Effective Capacity in MIMO Channels with Arbitrary Inputs
Marwan Hammouda, Sami Ak{\i}n, M. Cenk Gursoy, and J\"urgen Peissig

TL;DR
This paper investigates the effective capacity of MIMO channels with arbitrary inputs under QoS constraints, providing optimal input covariance, asymptotic analysis, and bounds on delay and backlog, with numerical validation.
Contribution
It introduces a comprehensive analysis of effective capacity in MIMO systems with arbitrary inputs under QoS constraints, including optimal covariance design and asymptotic behaviors.
Findings
Minimum energy-per-bit is independent of input distribution.
Effective capacity approaches the average transmission rate as antennas increase.
QoS constraints' impact diminishes with more antennas.
Abstract
Recently, communication systems that are both spectrum and energy efficient have attracted significant attention. Different from the existing research, we investigate the throughput and energy efficiency of a general class of multiple-input and multiple-output systems with arbitrary inputs when they are subject to statistical quality-of-service (QoS) constraints, which are imposed as limits on the delay violation and buffer overflow probabilities. We employ the effective capacity as the performance metric. We obtain the optimal input covariance matrix that maximizes the effective capacity under a short-term average power constraint. Following that, we perform an asymptotic analysis of the effective capacity in the low signal-to-noise ratio and large-scale antenna regimes. In the low signal-to-noise ratio regime analysis, we utilize the first and second derivatives of the effective…
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Taxonomy
TopicsAdvanced MIMO Systems Optimization · Advanced Wireless Network Optimization · Cooperative Communication and Network Coding
