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[3] Prior Knowledge-Augmented Self-Supervised Feature Learning for
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[4] Multi-channel Calibrated Transformer with Shifted Windows for Few-shot Fault Diagnosis under Sharp Speed Variation.
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for multi-component fault diagnosis under varying speeds. IEEE Transactions on
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[7] Similarity Metric-Based Metalearning Network Combining Prior Metatraining Strategy for Intelligent Fault Detection Under Small Samples Prerequisite. IEEE Transactions on Instrumentation and Measurement(IF=5.332,中科院二区), 2022;
[8] High-temperature augmented neighborhood metric learning for cross-domain fault diagnosis with imbalanced data. Knowledge-Based Systems(IF=8.139,中科院一区TOP), 2022;
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[11] Cross-domain intelligent bearing fault diagnosis under class imbalanced samples via transfer residual network augmented with explicit weight self-assignment strategy based on meta data. Knowledge-Based Systems(IF=8.139,中科院一区TOP), 2022;
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[16] Generative adversarial network in mechanical fault diagnosis
under small sample: A systematic review on applications and future perspectives.
ISA transactions(IF=5.911,中科院小类一区TOP), 2021;
[17] A classification method to detect faults in a rotating
machinery based on kernelled support tensor machine and multilinear principal
component analysis. Applied Intelligence(IF= 5.019,中科院二区), 2021;
[18] Subspace Network with Shared Representation learning for
intelligent fault diagnosis of machine under speed transient conditions with
few samples. ISA transactions(IF=5.911,中科院小类一区TOP), 2021;
[19] Globally Localized Multisource Domain Adaptation for
Cross-Domain Fault Diagnosis With Category Shift. IEEE Transactions on Neural
Networks and Learning Systems(IF=
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Machines via Multi-modules Learning with Gradient Penalized Generative
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[25] Deep Feature Generating Network: A New Method for Intelligent
Fault Detection of Mechanical Systems under Class Imbalance,
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Distillation for Intelligent Fault Diagnosis of Bearing Using Class Unbalanced
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comfort with multi-platform integrated calculation. Journal of Mechanical
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[30] Research on Safety Evaluation of Commercial Vehicle Driving
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hierarchical interaction model, Shock and Vibration, 2020;
[36] Research on ride comfort analysis and hierarchical
optimization of heavy vehicles with coupled nonlinear dynamics of suspension,
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[37] Steady-State Steering Characteristics of Mathematical Model
for Semitrailer Based on Variations in Camber Parameters, Shock and Vibration,
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[38] Research on a multi-node joint vibration control strategy for
controlling the steering wheel of a commercial vehicle, Shock and Vibration,
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the Commercial Vehicle Based on an Improved Nonlinear Model,IEEE
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controlling the steering wheel of a commercial vehicle,Shock and
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[41] A Multi-Point Iterative Analysis Method for Vibration Control
of a Steering Wheel at Idle Speed,IEEE Access, 2019;
[42] Detection and Location of Stator Winding Interturn Fault at
Different Slots of DFIG,IEEE
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[43] Commercial Vehicle Ride Comfort Optimization Based on
Intelligent Algorithms and Nonlinear Damping,Shock and Vibration, 2019;
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method for cab vibration control of commercial vehicle, Measurement, 2019;
[45] Vibration control analysis of vehicle steering system based
on the combined method of FEA and modal test,Journal of Vibration and Control, 2019;
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Product with Locally Connected Feature Extraction for Intelligent Fault
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Structure Based on Acoustic Black Hole Effect. Materials, 2019;
[51] An improved two-step method based on Kriging model for beam
structures. Journal of Low Frequency Noise, Vibration and Active Control, 2019;
等等....