Md Zia Uddin, PhD, SM-IEEE
Md Zia Uddin, PhD, SM-IEEE
Senior Research Scientist, Sustainable Communication Technologies, SINTEF Digital, Oslo, Norway
E-mail megerősítve itt: sintef.no - Kezdőlap
Hivatkozott rá
Hivatkozott rá
A robust human activity recognition system using smartphone sensors and deep learning
MM Hassan, MZ Uddin, A Mohamed, A Almogren
Future Generation Computer Systems 81, 307-313, 2018
Human emotion recognition using deep belief network architecture
MM Hassan, MGR Alam, MZ Uddin, S Huda, A Almogren, G Fortino
Information Fusion 51, 10-18, 2019
Depth video-based human activity recognition system using translation and scaling invariant features for life logging at smart home
A Jalal, MZ Uddin, TS Kim
IEEE Transactions on Consumer Electronics 58 (3), 863-871, 2012
Autonomic computation offloading in mobile edge for IoT applications
MGR Alam, MM Hassan, MZI Uddin, A Almogren, G Fortino
Future Generation Computer Systems 90, 149-157, 2019
A wearable sensor-based activity prediction system to facilitate edge computing in smart healthcare system
MZ Uddin
Journal of Parallel and Distributed Computing 123, 46-53, 2019
A body sensor data fusion and deep recurrent neural network-based behavior recognition approach for robust healthcare
MZ Uddin, MM Hassan, A Alsanad, C Savaglio
Information Fusion 55, 105-115, 2020
Ambient sensors for elderly care and independent living: a survey
MZ Uddin, W Khaksar, J Torresen
Sensors 18 (7), 2027, 2018
Facial expression recognition utilizing local direction-based robust features and deep belief network
MZ Uddin, MM Hassan, A Almogren, A Alamri, M Alrubaian, G Fortino
IEEE Access 5, 4525-4536, 2017
An enhanced independent component-based human facial expression recognition from video
MZ Uddin, JJ Lee, TS Kim
IEEE Transactions on Consumer Electronics 55 (4), 2216-2224, 2009
Recognition of human home activities via depth silhouettes and ℜ transformation for smart homes
A Jalal, MZ Uddin, JT Kim, TS Kim
Indoor and Built Environment 21 (1), 184-190, 2012
Activity recognition for cognitive assistance using body sensors data and deep convolutional neural network
MZ Uddin, MM Hassan
IEEE Sensors Journal 19 (19), 8413-8419, 2018
Deep CNN-LSTM with self-attention model for human activity recognition using wearable sensor
MA Khatun, MA Yousuf, S Ahmed, MZ Uddin, SA Alyami, S Al-Ashhab, ...
IEEE Journal of Translational Engineering in Health and Medicine 10, 1-16, 2022
Human activity recognition from body sensor data using deep learning
MM Hassan, S Huda, MZ Uddin, A Almogren, M Alrubaian
Journal of medical systems 42, 1-8, 2018
Vision transformer and explainable transfer learning models for auto detection of kidney cyst, stone and tumor from CT-radiography
MN Islam, M Hasan, MK Hossain, MGR Alam, MZ Uddin, A Soylu
Scientific Reports 12 (1), 1-14, 2022
Human activity recognition using wearable sensors, discriminant analysis, and long short-term memory-based neural structured learning
MZ Uddin, A Soylu
Scientific Reports 11 (1), 16455, 2021
A facial expression recognition system using robust face features from depth videos and deep learning
MZ Uddin, MM Hassan, A Almogren, M Zuair, G Fortino, J Torresen
Computers & Electrical Engineering 63, 114-125, 2017
Deep learning for prediction of depressive symptoms in a large textual dataset
MZ Uddin, KK Dysthe, A Følstad, PB Brandtzaeg
Neural Computing and Applications 34 (1), 721-744, 2022
A depth camera-based human activity recognition via deep learning recurrent neural network for health and social care services
SU Park, JH Park, MA Al-Masni, MA Al-Antari, MZ Uddin, TS Kim
Procedia Computer Science 100, 78-84, 2016
A robust human activity recognition approach using openpose, motion features, and deep recurrent neural network
FM Noori, B Wallace, MZ Uddin, J Torresen
Scandinavian conference on image analysis, 299-310, 2019
Facial expression recognition using salient features and convolutional neural network
MZ Uddin, W Khaksar, J Torresen
IEEE Access 5, 26146-26161, 2017
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