4.7 Article

Integrated Sensing, Computation and Communication in B5G Cellular Internet of Things

Journal

IEEE TRANSACTIONS ON WIRELESS COMMUNICATIONS
Volume 20, Issue 1, Pages 332-344

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TWC.2020.3024787

Keywords

B5G; cellular IoT; integrating SCC; beamforming design

Funding

  1. Zhejiang Provincial Natural Science Foundation of China [LR20F010002]
  2. Natural Science Foundation of China [61871344, 61725104, 61922071]
  3. National Science and Technology Major Project of China [2018ZX03001017-002]
  4. National Key Research and Development Program of China [2018YFB1801104]

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This article investigates the integration of sensing, computation, and communication in B5G cellular IoT networks, proposing a comprehensive design framework and novel techniques to reduce latency and enhance overall performance through coordinated interference management algorithms. Simulation results validate the effectiveness of the proposed algorithms in comparison to baseline methods for B5G cellular IoT networks.
In this article, we investigate the issue of integrated sensing, computation and communication (SCC) in beyond fifth-generation (B5G) cellular internet of things (IoT) networks. According to the characteristics of B5G cellular IoT, a comprehensive design framework integrating SCC is put forward for massive IoT. For sensing, highly accurate sensed information at IoT devices are sent to the base station (BS) by using non-orthogonal communication over wireless multiple access channels. Meanwhile, for computation, a novel technique, namely over-the-air computation (AirComp), is adopted to substantially reduce the latency of massive data aggregation via exploiting the superposition property of wireless multiple access channels. To coordinate the co-channel interference for enhancing the overall performance of B5G cellular IoT integrating SCC, two joint beamforming design algorithms are proposed from the perspectives of the computation error minimization and the weighted sum-rate maximization, respectively. Finally, extensive simulation results validate the effectiveness of the proposed algorithms for B5G cellular IoT over the baseline ones.

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