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首页> 外文期刊>IEEJ Transactions on Electrical and Electronic Engineering >Prediction of the VDT Worker's Headache Using Convolutional Neural Network with Class Activation Mapping
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Prediction of the VDT Worker's Headache Using Convolutional Neural Network with Class Activation Mapping

机译:使用卷积神经网络对VDT工人的头痛进行预测,并具有类激活映射

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摘要

A headache and drowsiness are the most common symptoms of fatigue caused by a long duration of work using a visual display terminal (VDT). A sign of the headache generally involves placing a hand on the head, eyes, nose, or face. The recognition of these gestures is a challenging problem due to the difficulty in similar skin color of hands and face. In this paper, a method for classifying six hand over face poses, which can identify the signs of headache for the VDT workers is presented. In the proposed method, a deep learning based on a convolutional neural network (CNN) for the classification of the hand poses is applied. In addition, a class activation map (CAM) to visualize the prediction of the classification network for localization of the hand over face poses was implemented. From the experimental results, the hand poses as the signs of frontal, and unilateral headaches without the classification overfitting and data biasing errors were successfully classified. Our proposed method has achieved high accuracy recognition ratio of 98.5% for classification of the hand over face poses as the prediction of headaches. (c) 2020 Institute of Electrical Engineers of Japan. Published by Wiley Periodicals LLC.
机译:头痛和嗜睡是使用视觉显示终端(VDT)长时间工作造成的最常见疲劳症状。头痛的迹象通常涉及将手放在头部,眼睛,鼻子或脸上。这些手势的认识是一个具有挑战性的问题,因为手和脸部的肤色相似。在本文中,提出了一种可以识别VDT工人的头痛迹象的六只手姿势的方法。在提出的方法中,应用了基于卷积神经网络(CNN)进行手部姿势分类的深度学习。此外,还实施了一个类激活图(CAM),以可视化分类网络用于脸部姿势的分类网络的预测。从实验结果中,手摆姿势是额叶的迹象,而没有分类过度拟合和数据偏见错误的单侧头痛已成功分类。我们提出的方法已达到高精度识别率为98.5%,用于将手上姿势分类为头痛的预测。 (c)2020年日本电气工程师研究所。由Wiley Wendericals LLC出版。

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