VLDB 2026 Research / reviewers in the wild / expert
Zhiwen Zhou 0001
dblp:174/4009-1
· DBLP profile ↗
10ranked-venue papers
2as first author
10since 2021 · last 2026
0009-0009-5617-9496ORCID · verified
Domains — the database's venue-derived domains; a paper can count in several
Computer networks · 7 · 2 first-author · 7 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2026 | Prototype of Joint CKM and 3D Environment Reconstruction System via UAV RF Measurements
Zhiwen Zhou 0001, Shiqi Zeng, Xiaoli Xu 0001, Yong Zeng 0001, Zaichen Zhang, Yongming Huang 0001 |
ICC | 2 |
| 2026 | CKM-Enabled Joint Spatial-Doppler Domain Clutter Suppression for Low-Altitude UAV ISACabstractThe rapid development of low-altitude economy has placed higher demands on the sensing of small-sized unmanned aerial vehicle (UAV) targets. However, the complex and dynamic low-altitude environment, like the urban and mountainous areas, makes clutter a significant factor affecting the sensing performance. Traditional clutter suppression methods based on Doppler difference or signal strength are inadequate for scenarios with dynamic clutter and slow-moving targets like low-altitude UAVs. In this paper, motivated by the concept of channel knowledge map (CKM), we propose a novel clutter suppression technique for orthogonal frequency division multiplexing (OFDM) integrated sensing and communication (ISAC) system, by leveraging a new type of CKM named clutter angle map (CLAM). CLAM is a site-specific database, containing location-specific primary clutter angles for the coverage area of the ISAC base station (BS). With CLAM, the sensing signal components corresponding to the clutter environment can be effectively removed before target detection and parameter estimation, which greatly enhances the sensing performance. Besides, to take into account the scenarios when the targets and clutters are in close directions so that pure CLAM-based spatial domain clutter suppression is no longer effective, we further propose a two-step CLAM-enabled joint spatial-Doppler domain clutter suppression algorithm. Simulation results demonstrate that the proposed technique effectively suppresses clutter and enhances target sensing performance, achieving accurate parameter estimation for sensing slow-moving low-altitude UAV targets. Zhiwen Zhou 0001, Xiaoli Xu 0001, Yong Zeng 0001 |
IEEE Internet Things J. | 2 |
| 2026 | OpenISAC: An Open-Source Real-Time Experimentation Platform for OFDM-ISAC
Zhiwen Zhou 0001, Xiaoli Xu 0001, Yong Zeng 0001 |
IEEE Internet Things J. | 1 |
| 2026 | Movable Antenna for Wireless Communications: Prototyping and Experimental ResultsabstractMovable antenna (MA), which can flexibly change the position of antenna in three-dimensional (3D) continuous space, is an emerging technology for achieving full spatial performance gains. In this paper, a prototype of MA communication system with ultra-accurate movement control is presented to verify the performance gain of MA in practical environments. The prototype utilizes the feedback control to ensure that each power measurement is performed after the MA moves to a designated position. The system operates at 3.5 GHz or 27.5 GHz, where the MA moves along a one-dimensional horizontal line with a step size of 0.01λ and in a two-dimensional square region with a step size of 0.05λ, respectively, with λ denoting the signal wavelength. The scenario with mixed line-of-sight (LoS) and non-LoS (NLoS) links is considered. Extensive experimental results are obtained with the designed prototype and compared with the simulation results, which validate the great potential of MA technology in improving wireless communication performance. For example, the maximum variation of measured power in the considered scenario reaches over 40 dB and 23 dB at 3.5 GHz and 27.5 GHz, respectively, thanks to the flexible antenna movement. In addition, experimental results indicate that the power gain of MA system relies on the estimated path state information (PSI), including the number of paths, their elevation and azimuth angles of arrival (AoAs), as well as the complex gain of each path. Zhenjun Dong, Zhiwen Zhou 0001, Zhiqiang Xiao 0001, Xinrui Li 0001, Hongqi Min, Yong Zeng 0001, Shi Jin 0002, Rui Zhang 0006 |
IEEE Trans. Wirel. Commun. | 2 |
