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Lang He
Lang He
Xi'an University of Posts and Telecommunications
Dirección de correo verificada de mail.nwpu.edu.cn
Título
Citado por
Citado por
Año
Automated depression analysis using convolutional neural networks from speech
L He, C Cao
Journal of biomedical informatics 83, 103-111, 2018
2462018
Multimodal Affective Dimension Prediction Using Deep Bidirectional Long Short-Term Memory Recurrent Neural Networks
L He, D Jiang, L Yang, E Pei, P Wu, H Sahli
ACM MM2015, pp.73-80, 2015
1932015
Decision Tree Based Depression Classification from Audio Video and Language Information
L Yang, D Jiang, L He, E Pei, MC Oveneke, H Sahli
ACM MM2016, pp. 89-96, 2016
1772016
Deep learning for depression recognition with audiovisual cues: A review
L He, M Niu, P Tiwari, P Marttinen, R Su, J Jiang, C Guo, H Wang, S Ding, ...
Information Fusion 80, 56-86, 2022
1612022
Automatic depression recognition using CNN with attention mechanism from videos
L He, JCW Chan, Z Wang
Neurocomputing 422, 165-175, 2021
1292021
Automatic depression analysis using dynamic facial appearance descriptor and dirichlet process fisher encoding
L He, D Jiang, H Sahli
IEEE Transactions on Multimedia 21 (6), 1476-1486, 2018
832018
Multimodal depression recognition with dynamic visual and audio cues
L He, D Jiang, H Sahli
2015 International Conference on Affective Computing and Intelligent …, 2015
622015
Intelligent system for depression scale estimation with facial expressions and case study in industrial intelligence
L He, C Guo, P Tiwari, HM Pandey, W Dang
International journal of intelligent systems 37 (12), 10140-10156, 2022
482022
DepNet: An automated industrial intelligent system using deep learning for video‐based depression analysis
L He, C Guo, P Tiwari, R Su, HM Pandey, W Dang
International Journal of Intelligent Systems 37 (7), 3815-3835, 2022
292022
Reducing noisy annotations for depression estimation from facial images
L He, P Tiwari, C Lv, WS Wu, L Guo
Neural Networks 153, 120-129, 2022
242022
Depressioner: Facial dynamic representation for automatic depression level prediction
M Niu, L He, Y Li, B Liu
Expert Systems with Applications 204, 117512, 2022
182022
Audio–visual collaborative representation learning for dynamic saliency prediction
H Ning, B Zhao, Z Hu, L He, E Pei
Knowledge-Based Systems 256, 109675, 2022
122022
基于事件驱动的面向服务计算模型
何浪, 史维峰, 董建刚
计算机工程 36 (18), 57-59, 2010
102010
An Improved Global–Local Fusion Network for Depression Detection Telemedicine Framework
L Zhang, J Zhao, L He, J Jia, X Meng
IEEE Internet of Things Journal 10 (22), 20230-20240, 2023
72023
Communication-Efficient and Privacy-Preserving Aggregation in Federated Learning With Adaptability
X Sun, Z Yuan, X Kong, L Xue, L He, Y Lin
IEEE Internet of Things Journal, 2024
52024
CPSS-FAT: A consistent positive sample selection for object detection with full adaptive threshold
X Yang, J Wu, L He, S Ma, Z Hou, W Sun
Pattern Recognition 141, 109627, 2023
52023
COVIDNet: An automatic architecture for COVID-19 detection with deep learning from chest X-ray images
L He, P Tiwari, R Su, X Shi, P Marttinen, N Kumar
IEEE Internet of Things Journal 9 (13), 11376-11384, 2021
52021
LMVD: A Large-Scale Multimodal Vlog Dataset for Depression Detection in the Wild
L He, K Chen, J Zhao, Y Wang, E Pei, H Chen, J Jiang, S Zhang, J Zhang, ...
Authorea Preprints, 2024
32024
An ensemble learning-enhanced multitask learning method for continuous affect recognition from facial images
E Pei, Z Hu, L He, H Ning, AD Berenguer
Expert Systems with Applications 236, 121290, 2024
32024
A novel Image-Data-Driven and Frequency-Based method for depression detection
J Zhao, L Zhang, Y Cui, J Shi, L He
Biomedical Signal Processing and Control 86, 105248, 2023
32023
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