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Finding the Proper Mental Stress Model Depending on Context using Edge Devices and Machine Learning

机译:根据使用边缘设备和机器学习,根据上下文找到适当的心理压力模型

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Aim of the paper is to demonstrate how finding the proper mental stress model and its dependencies on context using Machine Learning technologies resident on edge devices to allow the user and remote medical staff to continuously monitor and control the user stress status. To this aim, the paper first discusses the method used to measure the mental stress inspired by tools available on the market, secondly it illustrates how the sensed bio-data should be preprocessed on an edge device to support the first control actions. Finally it shows how such data may used to derive a stress model of the user using a machine learning algorithm on edge devices and/or computing server. An example illustrates the proposed methodology, how this model can be tuned depending on context using the data collected by the wearable monitoring device, and how the entire system can be implemented on few interconnected micro-boards. A case study demonstrates how deriving the mental stress model of a subject depending on contexts also by using the stress mental model derived from a community of people.
机译:本文的目的是展示如何找到适当的心理应激模型和使用的边缘设备,机器学习技术的居民,允许用户和远程医务人员连续监视和控制用户应激状态的情况下它的依赖。为了这个目的,纸张首先讨论用于测量由在市场上可用的工具激发了精神压力的方法中,其次,它示出了如何感测到的生物数据应的边缘设备上进行预处理,以支持所述第一控制动作。最后,它说明了如何这样的数据可以用于导出使用的边缘设备和/或计算服务器的机器学习算法的用户的压力模型。一个例子示出了提出的方法,这是如何模型可以根据使用由可佩戴监测装置收集的数据上下文被调谐,以及如何,整个系统可以在几个互连的微板来实现。案例研究演示了如何推导取决于上下文对象的心理应激模型也可以通过使用从人的社区产生的应激心理模型。

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