Finite-SNR Diversity-Multiplexing Tradeoff via Asymptotic Analysis of Large MIMO Systems
Sergey Loyka, Georgy Levin

TL;DR
This paper extends the diversity-multiplexing tradeoff analysis to finite SNR and large MIMO systems, revealing limitations of traditional asymptotic DMT and providing more accurate, operationally relevant characterizations.
Contribution
It derives a finite-SNR, size-asymptotic DMT for broad fading channels, addressing limitations of the classical asymptotic DMT and introducing the SNR offset for outage probability.
Findings
Finite-SNR DMT closely approximates asymptotic DMT within a specific SNR range.
Correlation and power imbalance reduce the finite-SNR diversity gain.
The SNR offset significantly impacts outage probability, especially at low multiplexing gains.
Abstract
Diversity-multiplexing tradeoff (DMT) was characterized asymptotically (SNR-> infinity) for i.i.d. Rayleigh fading channel by Zheng and Tse [1]. The SNR-asymptotic DMT overestimates the finite-SNR one [2]. This paper outlines a number of additional limitations and difficulties of the DMT framework and discusses their implications. Using the recent results on the size-asymptotic (in the number of antennas) outage capacity distribution, the finite-SNR, size-asymptotic DMT is derived for a broad class of fading distributions. The SNR range over which the finite-SNR DMT is accurately approximated by the SNR-asymptotic one is characterized. The multiplexing gain definition is shown to affect critically this range and thus should be carefully selected, so that the SNR-asymptotic DMT is an accurate approximation at realistic SNR values and thus has operational significance to be used as a…
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