4.7 Article

Low-Complexity High-Performance Cyclic Caching for Large MISO Systems

期刊

IEEE TRANSACTIONS ON WIRELESS COMMUNICATIONS
卷 21, 期 5, 页码 3263-3278

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TWC.2021.3119772

关键词

Complexity theory; Wireless communication; Multiplexing; Signal to noise ratio; Array signal processing; Antenna arrays; Transmitting antennas; Coded caching; multi-antenna communication; low-subpacketization; optimized beamforming; finite-SNR

资金

  1. Academy of Finland [319059, 318927]
  2. European Research Council (ERC) Project Theoretical Foundations of Memory Micro-Insertions in Wireless Communications (DUALITY) [725929]

向作者/读者索取更多资源

Multi-antenna coded caching combines global caching gain and spatial multiplexing gain. It solves the problems of exponential subpacketization bottleneck and optimization complexity of beamforming multicast messages. In a critical regime, our algorithm achieves the exact one-shot linear optimal DoF.
Multi-antenna coded caching is known to combine a global caching gain that is proportional to the cumulative cache size found across the network, with an additional spatial multiplexing gain that stems from using multiple transmitting antennas. However, a closer look reveals two severe bottlenecks; the well-known exponential subpacketization bottleneck that dramatically reduces performance when the communicated file sizes are finite, and the considerable optimization complexity of beamforming multicast messages when the SNR is finite. We here present an entirely novel caching scheme, termed cyclic multi-antenna coded caching, whose unique structure allows for the resolution of the above bottlenecks in the crucial regime of many transmit antennas. For this regime, where the multiplexing gain can exceed the coding gain, our new algorithm is the first to achieve the exact one-shot linear optimal DoF with a subpacketization complexity that scales only linearly with the number of users, and the first to benefit from a multicasting structure that allows for exploiting uplink-downlink duality in order to yield optimized beamformers ultra-fast. In the end, our novel solution provides excellent performance for networks with finite SNR, finite file sizes, and many users.

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