Ultra-reliable low latency communications (uRLLC) is adopted in the fifth generation (5G) mobile networks to better support mission-critical applications that demand high level of reliability and low latency. With the aid of well-established multiple-input multiple-output (MIMO) information theory, uRLLC in the future 6G is expected to provide enhanced capability towards extreme connectivity. Since the latency constraint can be represented equivalently by blocklength, channel coding theory at finite block-length plays an important role in the theoretic analysis of uRLLC. On the basis of Polyanskiy's and Yang's asymptotic results, we first derive the exact close-form expressions for the expectation and variance of channel dispersion. Then, the bound of average maximal achievable rate is given for massive MIMO systems in ideal independent and identically distributed fading channels. This is the study to reveal the underlying connections among the fundamental parameters in MIMO transmissions in a concise and complete close-form formula. Most importantly, the inversely proportional law observed therein implies that the latency can be further reduced at expense of spatial degrees of freedom.
翻译:第五代(5G)移动网络采用了超可靠的低潜值通信(URLLC),以更好地支持要求高度可靠性和低潜值的对任务至关重要的应用;在成熟的多投入多输出(MIMO)信息理论的帮助下,未来6G的URLLC预计能提高极端连通能力;由于潜值限制可以以区长等量表示,因此,有限区长的导线编码理论在URLLC理论的理论分析中起着重要作用。根据Polyanskiy和Yang的无源结果,我们首先得出了频道分散预期和差异的准确的近形表达方式。然后,为理想独立和分布相同的大型MIMO系统设定了平均最大可实现率的界限。这是一项研究,目的是以简洁和完整的近成型公式揭示IMO传输的基本参数之间的根本联系。最重要的是,其中观察到的反向比例法意味着空间自由度可以进一步降低。