Cross-Domain Facial Expression Recognition by Combining Transfer Learning and Face-Cycle Generative Adversarial Network

被引:0
|
作者
Zhou, Yu [1 ]
Yang, Ben [2 ]
Liu, Zhenni [1 ]
Wang, Qian [1 ]
Xiong, Ping [1 ]
机构
[1] Zhongnan Univ Econ & Law, Sch Informat Engn, Wuhan 430073, Peoples R China
[2] Xi An Jiao Tong Univ, Inst Artificial Intelligence & Robot, Xian 710049, Peoples R China
关键词
Facial expression recognition; Transfer learning; Generative Adversarial Network; PATTERNS; MODEL;
D O I
10.1007/s11042-024-18713-y
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Facial expression recognition (FER) is one of the important research topics in computer vision. It is difficult to obtain high accuracy in FER tasks, especially when the high-quality labeled data are insufficient. Indeed, the facial images with non-frontal faces, occlusions and inaccurate labels heavily affects the training results of FER network models, which causes low recognition accuracy and poor robustness. To this end, we propose a novel strategy for FER tasks through combining transfer learning and generative adversarial network (GAN). First, we enlarge the training datasets by introducing an effective face-cycle GAN to synthesize additional facial expression images. Then, we develop two FER neural networks based on two representative convolutional neural networks (CNN). By transferring the cross-domain knowledge from the two well-trained CNNs to the proposed FER CNNs, it not only obtains more pre-trained knowledge and also accelerates the training process greatly. The experimental results show that the proposed FER CNNs integrated with the new face-cycle GAN achieves high accuracies 98.44%, 95.24% and 91.67% on three widely used datasets CK + , JAFFE, and Oulu-CASIA, respectively. Compared to the results obtained by other state-of-the-art FER methods, the accuracies are improved by 0.34%, 0.24%, and 2.62%, respectively.
引用
收藏
页码:90289 / 90314
页数:26
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