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Artificial Immune system based approach to fault diagnosis for wireless sensor networks

机译:基于人工免疫系统的无线传感器网络故障诊断方法

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Fault diagnosis has been recognized as one of the key issues in wireless sensor networks. Considering distribution feature of sensor node, however, the fault happened in wireless sensor networks is usually random and unpredictable. The conventional diagnosis approaches become increasingly difficult to deal with. As a result, the application is limited seriously. To solve the problem, a new approach based on artificial immune system for fault diagnosis is proposed. The normal and abnormal character patterns generated by a network simulator for wireless sensor networks, respectively, are regarded as the self and antigen of artificial immune system. According to a real-valued negative selection algorithm, the detectors are generated to improve the covering ability of non-self space. Taking detector as antibody, an immunity calculation is executed by the distribution zones of antibody and evolution learning mechanism of artificial immune system. The type of antigen is decided based on the clustering distribution of cloned and matured antibody. The example shows that the approach has better accuracy and the capability of self-adaptive for the fault diagnosis in wireless sensor networks.
机译:故障诊断已被认为是无线传感器网络中的关键问题之一。但是,考虑到传感器节点的分布特性,无线传感器网络中发生的故障通常是随机的且不可预测的。传统的诊断方法变得越来越难以处理。结果,应用受到严重限制。针对这一问题,提出了一种基于人工免疫系统的故障诊断新方法。由网络模拟器分别为无线传感器网络生成的正常和异常字符模式被视为人工免疫系统的自身和抗原。根据实值否定选择算法,生成检测器以提高非自身空间的覆盖能力。以检测器为抗体,通过抗体的分布区域和人工免疫系统的进化学习机制进行免疫计算。抗原的类型取决于克隆和成熟抗体的聚类分布。算例表明,该方法具有较好的准确性和自适应能力,可以在无线传感器网络中进行故障诊断。

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