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Highly Robust and Wearable Facial Expression Recognition via Deep-Learning-Assisted Soft Epidermal Electronics

机译:通过深受学习辅助的软表皮电子器件高度稳健和可穿戴的面部表情识别

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摘要

The facial expressions are a mirror of the elusive emotion hidden in the mind, and thus, capturing expressions is a crucial way of merging the inward world and virtual world. However, typical facial expression recognition (FER) systems are restricted by environments where faces must be clearly seen for computer vision, or rigid devices that are not suitable for the time-dynamic, curvilinear faces. Here, we present a robust, highly wearable FER system that is based on deep-learning-assisted, soft epidermal electronics. The epidermal electronics that can fully conform on faces enable high-fidelity biosignal acquisition without hindering spontaneous facial expressions, releasing the constraint of movement, space, and light. The deep learning method can significantly enhance the recognition accuracy of facial expression types and intensities based on a small sample. The proposed wearable FER system is superior for wide applicability and high accuracy. The FER system is suitable for the individual and shows essential robustness to different light, occlusion, and various face poses. It is totally different from but complementary to the computer vision technology that is merely suitable for simultaneous FER of multiple individuals in a specific place. This wearable FER system is successfully applied to human-avatar emotion interaction and verbal communication disambiguation in a real-life environment, enabling promising human-computer interaction applications.
机译:这些面部表情难以捉摸的情感隐藏在心灵的一面镜子,因此,捕捉表情是合并的内心世界和虚拟世界的重要途径。然而,典型的面部表情识别(FER)系统是由其中面必须清楚地看到用于计算机视觉,或不适合的时动态刚性装置,曲线面的环境限制。在这里,我们提出了基于深学习辅助,柔软表皮电子强大的,可穿性高FER系统。表皮电子可以在脸上完全符合实现高保真的生物信号采集,而不会妨碍自发的面部表情,释放运动,空间和光线的约束。深学习方法可以显著提高基于小样本表情类型和强度的识别精度。所提出的可穿戴FER系统优于用于广泛的适用性,精度高。的FER系统适用于个人和节目基本鲁棒性不同的光,闭塞,和各种面部姿势。这是完全不同的,但互补的计算机视觉技术,仅仅是适用于多个人同时在FER一个特定的地方。这种可穿戴的FER系统成功应用于人类化身情感互动和口头沟通消歧在现实生活环境,使有前途的人机交互的应用程序。

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