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Ultra-Massive MIMO with Orthogonal Chirp Division Multiplexing for Near-Field Sensing and Communication Integration

  • Ziwei Wan
  • , Zhen Gao*
  • , Fabien Heliot
  • , Qu Luo
  • , Pei Xiao
  • , Haiyang Zhang
  • , Christos Masouros
  • , Yonina C. Eldar
  • , Sheng Chen
  • *此作品的通讯作者
  • Beijing Institute of Technology
  • University of Surrey
  • MIIT Key Laboratory of Complex-Field Intelligent Sensing
  • Nanjing University of Posts and Telecommunications
  • University College London
  • Weizmann Institute of Science
  • University of Southampton

科研成果: 期刊稿件文章同行评审

摘要

This paper integrates the emerging ultra-massive multiple-input multiple-output (UM-MIMO) technique with orthogonal chirp division multiplexing (OCDM) waveform to tackle the challenging near-field integrated sensing and communication (ISAC) problem. Specifically, we conceive a comprehensive ISAC architecture, where an UM-MIMO base station adopts OCDM waveform for communications and a co-located sensing receiver adopts the frequency-modulated continuous wave (FMCW) detection principle to simplify the associated hardware. For sensing tasks, several OCDM subcarriers, namely, dedicated sensing subcarriers (DSSs), are each transmitted through a dedicated sensing antenna (DSA) within the transmit antenna array. By judiciously designing the DSS selection scheme and optimizing receiver parameters, the FMCW-based sensing receiver can decouple the echo signals from different DSAs with significantly reduced hardware complexity. This setup enables the estimation of ranges and velocities of near-field targets in an antenna-pairwise manner. Moreover, by leveraging the spatial diversity of UM-MIMO, we introduce the concept of virtual bistatic sensing (VIBS), which incorporates the estimates from multiple antenna pairs to achieve high-accuracy target positioning and three-dimensional velocity measurement. The VIBS paradigm is immune to hostile channel environments characterized by spatial non-stationarity and uncorrelated multipath environment. Furthermore, the channel estimation of UM-MIMO OCDM systems enhanced by the sensing results is investigated. Simulation results demonstrate that the proposed ISAC scheme enhances sensing accuracy, and also benefits communication performance.

源语言英语
页(从-至)10155-10172
页数18
期刊IEEE Transactions on Communications
74
DOI
出版状态已出版 - 2026

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