海洋声音边缘处理的物联网框架

Stelios N. Neophytou, Ilias Alexopoulos, I. Kyriakides, Pavlos Tsiantis, Ehson Abdi, D. Hayes
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引用次数: 1

摘要

代表海洋环境中自然和人类过程的复杂性需要收集和处理大型异构数据集。由于传感资源的稀缺性,信息收集需要以智能、敏捷的过程为指导。因此,原始异构数据集需要在传感节点进行标准化和本地处理,以减少与融合和决策支持中心传输数据相关的通信和计算负载。这项工作提出了一个海事应用的物联网框架,该框架由两个独立但兼容的硬件设计组成。一个提供海洋数据标准化,以实现海洋传感系统的互操作性,另一个提供信息获取灵活性,以实现有限边缘节点资源的有效分配。本文以应用该框架为例,介绍了一种适用于物联网系统边缘处理的信号分解海洋声音分类应用。提出了三种不同的边缘处理实现,并对相应的性能结果进行了报告和比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An IoT framework for Edge Processing of Ocean Sounds
Representing the complexity of natural and human processes in the maritime environment requires the collection and processing of large heterogeneous data sets. Due to the scarcity of sensing resources, information collection needs to be guided by intelligent, agile processes. Therefore, raw heterogeneous data sets need to be standardized and processed locally at the sensing node to reduce communication and computational load associated with transmitting data at a fusion and decision support center. This work presents an IoT framework for maritime applications that consists of two independent, yet compatible hardware designs. One provides maritime data standardization to enable interoperability of ocean sensing systems, and the other provides information acquisition agility to enable efficient allocation of limited edge node resources. An application for ocean sound classification using signal decomposition, suitable for edge processing on-board of IoT systems, is provided as an example of the use of the framework. Three different edge processing implementations are presented and the corresponding performance results are reported and compared.
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