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Decision fusion methodologies in Structural Health Monitoring systems

机译:结构健康监测系统中的决策融合方法

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Structural Health Monitoring (SHM) is a process of continuous monitoring of the physical condition of a structure for purpose of ensuring the integrity of the structure. SHM techniques have been employed to reduce maintenance and repair costs while maintaining safety and reliability of aircrafts. In this paper we have investigated the benefits provided by integrating decision fusion algorithms to SHM systems. The decisions made by classifiers acting on sensory data are combined using decision fusion algorithms to arrive at unified final decisions regarding the status of the monitored structure. First, synthetic decisions were generated and used for testing and performance evaluation of the different decision fusion algorithms. Second, several different decision fusion algorithms were developed and tested on the synthetic decisions. The Dempster-Shafer theory of evidence, fuzzy logic type-1, and fuzzy logic-type2 were used for development of the decision-fusion algorithms. Finally, the fusion algorithms were tested on decisions extracted from experimental data to validate their performances. The testing and evaluation results showed significant improvement due to fusion process integrated at the end of the feature classification process. The development of the fusion algorithms, their testing results on the synthetic decisions and decisions extracted from real experiment are reported in this paper. Also, performance analysis of decision fusion algorithms is provided in the paper.
机译:结构健康监视(SHM)是连续监视结构的物理状态以确保结构完整性的过程。 SHM技术已被用来减少维护和维修成本,同时保持飞机的安全性和可靠性。在本文中,我们研究了将决策融合算法集成到SHM系统中所带来的好处。使用决策融合算法,将分类器根据感觉数据做出的决策组合在一起,以得出有关受监视结构状态的统一最终决策。首先,生成综合决策,并将其用于不同决策融合算法的测试和性能评估。其次,开发了几种不同的决策融合算法,并对综合决策进行了测试。证据融合的Dempster-Shafer理论,模糊逻辑1型和模糊逻辑2型被用于决策融合算法的开发。最后,根据从实验数据中提取的决策对融合算法进行了测试,以验证其性能。测试和评估结果表明,由于在特征分类过程结束时集成了融合过程,因此有了显着的改进。本文报道了融合算法的发展,融合决策的测试结果以及从真实实验中提取的决策。此外,本文还提供了决策融合算法的性能分析。

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