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Construction of the interest prediction models for nursery school child using a single-channel electroencephalograph

机译:使用单通道脑电图的幼儿园儿童兴趣预测模型的构建

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This paper aims to construct the interest prediction models for nursery school child using a single-channel electroencephalograph (EEG). Recently, the number of dual income households who leave their children in nursery schools have been increasing in Japan. Such parents are not able to grasp their children's behavior in daily life. Considering these issues, the researches related to child behavioral analysis have been proceeded by using image data taken from digital cameras. However, it is difficult to acquire the behavioral information from the digital cameras at anytime, anywhere. Therefore, we are focusing on wearable systems for keeping an eye on a child. Specifically, we adopt the EEG to design the constructing system. In this paper, we acquire single-channel EEG recordings from nursery school children when they watch picture-story shows. Furthermore, we apply a non-negative matrix factorization (NMF) to artifactitious rejection and a genetic algorithm-partial least squares (GA-PLS) regression to detect important frequency components and design the interest prediction models for the child using a single-channel EEG. As a result, we showed that over 60% estimation accuracy could be obtained all except one subject and the specific combinations of the frequency components selected by the GA-PLS, and we also could confirm that the NMF could remove the eye blink artifacts.
机译:本文旨在使用单通道脑电图(EEG)构建幼儿园儿童的兴趣预测模型。最近,在幼儿园离开孩子的双重收入家庭的数量在日本越来越多。这些父母无法掌握日常生活中的孩子的行为。考虑到这些问题,通过使用从数码相机拍摄的图像数据进行了与儿童行为分析相关的研究。但是,难以随时随地从数码相机获取行为信息。因此,我们专注于可穿戴的系统,以便关注孩子。具体而言,我们采用EEG来设计构建系统。在本文中,我们在观看画面故事的表演时从幼儿园儿童获取单通道EEG录音。此外,我们将非负矩阵分解(NMF)应用于伪造的抑制和遗传算法 - 部分最小二乘(GA-PLS)回归,以检测使用单通道EEG的子项的关注频率分量和设计子的兴趣预测模型。结果,我们认为,除了由GA-PLS选择的频率分量的频率分量的特定组合之外,可以获得超过60%的估计准确度,我们也可以确认NMF可以去除眼睛眨眼伪像。

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