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Disaster Detection by Group Learning Using SVDD for Emergency Rescue Evacuation Support System

机译:使用SVDD进行小组学习的灾难检测紧急救援疏散支持系统

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A lot of people have got injured and died by sudden disasters such as fires and terrorisms. We have proposed an Emergency Rescue Support System (ERESS) for the purpose of reducing victims at the time of disaster. This system operates under mobile ad-hoc networks (MANET). So ERESS uses handheld terminals (ERESS terminals) such as smartphones and tablets. The ERESS terminals have disaster detection algorithm and plural sensors (acceleration, angular velocity, and geomagnetism). The sensors are used for the behavior analysis of ERESS terminal holders. By using the results of the analysis, the system detects the disaster from the behavior of people. In this paper, we propose a new disaster detection method by performing the machine learning in the group using a support vector domain description (SVDD). We are able to detect the behavior that is different from normal state of people in the disaster by using this method. The results of the performance evaluation by disaster simulation experiments show the validity of the proposed method.
机译:很多人因火灾和恐怖主义等突然灾害而受伤和死亡。我们提出了紧急救援支持系统(ERESS),以减少灾难时的受害者。该系统在移动ad-hoc网络(MANET)下运行。因此Ereess使用诸如智能手机和平板电脑的手持终端(Ereess终端)。 ERESS终端具有灾害检测算法和多个传感器(加速度,角速度和地磁)。传感器用于Ereess终端支架的行为分析。通过使用分析结果,系统从人们的行为中检测到灾难。在本文中,我们通过使用支持向量域描述(SVDD)在组中执行机器学习来提出新的灾难检测方法。我们能够通过使用此方法检测与灾难中的人们不同的人不同的行为。灾难仿真实验的性能评估结果表明了该方法的有效性。

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