Computing aspects of monitoring walking disorder using body sensor network and neural network

D. Acharjee, A. Mukherjee, N. Mukherjee
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引用次数: 4

Abstract

Here, it is proposed to monitor walking disorder of any patient with the help of wireless three dimensional (3D) accelerometer based body sensors and its networks. We gather Ground Truth Data from the sensors, filter it, boost up it when required, then collect some important features and compare with the features of run time data using different algorithms developed by us. Where, for matching the run time features, we use supervised learning method of back propagation neural network. After gathering data, a prototype model of computation is developed which may be used in any motion disorder of any subjects like: patients, athletes, pilots and astronauts. The contribution of this paper is focused on to develop a model of computational processes required to monitor activity recognition system. The computing model developed is validated working over different walking motion disorders of different subjects and then discussed how this model can be applied in an organization to provide internet based online patient's information services with the help of Feature Server and Local Server connected by wireless radio link of Personal Computing Devices like mobile phone, PDA, laptop etc.
用身体传感器网络和神经网络监测行走障碍的计算方面
本研究提出利用基于身体传感器及其网络的无线三维(3D)加速度计来监测任何患者的行走障碍。我们从传感器中收集地面真实数据,对其进行过滤,在需要时进行增强,然后使用我们开发的不同算法收集一些重要特征并与运行时数据的特征进行比较。其中,为了匹配运行时特征,我们使用了反向传播神经网络的监督学习方法。在收集数据后,开发出一个计算的原型模型,可用于任何对象的任何运动障碍,如:患者,运动员,飞行员和宇航员。本文的贡献集中在开发一个监测活动识别系统所需的计算过程模型。通过对不同受试者不同行走运动障碍的计算模型进行验证,并讨论了如何将该模型应用于组织中,利用手机、PDA、笔记本电脑等个人计算设备通过无线链路连接的Feature Server和Local Server,提供基于internet的在线患者信息服务。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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