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Emergent damage pattern recognition using immune network theory

机译:基于免疫网络理论的突发伤害模式识别

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摘要

This paper presents an emergent pattern recognition approach based on the immune network theory and hierarchical clustering algorithms. The immune network allows its components to change and learn patterns by changing the strength of connections between individual components. The presented immune-network-based approach achieves emergent pattern recognition by dynamically generating an internal image for the input data patterns. The members (feature vectors for each data pattern) of the internal image are produced by an immune network model to form a network of antibody memory cells. To classify antibody memory cells to different data patterns, hierarchical clustering algorithms are used to create an antibody memory cell clustering. In addition, evaluation graphs and L method are used to determine the best number of clusters for the antibody memory cell clustering. The presented immune-network-based emergent pattern recognition (INEPR) algorithm can automatically generate an internal image mapping to the input data patterns without the need of specifying the number of patterns in advance. The INEPR algorithm has been tested using a benchmark civil structure. The test results show that the INEPR algorithm is able to recognize new structural damage patterns.
机译:本文提出了一种基于免疫网络理论和层次聚类算法的紧急模式识别方法。免疫网络允许其组件通过更改各个组件之间的连接强度来更改和学习模式。所提出的基于免疫网络的方法通过动态生成输入数据模式的内部图像来实现紧急模式识别。内部图像的成员(每个数据模式的特征向量)由免疫网络模型生成,以形成抗体存储单元的网络。为了将抗体存储单元分类为不同的数据模式,使用层次聚类算法来创建抗体存储单元聚类。此外,评估图和L方法用于确定抗体存储单元聚类的最佳聚类数。提出的基于免疫网络的紧急模式识别(INEPR)算法可以自动生成内部图像映射到输入数据模式,而无需事先指定模式数量。 INEPR算法已使用基准民用结构进行了测试。测试结果表明,INEPR算法能够识别新的结构损伤模式。

著录项

  • 来源
    《Smart structures and systems》 |2011年第1期|p.69-92|共24页
  • 作者

    Bo Chen; Chuanzhi Zang;

  • 作者单位

    Department of Mechanical Engineering - Engineering Mechanics, Michigan Technological University,815 R.L Smith Building, 1400 Townsend Drive, Houghton, Ml 49931, USA,Department of Electrical and Computer Engineering, Michigan Technological University, USA;

    Department of Mechanical Engineering - Engineering Mechanics, Michigan Technological University,815 R.L Smith Building, 1400 Townsend Drive, Houghton, Ml 49931, USA,Shenyang Institute of Automation, Chinese Academy of Science, Nanta Street 114, Shenyang,Liaoning, P.R. China, 110016;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    emergent pattern recognition; immune network theory; hierarchical clustering; artificial immune systems;

    机译:紧急模式识别免疫网络理论层次聚类;人工免疫系统;

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