English

URLLC with Massive MIMO: Analysis and Design at Finite Blocklength

Information Theory 2021-05-11 v4 Signal Processing math.IT

Abstract

The fast adoption of Massive MIMO for high-throughput communications was enabled by many research contributions mostly relying on infinite-blocklength information-theoretic bounds. This makes it hard to assess the suitability of Massive MIMO for ultra-reliable low-latency communications (URLLC) operating with short blocklength codes. This paper provides a rigorous framework for the characterization and numerical evaluation (using the saddlepoint approximation) of the error probability achievable in the uplink and downlink of Massive MIMO at finite blocklength. The framework encompasses imperfect channel state information, pilot contamination, spatially correlated channels, and arbitrary linear spatial processing. In line with previous results based on infinite-blocklength bounds, we prove that, with minimum mean-square error (MMSE) processing and spatially correlated channels, the error probability at finite blocklength goes to zero as the number MM of antennas grows to infinity, even under pilot contamination. On the other hand, numerical results for a practical URLLC network setup involving a base station with M=100M=100 antennas, show that a target error probability of 10510^{-5} can be achieved with MMSE processing, uniformly over each cell, only if orthogonal pilot sequences are assigned to all the users in the network. Maximum ratio processing does not suffice.

Keywords

Cite

@article{arxiv.2009.10550,
  title  = {URLLC with Massive MIMO: Analysis and Design at Finite Blocklength},
  author = {Johan Östman and Alejandro Lancho and Giuseppe Durisi and Luca Sanguinetti},
  journal= {arXiv preprint arXiv:2009.10550},
  year   = {2021}
}

Comments

15 pages, 5 figures; to appear in IEEE Transactions on Wireless Communications

R2 v1 2026-06-23T18:43:11.980Z