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Signature Inspired Home Environments Monitoring System Using IR-UWB Technology

机译:使用IR-UWB技术签名启发的家庭环境监控系统

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Home monitoring and remote care systems aim to ultimately provide independent living care scenarios through non-intrusive, privacy-protecting means. Their main aim is to provide care through appreciating normal habits, remotely recognizing changes and acting upon those changes either through informing the person themselves, care providers, family members, medical practitioners, or emergency services, depending on need. Care giving can be required at any age, encompassing young to the globally growing aging population. A non-wearable and unobtrusive architecture has been developed and tested here to provide a fruitful health and wellbeing-monitoring framework without interfering in a user's regular daily habits and maintaining privacy. This work focuses on tracking locations in an unobtrusive way, recognizing daily activities, which are part of maintaining a healthy/regular lifestyle. This study shows an intelligent and locally based edge care system (ECS) solution to identify the location of an occupant's movement from daily activities using impulse radio-ultra wide band (IR-UWB) radar. A new method is proposed calculating the azimuth angle of a movement from the received pulse and employing radar principles to determine the range of that movement. Moreover, short-term fourier transform (STFT) has been performed to determine the frequency distribution of the occupant's action. Therefore, STFT, azimuth angle, and range calculation together provide the information to understand how occupants engage with their environment. An experiment has been carried out for an occupant at different times of the day during daily household activities and recorded with time and room position. Subsequently, these time-frequency outcomes, along with the range and azimuth information, have been employed to train a support vector machine (SVM) learning algorithm for recognizing indoor locations when the person is moving around the house, where little or no movement indicates the occurrence of abnormalities. The implemented framework is connected with a cloud server architecture, which enables to act against any abnormality remotely. The proposed methodology shows very promising results through statistical validation and achieved over 90% testing accuracy in a real-time scenario.
机译:家庭监控和远程护理系统旨在通过非侵入性,隐私保护手段最终提供独立的生活保健情景。他们的主要目标是通过欣赏正常习惯,远程认识到这些改变,并通过通知该人自己,护理提供者,家庭成员,医疗从业人员或应急服务来识别改变和行动,这取决于需要。任何年龄都需要照顾给予,包括年轻人对全球衰老的人口。这里开发并测试了不可穿戴和不引人注目的架构,以提供富有成效的健康和福利监测框架,而不会干扰用户的常规日常习惯和维护隐私。这项工作侧重于以不引人注目的方式跟踪地点,识别日常活动,这是维护健康/普通生活方式的一部分。本研究显示了智能和本地的边缘护理系统(ECS)解决方案,以确定使用脉冲无线电超宽带(IR-UWB)雷达从日常活动中占用乘员运动的位置。提出了一种新方法,计算从接收的脉冲和采用雷达原理的运动的方位角来确定该运动的范围。此外,已经执行了短期傅里叶变换(STFT)以确定乘员动作的频率分布。因此,STFT,方位角和范围计算在一起提供了了解乘客如何与其环境接触的信息。在日常家庭活动期间在当天的不同时间进行了一个实验,并随着时间和房间的位置记录。随后,这些时间频率结果以及范围和方位角信息已经用于训练支持向量机(SVM)学习算法以识别当人在房屋周围时识别室内位置,几乎没有移动表明发生异常。实现的框架与云服务器架构连接,这使得能够远程行动任何异常。该方法通过统计验证表现出非常有前途的结果,并在实时方案中实现了超过90%的测试精度。

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