English

Design Trade-offs for Decentralized Baseband Processing in Massive MU-MIMO Systems

Information Theory 2019-12-17 v2 Signal Processing math.IT

Abstract

Massive multi-user (MU) multiple-input multiple-output (MIMO) provides high spectral efficiency by means of spatial multiplexing and fine-grained beamforming. However, conventional base-station (BS) architectures for systems with hundreds of antennas that rely on centralized baseband processing inevitably suffer from (i) excessive interconnect data rates between radio-frequency circuitry and processing fabrics, and (ii) prohibitive complexity at the centralized baseband processor. Recently, decentralized baseband processing (DBP) architectures and algorithms have been proposed, which mitigate the interconnect bandwidth and complexity bottlenecks. This paper systematically explores the design trade-offs between error-rate performance, computational complexity, and data transfer latency of DBP architectures under different system configurations and channel conditions. Considering architecture, algorithm, and numerical precision aspects, we provide practical guidelines to select the DBP architecture and algorithm that are able to realize the full benefits of massive MU-MIMO in the uplink and downlink.

Keywords

Cite

@article{arxiv.1912.04437,
  title  = {Design Trade-offs for Decentralized Baseband Processing in Massive MU-MIMO Systems},
  author = {Kaipeng Li and James McNaney and Chance Tarver and Oscar Castañeda and Charles Jeon and Joseph R. Cavallaro and Christoph Studer},
  journal= {arXiv preprint arXiv:1912.04437},
  year   = {2019}
}

Comments

2019 IEEE Asilomar conference paper

R2 v1 2026-06-23T12:40:50.046Z