Non-parametric empirical machine learning for short-term and long-term structural health monitoring

参数统计 计算机科学 特征(语言学) 异常检测 期限(时间) 可靠性(半导体) 人工智能 参数化模型 广义帕累托分布 度量(数据仓库) 实证研究 异常(物理) 结构健康监测 数据挖掘 机器学习 模式识别(心理学) 极值理论 数学 工程类 统计 哲学 语言学 物理 功率(物理) 结构工程 量子力学 凝聚态物理
作者
Alireza Entezami,Hashem Shariatmadar,Carlo De Michele
出处
期刊:Structural Health Monitoring-an International Journal [SAGE Publishing]
卷期号:21 (6): 2700-2718 被引量:63
标识
DOI:10.1177/14759217211069842
摘要

Early damage detection is an initial step of structural health monitoring. Thanks to recent advances in sensing technology, the application of data-driven methods based on the concept of machine learning has significantly increased among civil engineers and researchers. On this basis, this article proposes a novel non-parametric anomaly detection method in an unsupervised learning manner via the theory of empirical machine learning. The main objective of this method is to define a new damage index by using some empirical measure and the concept of minimum distance value. For this reason, an empirical local density is initially computed for each feature and then multiplied by the minimum distance of that feature to derive a new damage index for decision-making. The minimum distance is obtained by calculating the distances between each feature and training samples and finding the minimum quantity. The major contributions of this research contain developing a novel non-parametric algorithm for decision-making under high-dimensional and low-dimensional features and proposing a new damage index. To detect early damage, a threshold boundary is computed by using the extreme value theory, generalized Pareto distribution, and peak-over-threshold approach. Dynamic and statistical features of two full-scale bridges are used to verify the effectiveness and reliability of the proposed non-parametric anomaly detection. In order to further demonstrate its accuracy and proper performance, it is compared with some classical and recently published anomaly detection techniques. Results show that the proposed non-parametric method can effectively discriminate a damaged state from its undamaged condition with high damage detectability and inconsiderable false positive and false negative errors. This method also outperforms the anomaly detection techniques considered in the comparative studies.
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