Behavioral Estimation for Multiple Possession Positions Using Smartphone Accelerometers

Rui Kitahara, Lifeng Zhang
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Abstract

With the widespread use of smartphones and wearable devices, various research has been conducted using built-in sensors. For example, height estimation and road condi-tion estimation have been performed. In addition, behavioral estimation of the smartphone holder, possession position estimation, and person estimation has also been conducted. However, most of the measurement data is taken by fixing the possession position at a single location and not considering it in actuality when estimating behavior. In this research, we aim to estimate a person’s behavior by considering multiple possession positions. It is necessary to estimate a person’s behavior by considering various possession positions when using behavior estimation as a system. In addition, by treat-ing the time series data acquired by the 3-axis acceleration sensor as a 2-dimensional image using the GAF algorithm, (1) class classification by machine learning is performed.
基于智能手机加速度计的多占有位置行为估计
随着智能手机和可穿戴设备的广泛使用,使用内置传感器进行了各种研究。例如,进行了高度估计和路况估计。此外,还进行了智能手机持有者的行为估计、占有位置估计和人的估计。然而,大多数测量数据是通过将占有位置固定在单个位置来获取的,而在估计行为时没有实际考虑它。在这项研究中,我们的目标是通过考虑多个占有位置来估计一个人的行为。将行为估计作为一个系统,有必要通过考虑不同的占有位置来估计一个人的行为。此外,通过使用GAF算法将3轴加速度传感器获取的时间序列数据作为二维图像处理,(1)通过机器学习进行类分类。
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