Unsourced Random Access in MIMO Quasi-Static Rayleigh Fading Channels: Finite Blocklength and Scaling Law Analyses

Junyuan Gao, Yongpeng Wu, Giuseppe Caire, Wei Yang, H. Vincent Poor, Wenjun Zhang

Research output: Contribution to journalArticlepeer-review

Abstract

This paper considers the unsourced random access (URA) problem with a random and unknown number of active users in multiple-input multiple-output (MIMO) quasi-static Rayleigh fading channels.We derive non-asymptotic achievability bounds on the probability of incorrectly estimating the number of active users, and provide scaling laws on the gap between the estimated and true numbers of active users. We prove that the error probability reaches a plateau as the power P and blocklength n increase, whereas it decays exponentially with the number L of receive antennas and eventually vanishes. Then, we explore the fundamental limits of URA by deriving nonasymptotic achievability bounds and converse bounds (including two single-user converse bounds and one multi-user ensemble converse bound) on the minimum energy-per-bit required by each active user to transmit J bits with blocklength n under misdetection and false-alarm constraints. Numerical results show that the extra required energy-per-bit due to the uncertainty in the number Ka of active users decreases as L and E[Ka] increase and the error requirement becomes milder. In the non-asymptotic regime, using codewords distributed on a sphere outperforms Gaussian random coding. Existing schemes are shown to exhibit a large gap to our bounds when the number of active users is large, calling for more advanced schemes that perform energyefficiently in this case. In the asymptotic regime with n → ∞, we establish scaling laws on the minimum required P and L to reliably support Ka active users as functions of n, which highlight the potential of MIMO in enabling low-cost communication and indicate that it is possible for the minimum required P and L to remain on the same order when the number of active users increases but stays below a threshold.

Original languageEnglish (US)
JournalIEEE Transactions on Information Theory
DOIs
StateAccepted/In press - 2025
Externally publishedYes

All Science Journal Classification (ASJC) codes

  • Information Systems
  • Computer Science Applications
  • Library and Information Sciences

Keywords

  • Energy efficiency
  • finite blocklength
  • MIMO unsourced random access
  • misdetection and false-alarm probabilities
  • random user activity

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