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Novel Model Based on Stacked Autoencoders with Sample-Wise Strategy for Fault Diagnosis

机译:基于堆叠自动化器的新型模型,具有对故障诊断的样本 - 明智策略

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摘要

Autoencoders are used for fault diagnosis in chemical engineering. To improve their performance, experts have paid close attention to regularized strategies and the creation of new and effective cost functions. However, existing methods are modified on the basis of only one model. This study provides a new perspective for strengthening the fault diagnosis model, which attempts to gain useful information from a model (teacher model) and applies it to a new model (student model). It pretrains the teacher model by fitting ground truth labels and then uses a sample-wise strategy to transfer knowledge from the teacher model. Finally, the knowledge and the ground truth labels are used to train the student model that is identical to the teacher model in terms of structure. The current student model is then used as the teacher of next student model. After step-by-step teacher-student reconfiguration and training, the optimal model is selected for fault diagnosis. Besides, knowledge distillation is applied in training procedures. The proposed method is applied to several benchmarked problems to prove its effectiveness.
机译:AutoEncoders用于化学工程中的故障诊断。为提高绩效,专家们仔细关注了正规化的战略和创造新的和有效的成本职能。但是,现有方法仅在一个模型的基础上进行修改。本研究提供了加强故障诊断模型的新视角,该模型试图从模型(教师模型)中获取有用的信息,并将其应用于新模型(学生模型)。它通过拟合实际标签来预先借鉴教师模型,然后使用样本方面的策略来从教师模型转移知识。最后,知识和地面真理标签用于培训与结构方面相同的学生模型。然后将当前的学生模型用作下一个学生模型的老师。在逐步的教师重新配置和培训之后,选择最佳模型进行故障诊断。此外,知识蒸馏适用于培训程序。该方法应用于几个基准问题以证明其有效性。

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  • 来源
    《Mathematical Problems in Engineering》 |2019年第13期|8985657.1-8985657.10|共10页
  • 作者

    Kong Diehao; Yan Xuefeng;

  • 作者单位

    East China Univ Sci & Technol Key Lab Adv Control & Optimizat Chem Proc Minist Educ Shanghai 200237 Peoples R China;

    East China Univ Sci & Technol Key Lab Adv Control & Optimizat Chem Proc Minist Educ Shanghai 200237 Peoples R China;

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