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Ma Meng
Ma Meng
Postdoctoral associate of Mechanical Engineering, University of Massachusetts, Lowell.
Bestätigte E-Mail-Adresse bei uml.edu
Titel
Zitiert von
Zitiert von
Jahr
Deep transfer learning based on sparse autoencoder for remaining useful life prediction of tool in manufacturing
C Sun, M Ma, Z Zhao, S Tian, R Yan, X Chen
IEEE transactions on industrial informatics 15 (4), 2416-2425, 2018
4152018
Deep-convolution-based LSTM network for remaining useful life prediction
M Ma, Z Mao
IEEE Transactions on Industrial Informatics 17 (3), 1658-1667, 2020
2782020
Deep coupling autoencoder for fault diagnosis with multimodal sensory data
M Ma, C Sun, X Chen
IEEE Transactions on Industrial Informatics 14 (3), 1137-1145, 2018
2442018
Sparse deep stacking network for fault diagnosis of motor
C Sun, M Ma, Z Zhao, X Chen
IEEE Transactions on Industrial Informatics 14 (7), 3261-3270, 2018
1872018
Discriminative deep belief networks with ant colony optimization for health status assessment of machine
M Ma, C Sun, X Chen
IEEE Transactions on Instrumentation and Measurement 66 (12), 3115-3125, 2017
1282017
Locally linear embedding on Grassmann manifold for performance degradation assessment of bearings
M Ma, X Chen, X Zhang, B Ding, S Wang
IEEE Transactions on Reliability 66 (2), 467-477, 2017
512017
A deep coupled network for health state assessment of cutting tools based on fusion of multisensory signals
M Ma, C Sun, X Chen, X Zhang, R Yan
IEEE Transactions on Industrial Informatics 15 (12), 6415-6424, 2019
502019
Bearing degradation assessment based on weibull distribution and deep belief network
M Ma, X Chen, S Wang, Y Liu, W Li
2016 International symposium on flexible automation (ISFA), 382-385, 2016
402016
Deep recurrent convolutional neural network for remaining useful life prediction
M Ma, Z Mao
2019 IEEE international conference on prognostics and health management …, 2019
262019
Physics-informed deep neural network for bearing prognosis with multisensory signals
X Chen, M Ma, Z Zhao, Z Zhai, Z Mao
Journal of Dynamics, Monitoring and Diagnostics, 200-207, 2022
242022
Ensemble deep learning with multi-objective optimization for prognosis of rotating machinery
M Ma, C Sun, Z Mao, X Chen
ISA transactions 113, 166-174, 2021
242021
Deep wavelet sequence-based gated recurrent units for the prognosis of rotating machinery
M Ma, Z Mao
Structural Health Monitoring 20 (4), 1794-1804, 2021
242021
Subspace-based MVE for performance degradation assessment of aero-engine bearings with multimodal features
M Ma, C Sun, C Zhang, X Chen
Mechanical Systems and Signal Processing 124, 298-312, 2019
242019
Deep learning in heterogeneous materials: Targeting the thermo-mechanical response of unidirectional composites
Q Chen, W Tu, M Ma
Journal of Applied Physics 127 (17), 2020
182020
An improved analytical dynamic model for rotating blade crack: With application to crack detection indicator analysis
L Yang, M Ma, S Wu, X Chen, R Yan, Z Mao
Journal of Low Frequency Noise, Vibration and Active Control 40 (4), 1935-1961, 2021
132021
Rotating machinery prognostics via the fusion of particle filter and deep learning
M Ma, ZHU Mao
Structural Health Monitoring 2019, 2019
62019
Fault diagnosis of bearing running status using mutual information
M Meng, L Ruonan, H Yushan, C Xuefeng
2014 Prognostics and System Health Management Conference (PHM-2014 Hunan …, 2014
52014
Direct waveform extraction via a deep recurrent denoising autoencoder
M Ma, Y Qin, M Haile, Z Mao
Nondestructive Characterization and Monitoring of Advanced Materials …, 2019
42019
Dynamic Model-based Digital Twin for Crack Detection of Aeroengine Disk
Y Yang, M Ma, Z Zhou, C Sun, R Yan
2021 International Conference on Sensing, Measurement & Data Analytics in …, 2021
32021
Sparsity-aware tight frame learning for rotary machine fault diagnosis
H Zhang, X Chen, Z Du, M Ma, X Zhang
2016 IEEE International Instrumentation and Measurement Technology …, 2016
22016
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