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eyeSay: Eye Electrooculography Decoding with Deep Learning

机译:眼睛:眼睛电胶凝与深度学习解码

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Consumer electronics that can decode eye movement-induced bio-potential will enable many practices, from voice-free communication, attention tracking, to virtual or augmented reality. We propose a novel deep learning-enabled approach for eye Electrooculography decoding, towards voice-free communication for patients with amyotrophic lateral sclerosis. We have designed a multi-stage convolutional neural network to decode eye dynamics. Our approach and promising results will directly contribute to voice-free communications for patients, and greatly advance the ubiquitous eye EOG-based smart health area.
机译:消费电子能够解码眼睛运动诱导的生物潜力将使许多实践能够从无语音通信,注意力跟踪到虚拟或增强现实。 我们提出了一种新的深度学习的眼睛电胶刻曲线方法,朝着肌营养的侧面硬化症患者的无语音通信。 我们设计了一种多级卷积神经网络来解码眼睛动态。 我们的方法和有前途的结果将直接为患者提供无论何种语音通信,大大推进了普遍存在的Eyog基础智能健康区。

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