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Towards Population-Based Structural Health Monitoring, Part III: Graphs, Networks and Communities

机译:走向基于人口的结构健康监测,第三部分:图,网络和社区

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Population-based structural health monitoring opens up the possibility of using information from a population of structures to provide extra information for each individual structure. For example, population-based structural health monitoring could provide improved damage-detection within a homogeneous population of structures by defining a normal condition across a population of structures, which was robust to environmental variation. Furthermore, in cases where structures are sufficiently similar, damage location, assessment, and classification labels could be transferred, increasing the damage labels available for each structure. To determine whether two structures are sufficiently similar requires the comparison of some representation of the structure. In fields such as bioinformatics and computer science, attributed graphs are often used to determine structural similarity. This paper will describe methods for comparing the topology attributes of two such graphs. The algorithm described is suited to population-based structural health monitoring as it provides matches between two graphs which have physical significance. This paper will also describe the process of comparing hierarchical attributes to determine the level of knowledge transfer possible between two structures.
机译:基于人口的结构健康监测开辟了使用结构群体信息的可能性,以为每个结构提供额外信息。例如,基于人群的结构健康监测可以通过在结构群体中定义正常情况来提供均匀的结构群体内的改善损伤检测,这是对环境变异的稳健性。此外,在结构足够相似,损坏位置,评估和分类标签的情况下,可以转移,增加每个结构的损坏标签。为了确定两个结构是否足够相似,需要比较结构的一些表示。在诸如生物信息学和计算机科学等领域,归属图通常用于确定结构相似性。本文将描述用于比较两个这些图形的拓扑属性的方法。所描述的算法适用于基于群体的结构健康监测,因为它提供了具有物理意义的两个图之间的匹配。本文还将描述比较分层属性以确定两个结构之间可能的知识水平的过程。

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