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利用可穿戴传感器估算戴帽时的头皮湿度。

Estimating Scalp Moisture in a Hat Using Wearable Sensors.

机构信息

Graduate School of Engineering, Kobe University, 1-1 Rokkodai-cho, Nada-ku, Hyogo, Kobe 657-8501, Japan.

Education and Research Department Center for Interdisciplinary AI and Data Science, Ochanomizu University, 2-1-1 Otsuka, Bunkyo-ku, Tokyo 112-8610, Japan.

出版信息

Sensors (Basel). 2023 May 22;23(10):4965. doi: 10.3390/s23104965.

Abstract

Hair quality is easily affected by the scalp moisture content, and hair loss and dandruff will occur when the scalp surface becomes dry. Therefore, it is essential to monitor scalp moisture content constantly. In this study, we developed a hat-shaped device equipped with wearable sensors that can continuously collect scalp data in daily life for estimating scalp moisture with machine learning. We established four machine learning models, two based on learning with non-time-series data and two based on learning with time-series data collected by the hat-shaped device. Learning data were obtained in a specially designed space with a controlled environmental temperature and humidity. The inter-subject evaluation showed a Mean Absolute Error (MAE) of 8.50 using Support Vector Machine (SVM) with 5-fold cross-validation with 15 subjects. Moreover, the intra-subject evaluation showed an average MAE of 3.29 in all subjects using Random Forest (RF). The achievement of this study is using a hat-shaped device with cheap wearable sensors attached to estimate scalp moisture content, which avoids the purchase of a high-priced moisture meter or a professional scalp analyzer for individuals.

摘要

头发质量很容易受到头皮水分含量的影响,当头皮表面变干时,就会出现脱发和头皮屑。因此,必须经常监测头皮水分含量。在这项研究中,我们开发了一种带有可穿戴传感器的帽子状设备,可以在日常生活中持续收集头皮数据,并用机器学习来估计头皮水分。我们建立了四个机器学习模型,两个基于非时间序列数据的学习,两个基于帽子状设备采集的时间序列数据的学习。学习数据是在一个具有受控环境温度和湿度的专门空间中获得的。通过对 15 名受试者进行 5 折交叉验证,支持向量机(SVM)的组间评估显示 MAE 为 8.50。此外,使用随机森林(RF)对所有受试者进行的组内评估显示平均 MAE 为 3.29。本研究的成果是使用带有廉价可穿戴传感器的帽子状设备来估计头皮水分含量,这避免了个人购买昂贵的水分计或专业的头皮分析器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/50a5/10224466/30535d8c5cb1/sensors-23-04965-g001.jpg

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