| 2026 | A Novel Cost-Effective MIMO Architecture With Ray Antenna Array for Enhanced Wireless Communication PerformanceabstractThis paper proposes a novel multi-antenna architecture, termed ray antenna array (RAA), which practically enables flexible beamforming and also enhances wireless communication performance for high-frequency systems in a cost-effective manner. RAA consists of a large number of inexpensive antenna elements and a few radio frequency (RF) chains. These antenna elements are arranged in a novel ray-like structure, where each ray corresponds to onesimple uniform linear array(sULA) with a carefully designed orientation. The antenna elements within each sULA are directly connected, so that each sULA is able to form a beam towards a direction matching the ray orientation without relying on any analog or digital beamforming. By further designing a ray selection network (RSN), appropriate sULAs are selected and connected to the RF chains. Compared to conventional multi-antenna architectures such as the uniform linear array (ULA) with hybrid analog/digital beamforming (HBF), the proposed RAA enjoys four appealing advantages: (i) finer and uniform angular resolution for all signal directions; (ii) enhanced beamforming gain by using antenna elements with higher directivity, as each sULA is only responsible for a small portion of the total angle coverage range; (iii) dramatically reduced hardware cost since no phase shifters are required, which are expensive and difficult to design in high-frequency systems such as millimeter wave (mmWave) and Terahertz (THz) systems; (iv) beam squint free, enabling stable beamforming performance in high-frequency wideband communications. To validate such advantages, we first present the input-output mathematical model for RAA-based wireless communications. Efficient algorithms for joint RAA beamforming and ray selection are then proposed for single-user and multi-user RAA-based wireless communications. Simulation results demonstrate that RAA achieves superior performance compared to the conventional ULA with HBF, while significantly reducing hardware cost. Zhenjun Dong, Zhiwen Zhou 0001, Yong Zeng 0001 |
IEEE Trans. Wirel. Commun. | 2 |
| 2026 | Cost-Effective XL-MIMO Communication With Cylinder Directly Connected Antenna ArrayabstractExtremely-large scale MIMO (XL-MIMO) is a key technology for 6G networks, thanks to its superior spatial resolution and beamforming gain. While the recently proposed ray antenna array (RAA) with directly-connected ULAs enables cost-effective beamforming without phase shifters, it may suffer from signal blockage due to coplanar element placement. To address this issue, we propose a cylinder directly-connected antenna array (DCAA) composed of multiple simple uniform circular arrays (sUCAs) in a layered three-dimensional (3D) structure. Each sub-array in sUCA forms a beam aligned with its orientation to achieve full spatial coverage. We characterize the structural design, provide an overall design guideline, and analytically analyze its performance. An input-output signal model is developed for uplink and downlink, along with optimization algorithms to maximize the achievable sum rate. Simulations under 3GPP channels validate the superior performance of the proposed structure, showing that the cylinder DCAA achieves uniform spatial resolution, higher achievable rate, lower hardware cost and power consumption than the conventional ULA with hybrid beamforming (HBF), highlighting its potential for XL-MIMO in millimeter wave (mmWave) and Terahertz (THz) systems. Xuancheng Zhu, Zhiwen Zhou 0001, Zhenjun Dong, Yong Zeng 0001 |
IEEE Trans. Wirel. Commun. | 2 |
| 2025 | Ray Antenna Array: A Novel Cost-Effective Multi-Antenna Architecture for Enhanced Wireless CommunicationabstractThis paper proposes a novel multi-antenna architecture, termed ray antenna array (RAA), which aims to enhance wireless communication performance in a cost-effective manner. RAA is composed of massive cheap antenna elements and a few radio frequency (RF) chains. The massive antenna elements are arranged in a novel ray-like structure, with each ray corresponding to a simple uniform linear array (sULA) with a carefully designed orientation. The antenna elements of each sULA are directly connected to an RF combiner, so that the sULA in each ray is able to form a beam towards a direction matching the ray orientation without relying on any analog or digital beamforming. By further designing a ray selection network (RSN), appropriate sULAs are selected to connect to the RF chains for further baseband processing. Compared to conventional multi-antenna architectures like hybrid analog/digital beamforming (HBF), the proposed RAA has two major advantages. First, it can significantly reduce hardware cost since no phase shifters, which are usually expensive especially in high-frequency systems, are required. Besides, RAA can greatly improve system performance by configuring antenna elements with higher directionality, as each sULA only needs to be responsible for a portion of the total coverage angle. To demonstrate such advantages, in this paper, we first present the input-output model for RAA-based wireless communications, based on which the ray orientations of the RAA are designed. Furthermore, efficient algorithms for joint ray selection and beamforming are proposed for single-user and multi-user RAA-based wireless communications. Simulation results demonstrate the superior performance of RAA compared to HBF while significantly reducing hardware cost. Zhenjun Dong, Zhiwen Zhou 0001, Yong Zeng 0001 |
