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Damage identification for structural health monitoring using fuzzy pattern recognition

机译:基于模糊模式识别的结构健康监测损伤识别

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Uncertainty abounds with in situ structural performance assessment and damage detection in Structural Health Monitoring (SHM). Most research in SHM focuses on statistical analysis, data acquisition, feature extraction and data reduction. We introduce a method to improve pattern recognition and damage detection by supplementing Intelligent Structural Health Monitoring (ISHM) with fuzzy sets. Intuitively we know that damage does not occur as a Boolean relation (one of two values, true or false) but progressively. Bayesian updating is used to demarcate levels of damage into fuzzy sets accommodating the uncertainty associated with the ambiguous damage states. The new techniques are examined to provide damage identification using data simulated from finite element analysis of a prestressed concrete bridge without a priori known levels of damage.
机译:在结构健康监测(SHM)中,现场结构性能评估和损伤检测存在很多不确定性。 SHM的大多数研究都集中在统计分析,数据获取,特征提取和数据归约上。我们引入一种方法,通过在智能结构健康监测(ISHM)中添加模糊集来改进模式识别和损伤检测。凭直觉,我们知道损坏不是以布尔关系(真或假两个值之一)发生,而是逐渐发生。贝叶斯更新用于将损伤级别划分为模糊集,以适应与模糊损伤状态相关的不确定性。对新技术进行了检查,以使用从预应力混凝土桥梁的有限元分析中模拟的数据提供损坏识别,而没有先验已知的损坏水平。

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