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Structural damage location and evaluation model inspired by memory and causal reasoning of the human brain

机译:受人脑记忆和因果推理启发的结构损伤定位和评估模型

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摘要

Structural health monitoring system should handle massive sensor information correctly and complete the damage location and evaluation. This study proposes a structural damage location and evaluation model inspired by the memory and causal reasoning of the human brain. Mass-monitoring data filtering is conducted in the short-term memory area. The long-term memory area stores useful information that contains the characteristics of structural damage and has two functions. First, the support degree index is deduced to locate the damage source of the basement. Second, the historical acoustic emission data and sparse autoencoder classifier are utilized to identify moisture content and then evaluate the damage level of the basement. Experiments show the functions of the model, such as monitoring data reduction, locating the damage source, and evaluating the level of damage, without prior knowledge of mechanics.
机译:结构健康监测系统应正确处理大量传感器信息,并完成损伤位置和评估。这项研究提出了一种结构损伤的位置和评估模型,该模型受人脑的记忆和因果推理启发。在短期存储区域中进行海量监视数据过滤。长期存储区域存储有用的信息,这些信息包含结构损坏的特征并具有两个功能。首先,推导支撑度指标以定位地下室的损伤源。其次,利用历史声发射数据和稀疏自动编码器分类器来识别水分含量,然后评估地下室的破坏程度。实验显示了该模型的功能,例如监视数据减少,定位损坏源以及评估损坏程度,而无需事先了解力学。

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