扑翼微型飞行器演化模型一致性检验的改进

J. Gallagher, S. Boddhu, E. Matson, G. Greenwood
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引用次数: 6

摘要

进化计算被认为是一种提供机器人控制器持续适应的方法。大多数情况下,使用进化计算来实现这一目标的重点是恢复可接受的机器人性能,而较少关注诊断需要适应的故障的性质。在之前的工作中,我们引入了进化模型一致性检查的概念,其中候选机器人控制器评估具有进化控制解决方案和提取机器人故障诊断的双重目的。在这项欠发达的工作中,我们只能检测模拟扑翼微型飞行器的单翼损伤故障。我们现在将该方法扩展到能够检测和诊断单翼和双翼故障。本文解释了这些扩展,通过仿真研究证明了它们的有效性,并讨论了利用提取的故障诊断来提高EC自适应的可能性,以加快EC搜索。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improvements to Evolutionary Model Consistency Checking for a Flapping-Wing Micro Air Vehicle
Evolutionary Computation has been suggested as a means of providing ongoing adaptation of robot controllers. Most often, using Evolutionary Computation to that end focuses on recovery of acceptable robot performance with less attention given to diagnosing the nature of the failure that necessitated the adaptation. In previous work, we introduced the concept of Evolutionary Model Consistency Checking in which candidate robot controller evaluations were dual-purposed for both evolving control solutions and extracting robot fault diagnoses. In that less developed work, we could only detect single wing damage faults in a simulated Flapping Wing Micro Air Vehicle. We now extend the method to enable detection and diagnosis of both single wing and dual wing faults. This paper explains those extensions, demonstrates their efficacy via simulation studies, and provides discussion on the possibility of augmenting EC adaptation by exploiting extracted fault diagnoses to speed EC search.
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