VTC2025-Spring | 2 |
| 2025 | Efficient Target Recognition Via RCS Profile Estimation for OFDM ISACabstractIn this paper, we propose an integrated sensing and communication (ISAC) target recognition method based on radar cross section (RCS) profile estimation. Compared with traditional recognition methods such as inverse synthetic aperture radar (ISAR), the estimation of target’s RCS features does not require a large signal bandwidth to provide high resolution nor complex signal processing methods. We first study the variation of RCS with the observation angle during the target’s movement. Then, we use Periodogram algorithm for position and RCS estimation based on OFDM echo signal. After that, we create the POFACETS-based RCS database. The result of target recognition is obtained by matching the sampling RCS sequence with the database. Finally, we choose correlation coefficient as the criterion to reduce the complexity of data matching. Simulation results show that an accuracy of approximately 98.7% is achieved in target recognition. Wenzhi Liu, Zhiwen Zhou 0001, Yong Zeng 0001, Kan Wang 0009, Zaichen Zhang |
VTC2025-Fall | 2 |
| 2024 | Fractional Delay Alignment Modulation for Spatially Sparse Wireless CommunicationsabstractDelay alignment modulation (DAM) is a novel transmission technique for wireless systems with high spatial resolution by leveraging delay compensation and path-based beamforming, to mitigate the inter-symbol interference (ISI) without resorting to complex channel equalization or multi-carrier transmission. However, most existing studies on DAM consider a simplified sce-nario by assuming that the channel multi-path delays are integer multiples of the signal sampling interval. This paper investigates DAM for the more general and practical scenarios with fractional multi-path delays. We first analyze the impact of fractional multi-path delays on the existing DAM design, termed integer DAM (iDAM), which can only achieve delay compensations that are integer multiples of the sampling interval. It is revealed that the existence of fractional multi-path delays renders iDAM no longer possible to achieve perfect delay alignment. To address this issue, we propose a more generic DAM design called fractional DAM (fDAM), which achieves fractional delay pre-compensation via upsampling and fractional delay filtering. By leveraging the Farrow filter structure, the proposed approach can eliminate ISI without real-time computation of filter coefficients, as typically required in traditional channel equalization techniques. Simulation results demonstrate that the proposed fDAM outperforms the existing iDAM and orthogonal frequency division multiplexing (OFDM) in terms of symbol error rate (SER) and spectral efficiency, while maintaining a comparable peak-to-average power ratio (PAPR) as iDAM, which is considerably lower than OFDM. Zhiwen Zhou 0001, Zhiqiang Xiao 0001, Yong Zeng 0001 |
WCNC | 1 |
| 2023 | Integrated Super-Resolution Sensing and Communication with 5G NR Waveform: Signal Processing with Uneven CPs and Experiments: (Invited Paper)abstractIntegrated sensing and communication (ISAC) is a promising technology to simultaneously provide high performance wireless communication and radar sensing services in future networks. In this paper, we propose the concept of integrated super-resolution sensing and communication (ISSAC), which uses super-resolution algorithms in ISAC systems to achieve extreme sensing performance for those critical parameters, such as delay, Doppler, and angle of the sensing targets. Based on practical fifth generation (5G) New Radio (NR) wave forms, the signal processing techniques of ISSAC are investigated and prototyping experiments are performed to verify the achievable performance. To this end, we first study the effect of uneven cyclic prefix (CP) lengths of 5G NR orthogonal frequency division multiplexing (OFDM) waveforms on various sensing algorithms. Specifically, the performance of the standard Periodogram based radar processing method, together with the two classical super resolution algorithms, namely, MUltiple SIgnal Classification (MUSIC) and Estimation of Signal Parameter via Rotational Invariance Techniques (ESPRIT) are analyzed in terms of the delay and Doppler estimation. To resolve the uneven CP issue, a new structure of steering vector for MUSIC and a new selection of submatrices for ESPRIT are proposed. Furthermore, an ISSAC experimental platform is setup to validate the theoretical analysis, and the experimental results show that the performance degradation caused by unequal CP length is insignificant and high-resolution delay and Doppler estimation of the target can be achieved with 5G NR waveforms. Zhiwen Zhou 0001, Huizhi Wang, Yong Zeng 0001 |
WiOpt | 2 |