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Burst communication by means of buffer allocation in body sensor networks: Exploiting signal processing to reduce the number of transmissions

机译:通过人体传感器网络中的缓冲区分配进行突发通信:利用信号处理来减少传输次数

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摘要

Monitoring human movements using wireless sensory devices promises to revolutionize the delivery of healthcare services. Such platforms use inertial information of their subjects for motion analysis. Potentially, each action or disease can be discovered by collaborative processing of sensor data from multiple locations on the body. This functionality is provided by a Body Sensor Network (BSN), which consists of several wireless sensor nodes positioned on different parts of the body. In spite of the revolutionary potential of this platform, power requirements and wearability have limited the commercialization of these systems. In this paper, we present an energy-efficient communication model for BSN applications which uses buffers to limit communication to short bursts, decreasing power usage and simplifying the communication. We formulate an optimization problem to reduce transmissions among sensor nodes and present an ILP-based solution and a fast greedy heuristic algorithm. We show that despite the decreased transmission efficiency, our greedy algorithm can be adopted for fast allocation of buffers in real-time. We experimentally compare the performance of both of the proposed approaches to the performance of an unbuffered system. Our results demonstrate that ILP and greedy solutions can reduce the amount of transmissions by an average factor of 70 and 41, respectively.
机译:使用无线传感设备监视人体运动有望彻底改变医疗服务的提供方式。这样的平台使用其主体的惯性信息进行运动分析。潜在地,可以通过协同处理来自身体上多个位置的传感器数据来发现每个动作或疾病。此功能由人体传感器网络(BSN)提供,该网络由位于人体不同部位的几个无线传感器节点组成。尽管该平台具有革命性的潜力,但电源要求和可穿戴性限制了这些系统的商业化。在本文中,我们提出了一种BSN应用的节能通信模型,该模型使用缓冲区将通信限制为短脉冲串,从而降低了功耗并简化了通信。我们提出了一个优化问题以减少传感器节点之间的传输,并提出了一个基于ILP的解决方案和一种快速贪婪启发式算法。我们表明,尽管传输效率降低了,我们的贪婪算法仍可用于实时快速分配缓冲区。我们在实验上比较了两种建议方法与无缓冲系统的性能。我们的结果表明,ILP和贪婪解决方案可以分别平均减少70和41的传输量。

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