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APPLICATION OF A CLASSIFICATION ALGORITHM TO THE EARLY-STAGE DAMAGE DETECTION OF A MASONRY ARCH

机译:分类算法在砌体拱的早期损伤检测中的应用

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The early-stage identification of structural damage still represents a relevant challenge in civil engineering. Localized damages if not readily detected can lead to disruption or even collapse, involving hazard to people and economical losses. Although the final goal of the identification is to localize and quantify the damage, a reliable discrimination between normal and abnormal states of the structure in the very early stage of the damage onset is not an easy task. In the field of Structural Health Monitoring (SHM) great attention has been paid to the development of damage detection methods based on continuous and automatic registration of the system response to unknown ambient inputs. The numerical algorithms exploited must be: (1) easy to implement and computationally inexpensive, eventually being embedded in the sensors;;(2) as much independent on human decision as possible;;(3) robust to the many sources of uncertainties affecting the monitoring;;(4) able to detect small damage extents in order to provide an early warning;;(5) suitable for the application in the case of few and sparse measurements collected only in the normal condition. The performance of a novel version of Negative Selection Algorithm, recently developed by the authors, is here analyzed with attention to these issues. The algorithm is tested against data collected on a segmental masonry arch built in the laboratory of the University of Minho and subject to progressive lateral displacement of one support.
机译:结构损害的早期识别仍然是土木工程中有关的相关挑战。如果不容易被发现,本地化损害可能会导致破坏甚至崩溃,涉及对人的危害和经济损失。虽然鉴定的最终目标是本地化和量化损害,但在损害发作的早期阶段的正常和异常状态之间的可靠歧视不是一项容易的任务。在结构健康监测(SHM)领域,巨大关注已经基于连续和自动注册系统响应未知环境输入的损伤检测方法的开发。利用的数值算法必须是:(1)易于实施和计算地廉价,最终被嵌入在传感器中;(2)尽可能多地独立于人类决定;;(3)对影响众多不确定来源的鲁棒监测;;(4)能够检测到小损伤范围,以便提供预警;(5)适用于少数和稀疏测量仅在正常情况下收集的应用。作者最近开发的新颖版本的负选择算法的性能在此处分析了这些问题。该算法针对在Minho大学的实验室内建造的节段砌体拱门收集的数据进行了测试,并遵循一个支持的渐进横向位移。

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