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Multilabel Transfer Learning Method With Dynamic Multimetric for Coupling Fault Diagnosis.

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    This study introduces a new multilabel transfer learning method for diagnosing complex industrial coupling faults. The approach aligns data distributions across different operating conditions, improving diagnostic accuracy.

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    Area of Science:

    • Industrial fault diagnosis
    • Machine learning
    • Transfer learning

    Background:

    • Increasing system complexity leads to prevalent multicomponent failures (coupling faults), resembling multilabel data.
    • Varying industrial tasks create cross-domain challenges for coupling fault diagnosis, necessitating transfer learning.

    Purpose of the Study:

    • To develop an advanced multilabel transfer learning method for coupling fault diagnosis.
    • To address limitations in existing methods regarding multilevel similarity and complex fault features.

    Main Methods:

    • Proposed a novel method for dual domain alignment at global and local feature levels.
    • Utilized Maximum Mean Discrepancy (MMD) for global distribution alignment across network stages.
    • Introduced a dynamic multimetric structure to capture diverse local similarities and align local spatial structures.

    Main Results:

    • Achieved high superiority in transfer tasks across public and laboratory datasets.
    • Demonstrated effective alignment of global feature distributions and local spatial structures.
    • Validated the method's effectiveness in handling coupling fault diagnosis under varying conditions.

    Conclusions:

    • The proposed method offers a significant advancement in multilabel transfer learning for industrial fault diagnosis.
    • Dual-level domain alignment effectively addresses the complexities of coupling faults in cross-domain scenarios.
    • The approach shows strong potential for real-world industrial applications requiring robust fault diagnosis.