物联网网关统计数据聚合自适应控制最小化时延

H. Yoshino, Kenko Ota, T. Hiraguri
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引用次数: 7

摘要

延迟关键型物联网(IoT)应用,如工厂自动化和智能电网,最近受到了极大的关注。为了满足此类应用的严格延迟要求,在聚合大量物联网设备的大量小尺寸数据的物联网网关中,抑制延迟非常重要。在之前的研究中,我们分析了物联网网关的两种基本统计数据聚合方案:恒定间隔和恒定数量,并推导出具有泊松到达的稳态条件下最优聚合参数的简单准确估计公式。在本文中,我们提出了一种统计数据聚合的自适应控制方案,使到达率存在时间变化时的延迟最小化。将最优聚合数估计公式应用于所提方案,实现了根据所提供的流量对聚合数的自适应控制。通过仿真验证了该方案在时变输入条件下的瞬态和平均特性。结果表明,即使在超载的交通条件下,该方案也能获得稳定且接近理论上最优的延迟。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Adaptive Control of Statistical Data Aggregation to Minimize Latency in IoT Gateway
Latency-critical Internet of Things (IoT) applications, such as factory automation and smart grids, have received great attention recently. To satisfy the stringent latency requirements for such applications, it is important to suppress the latency in an IoT gateway that aggregates a large amount of small-sized data from massive IoT devices. In a previous study, we have analyzed two fundamental statistical data aggregation schemes for the IoT gateway: constant interval and constant number, and derived simple and accurate estimation formulas for the optimal aggregation parameters under steady-state conditions with a Poisson arrival. In this paper, we propose an adaptive control scheme of statistical data aggregation that minimizes the latency when time variation exists in the arrival rate. Applying the estimation formula of the optimal aggregation number to the proposed scheme, we realized adaptive control of the aggregation number according to the offered traffic. The transient and average characteristics of the proposed scheme with time-variant inputs were clarified by simulation. The results indicate that the proposed scheme achieved stable and nearly theoretically optimal latency, even during an overloaded traffic condition.
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