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Minimizing Energy Consumption in Body Sensor Networks via Convex Optimization

机译:通过凸优化将人体传感器网络中的能耗降至最低

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Body Sensor Networks (BSNs) consist of miniature sensors deployed on or implanted into the human body for health monitoring. Conserving the energy of these sensors, while guaranteeing a required level of performance, is a key challenge in BSNs. In terms of communication protocols, this translates to minimizing energy consumption while limiting the latency in data transfer. In this paper, we focus on polling-based communication protocols for BSNs, and address the problem of optimizing the polling schedule to achieve minimal energy consumption and latency. We show that this problem can be posed as a geometric program, which belongs to the class of convex optimization problems, solvable in polynomial time. We also introduce a dynamic priority vector for each sensor, based on the observation that relative priorities of sensors in a BSN change over time. This vector is used to develop a decision-tree based approach for resolving scheduling conflicts among devices. The proposed framework is applicable to a broad class of periodic polling-based communication protocols. We design one such protocol in detail and show that it achieves an improvement of approximately 45% over the widely accepted standard IEEE 802.15.4 MAC protocol.
机译:人体传感器网络(BSN)由部署在人体上或植入人体以进行健康监测的微型传感器组成。在保证所需性能水平的同时,节约这些传感器的能量是BSN的关键挑战。就通信协议而言,这可将能耗降至最低,同时限制数据传输的延迟。在本文中,我们将重点放在针对BSN的基于轮询的通信协议上,并解决优化轮询计划以实现最小的能耗和延迟的问题。我们证明了这个问题可以用一个几何程序来提出,它属于凸优化问题,可以在多项式时间内求解。基于BSN中传感器的相对优先级随时间变化的观察,我们还为每个传感器引入了动态优先级向量。该向量用于开发基于决策树的方法来解决设备之间的调度冲突。所提出的框架适用于各种各样的基于周期性轮询的通信协议。我们详细设计了一种这样的协议,并表明它比被广泛接受的标准IEEE 802.15.4 MAC协议提高了约45%。

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