division Multiplexing (OFDM), we demonstrate that OTFS is highly robust against the disruptive effects of doubly-selective channels in a real-time experimental setup. Yi Xien Yap, Neil Bhushan, Onur Dizdar, Ata Sattarzadeh, David Redgate, Venkateswara Battula, Stephen Wang 0001 |
GLOBECOM | 3 |
| 2023 | Model-Based Deep Learning Receiver Design for Rate-Splitting Multiple AccessabstractEffective and adaptive interference management is required in next generation wireless communication systems. To address this challenge, Rate-Splitting Multiple Access (RSMA), relying on multi-antenna rate-splitting (RS) at the transmitter and successive interference cancellation (SIC) at the receivers, has been intensively studied in recent years, albeit mostly under the assumption of perfect Channel State Information at the Receiver (CSIR) and ideal capacity-achieving modulation and coding schemes. To assess its practical performance, benefits, and limits under more realistic conditions, this work proposes a novel design for a practical RSMA receiver based on model-based deep learning (MBDL) methods, which aims to unite the simple structure of the conventional SIC receiver and the robustness and model agnosticism of deep learning techniques. The MBDL receiver is evaluated in terms of uncoded Symbol Error Rate (SER), throughput performance through Link-Level Simulations (LLS), and average training overhead. Also, a comparison with the SIC receiver, with perfect and imperfect CSIR, is given. Results reveal that the MBDL receiver outperforms by a significant margin the SIC receiver with imperfect CSIR, due to its ability to generate on demand non-linear symbol detection boundaries in a pure data-driven manner. Rafael Cerna-Loli, Onur Dizdar, Bruno Clerckx, Cong Ling 0001 |
IEEE Trans. Wirel. Commun. | 2 |
| 2022 | Rate-Splitting Multiple Access for Downlink Multiuser MIMO: Precoder Optimization and PHY-Layer DesignabstractRate-Splitting Multiple Access (RSMA) has recently appeared as a powerful and robust multiple access and interference management strategy for downlink Multi-user (MU) multi-antenna communications. In this work, we study the precoder design problem for RSMA scheme in downlink MU systems with both perfect and imperfect Channel State Information at the Transmitter (CSIT) and assess the role and benefits of transmitting multiple common streams. Unlike existing works which have considered single-antenna receivers (Multiple-Input Single-Output–MISO), we propose and extend the RSMA framework for multi-antenna receivers (Multiple-Input Multiple-Output–MIMO) and formulate the precoder optimization problem with the aim of maximizing the Weighted Ergodic Sum-Rate (WESR). Precoder optimization is solved using Sample Average Approximation (SAA) together with the proposed vectorization and Weighted Minimum Mean Square Error (WMMSE) based approach. Achievable sum-Degree of Freedom (DoF) of RSMA is derived for the proposed framework as an increasing function of the number of transmitted common and private streams, which is further validated by the Ergodic Sum Rate (ESR) performance using Monte Carlo simulations. Conventional MU–MIMO based on linear precoders and Non-Orthogonal Multiple Access (NOMA) schemes are considered as baselines. Numerical results show that with imperfect CSIT, the sum-DoF and ESR performance of RSMA is superior to those of the two baselines, and is increasing with the number of transmitted common streams. Moreover, by better managing the interference, RSMA not only has significant ESR gains over baseline schemes but is more robust to CSIT inaccuracies, network loads and user deployments. Anup Mishra, Yijie Mao, Onur Dizdar, Bruno Clerckx |
IEEE Trans. Commun. | 3 |
| 2022 | Rate-Splitting Multiple Access for Communications and Jamming in Multi-Antenna Multi-Carrier Cognitive Radio SystemsabstractWith the increasing number of wireless communication systems and the demand for bandwidth, the wireless medium has become a congested and contested environment. Operating under such an environment brings several challenges, especially for military communication systems, which need to guarantee reliable communication while avoiding interfering with other friendly or neutral systems and denying the enemy systems of service. In this work, we investigate a novel application of Rate-Splitting Multiple Access (RSMA) for joint communications and jamming with a Multi-Carrier (MC) waveform in a multi-antenna Cognitive Radio (CR) system. RSMA is a robust multiple access scheme for downlink multi-antenna wireless networks. RSMA relies on multi-antenna Rate-Splitting (RS) strategy at the transmitter and Successive Interference Cancellation (SIC) at the receivers. By employing RSMA at the secondary transmitter, our aim is to simultaneously communicate with Secondary Users (SUs) and jam Adversarial Users (AUs) to disrupt their communications while limiting the interference to Primary Users (PUs) in a setting where all users perform broadband communications by MC waveforms in their respective networks. We consider the practical setting of imperfect CSI at Transmitter (CSIT) for the SUs and PUs, and statistical CSIT for AUs. We formulate a problem to obtain optimal precoders which maximize the mutual information under interference and jamming power constraints. We propose an Alternating Optimization-Alternating Direction Method of Multipliers (AO-ADMM) based algorithm for solving the resulting non-convex problem. We perform an analysis based on Karush-Kuhn-Tucker (KKT) conditions to determine the optimal jamming and interference power thresholds that guarantee the feasibility of problem and propose a practical algorithm to calculate the interference power threshold. By simulation results, we demonstrate that RSMA achieves a higher sum-rate performance than Space Division Multiple Access (SDMA) and Non-Orthogonal Multiple Access (NOMA). Onur Dizdar, Bruno Clerckx |
IEEE Trans. Inf. Forensics Secur. | 1 |
