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An Application-oriented Perspective of Domain Generalization for Cross-Domain Fault Diagnosis

Abstract

Traditional data-driven fault diagnosis methods generally assume that the training and testing distributions are the same, which does not hold in real-world industrial applications. To address domain shift problems, domain generalization-based fault diagnosis (DGFD) methods have been explored to achieve real-time cross-domain fault diagnosis. Some progress has been made in the area of DGFD for years. This paper presents an overview of recent advances in DGFD. First, we provide a formal definition of domain generalization and discuss several related learning paradigms used in intelligent fault diagnosis. Second, we define several major applications of domain generalization in intelligent fault diagnosis. Then, the motivations and challenges of these applications are discussed, and current solutions are summarized.

Authors

Zhao C; Shen W

Volume

00

Pagination

pp. 1679-1684

Publisher

Institute of Electrical and Electronics Engineers (IEEE)

Publication Date

May 26, 2023

DOI

10.1109/cscwd57460.2023.10152676

Name of conference

2023 26th International Conference on Computer Supported Cooperative Work in Design (CSCWD)
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