2026· IEEE Transactions on Wireless Communications· Vol 25, pp. 21183-21198· 0 citations· 48 references
Computer Science
Abstract
The evolution toward 6G networks brings near-field propagation, wideband beam squint, and mobility-induced Doppler effects to the forefront of integrated sensing and communication (ISAC). These phenomena impose stringent requirements on estimation accuracy and algorithmic efficiency in massive MIMO systems. This paper develops a unified framework to address these challenges. First, a forced-descent (FD) sampling method is proposed to suppress noise variance and reshape spectral peaks, thereby improving the robustness of near-field range estimation while retaining linear complexity. Second, building on FD-enhanced spectral information, a mobility-aware sensing model is established, which jointly leverages beam squint and Doppler shifts to enable synchronous position-velocity estimation within a single signal frame. This unified formulation replaces the conventional two-stage paradigm of static localization followed by iterative tracking, thus enhancing accuracy and ensuring real-time feasibility. Theoretical analysis establishes the variance-reduction mechanism and derives the associated Cramér-Rao lower bounds, while complexity evaluation confirms scalability. Simulation results demonstrate sub-centimeter-level ranging accuracy and robust velocity estimation performance, validating the practical potential of FD-enhanced near-field sensing for future 6G ISAC systems.
This paper proposes an integrated framework for intelligent reconfigurable surfaces (RIS)-aided near-field simultaneous wireless information and power transfer systems that unifies blind user localization with robust resource allocation. Blind discovery and coarse positioning are achieved via multi-beam scanning with o...
The transition to 6G-and-beyond wireless systems with large-scale antenna arrays and high-frequency deployments significantly extends the near-field region, where channels exhibit a strong dependence on user location. While this enables location-based beam focusing as a low-overhead alternative to conventional channel...
Nima Mozaffarikhosravi, Amirhossein Azarbahram, P. Dharmawansa et al.· 0 citations
Multiple-input multiple-output (MIMO) systems and multibeam phased arrays are essential for modern wireless communications. Conventional fully connected (FC) beamformers achieve the maximum array gain but rely on cross-connection networks with numerous phase shifters, leading to high power consumption and implementatio...
Yi-Qiu Liang, Hong-Ji Fan, Wei-Heng Chen et al.· IEEE transactions on microwa...· 0 citations
This paper proposes a two-stage ISAC framework comprising communication-aware beamforming and antenna placement followed by a dispersion-aware target localization stage, and results show substantial localization gains over various sensing baselines while preserving the achievable communication rate.
Extremely large antenna arrays at high frequencies substantially extend the radiative near-field region in 6G networks, making mobile beam alignment depend jointly on user angle and range. The added range dimension enlarges the beam-search space, making repeated pilot-based sweeping costly under mobility, while sensing...
Junchi Liu, Zi-Jun Wang, Shawn Tsai et al.· 0 citations
A model-driven ISAC framework that supports spectrally efficient multi-user communication while mitigating both S-ICI and D-ICI in sensing is developed, and an intercarrier interference mitigation network (IMNet) is proposed, which exploits the distinct physical structures of the two interferences.
Hyeonho Noh· 0 citations
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