| 2021 | Rate-Splitting Multiple Access to Mitigate the Curse of Mobility in (Massive) MIMO NetworksabstractRate-Splitting Multiple Access (RSMA) is a robust multiple access scheme for downlink multi-antenna wireless networks. RSMA relies on multi-antenna Rate-Splitting (RS) at the transmitter and Successive Interference Cancellation (SIC) at the receivers. In this work, we study the performance of RSMA under the important setup of imperfect Channel State Information at the Transmitter (CSIT) originating from user mobility and latency/delay (between CSI acquisition and data transmission) in the network. We derive a lower bound on the ergodic sum-rate of RSMA for an arbitrary number of transmit antennas, number of users, user speed and transmit power. Then, we study the power allocation between common and private streams and obtain a closed-form solution for optimal power allocation that maximizes the obtained lower bound. The proposed power allocation greatly reduces precoder design complexity for RSMA. By Link-Level Simulations (LLS), we demonstrate that RSMA with the proposed power allocation is robust to the degrading effects of user mobility and has significantly higher performance compared to conventional multi-user (massive) Multiple-Input Multiple-Output (MIMO) strategies. The work has important practical significance as results demonstrate that, in contrast to conventional multi-user (massive) MIMO whose performance collapse under mobility, RSMA can maintain reliable multi-user connectivity in mobile deployments. Onur Dizdar, Yijie Mao, Bruno Clerckx |
IEEE Trans. Commun. | 1 |
| 2020 | Rate-Splitting Multiple Access for Downlink Multi-Antenna Communications: Physical Layer Design and Link-level SimulationsabstractRate-Splitting Multiple Access (RSMA) is an emerging flexible, robust and powerful multiple access scheme for downlink multi-antenna wireless networks. RSMA relies on multi-antenna Rate-Splitting (RS) strategies at the transmitter and Successive Interference Cancellation (SIC) at the receivers, and has the unique ability to partially decode interference and partially treat interference as noise so as to softly bridge the two extremes of fully decoding interference (as in Non-Orthogonal Multiple Access, NOMA) and treating interference as noise (as in Space Division Multiple Access, SDMA or Multi-User Multiple-Input Multiple-Output, MU-MIMO). RSMA has been shown to provide significant room for spectral efficiency, energy efficiency, Quality-of-Service enhancements, robustness to Channel State Information (CSI) imperfections, as well as feedback overhead and complexity reduction, in a wide range of network loads (underloaded and overloaded regimes) and user deployments (with a diversity of channel directions, channel strengths and qualities). RSMA is also deeply rooted and motivated by recent advances in understanding the fundamental limits of multi-antenna networks with imperfect CSI at the Transmitter (CSIT). In this work, we leverage recent results on the optimization of RSMA and design for the first time its physical layer, accounting for modulation, coding (using polar codes), message split, adaptive modulation and coding, and SIC receiver. Link-level evaluations confirm the significant throughput benefits of RSMA over various baselines as SDMA and NOMA. Onur Dizdar, Yijie Mao, Wei Han 0003, Bruno Clerckx |
PIMRC | 1 |
| 2020 | Rate-Splitting Multiple Access: A New Frontier for the PHY Layer of 6GabstractIn order to efficiently cope with the high throughput, reliability, heterogeneity of Quality-of-Service (QoS), and massive connectivity requirements of future 6G multi-antenna wireless networks, multiple access and multiuser communication system design need to depart from conventional interference management strategies, namely fully treat interference as noise (as commonly used in 4G/5G, MU-MIMO, CoMP, Massive MIMO, millimetre wave MIMO) and fully decode interference (as in Non-Orthogonal Multiple Access, NOMA). This paper is dedicated to the theory and applications of a more general and powerful transmission framework based on Rate-Splitting Multiple Access (RSMA) that splits messages into common and private parts and enables to partially decode interference and treat remaining part of the interference as noise. This enables RSMA to softly bridge and therefore reconcile the two extreme strategies of fully decode interference and treat interference as noise and provide room for spectral efficiency, energy efficiency and QoS enhancements, robustness to imperfect Channel State Information at the Transmitter (CSIT), and complexity reduction. This paper provides an overview of RSMA and its potential to address the requirements of 6G. Onur Dizdar, Yijie Mao, Wei Han 0003, Bruno Clerckx |
VTC Fall | 1 |
| 2019 | Filtering for Uplink Non-Orthogonal Multiple Access with Imperfect Received Power ControlabstractIn this work, we propose a low-complexity enhancement for uplink non-orthogonal multiple access (NOMA). The proposed scheme, called Filtered NOMA (F-NOMA) aims to improve the error performance for scenarios in which the received user powers cannot be controlled perfectly at the receiver. The proposed scheme benefits from the uniqueness of the frequency spectrums of the superimposed signals to detect the signals of multiplexed users at the receiver. We demonstrate that the proposed scheme improves the error performance of uplink power-domain NOMA significantly and increases the number of supported users. We also show that the scheme also brings an improvement in the error performance of other uplink NOMA methods, which already benefit from different types of user specific signatures. Onur Dizdar, Alptekin Yilmaz |
PIMRC | 2 |
| 2012 | Blind Channel Estimation Based on the Lloyd-Max Algorithm in Narrowband Fading Channels and Partial-Band JammingabstractIn wireless communications, knowledge of the channel coefficients is required for coherent demodulation. In this work, a blind channel estimation method based on the Lloyd-Max algorithm is proposed for single-tap fading channels. The algorithm estimates the constellation points for the received signal using the Lloyd-Max algorithm. The algorithm is investigated for frequency hopping systems with small hop durations and operating under partial-band jamming for both detecting the jammer and estimating the channel. The performance of the Lloyd-Max channel estimation algorithm is compared to the performance of pilot-based channel estimation algorithms and non-coherent demodulation and decoding. A special concatenated channel code is constructed to work with the proposed blind channel estimation due to the phase ambiguity in estimates. Onur Dizdar, Ali Özgür Yilmaz |
IEEE Trans. Commun. | 1 |