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自主系统与现代计算技术的融合:小型综述。

Integrations between Autonomous Systems and Modern Computing Techniques: A Mini Review.

机构信息

Department of Mechanical engineering, Yuan Ze University, Taoyuan 32003, Taiwan.

Department of Electronic and Computer Engineering, Brunel University London, Uxbridge UB8 3PH, UK.

出版信息

Sensors (Basel). 2019 Sep 10;19(18):3897. doi: 10.3390/s19183897.

Abstract

The emulation of human behavior for autonomous problem solving has been an interdisciplinary field of research. Generally, classical control systems are used for static environments, where external disturbances and changes in internal parameters can be fully modulated before or neglected during operation. However, classical control systems are inadequate at addressing environmental uncertainty. By contrast, autonomous systems, which were first studied in the field of control systems, can be applied in an unknown environment. This paper summarizes the state of the art autonomous systems by first discussing the definition, modeling, and system structure of autonomous systems and then providing a perspective on how autonomous systems can be integrated with advanced resources (e.g., the Internet of Things, big data, Over-the-Air, and federated learning). Finally, what comes after reaching full autonomy is briefly discussed.

摘要

人类行为的模拟对于自主问题解决一直是一个跨学科的研究领域。一般来说,经典控制系统用于静态环境,其中外部干扰和内部参数变化可以在操作之前或操作期间完全调节或忽略。然而,经典控制系统在应对环境不确定性方面是不够的。相比之下,自主系统,它最初是在控制系统领域进行研究的,可以应用于未知的环境。本文首先讨论了自主系统的定义、建模和系统结构,然后提供了一个视角,说明如何将自主系统与先进资源(例如物联网、大数据、空中接口和联邦学习)集成,从而总结了自主系统的最新进展。最后,简要讨论了达到完全自主之后的发展方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/58a2/6767179/7a0e32df6285/sensors-19-03897-g001.jpg

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