Exploiting Rush Hours for Energy-Efficient Contact Probing in Opportunistic Data Collection

Xiuchao Wu, Kenneth N. Brown, C. Sreenan
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引用次数: 18

Abstract

In many potential wireless sensor network applications, the cost of the base station infrastructure can be prohibitive. Instead, we consider the use of mobile devices carried by people in their daily life to collect sensor data opportunistically. As the movement of these mobile nodes is, by definition, uncontrolled, contact probing becomes a challenging task, particularly for sensor nodes which need to be aggressively duty-cycled to achieve long life. It has been reported that when the duty-cycle of a sensor node is fixed, SNIP, a sensor node-initiated probing mechanism, performs much better than mobile node-initiated probing mechanisms. Considering that the intended applications are delay-tolerant, mobile nodes tend to follow some repeated mobility patterns, and contacts are distributed unevenly in temporal, SNIP-RH is proposed in this paper to further improve the performance of contact probing through exploiting Rush Hours during which contacts arrive more frequently. In SNIP-RH, SNIP is activated only when the time is within Rush Hours and there are enough data to be uploaded in the next probed contact. As for the duty-cycle, it is selected based on the mean of contact length that is learned on line. Both analysis and simulation results indicate that under a typical simulated road-side wireless sensor network scenario, SNIP-RH can significantly reduce the energy consumed for probing the contacts, that are necessary for uploading the sensed data, or significantly increase the probed contact capacity under a sensor node's energy budget for contact probing.
利用高峰时段进行机会性数据采集中的节能接触探测
在许多潜在的无线传感器网络应用中,基站基础设施的成本可能令人望而却步。相反,我们考虑使用人们在日常生活中携带的移动设备来机会主义地收集传感器数据。根据定义,由于这些移动节点的运动是不受控制的,接触探测成为一项具有挑战性的任务,特别是对于需要积极占空循环以实现长寿命的传感器节点。有报道称,当传感器节点的占空比固定时,SNIP(传感器节点发起的探测机制)的性能要比移动节点发起的探测机制好得多。考虑到目标应用具有延迟容忍性,移动节点往往遵循一些重复的移动模式,并且接触在时间上分布不均匀,本文提出了sniph - rh,通过利用接触到达频率较高的高峰时段进一步提高接触探测性能。在SNIP- rh中,SNIP只有在高峰时间内才会被激活,并且有足够的数据可以在下一次探测接触中上传。对于占空比,则根据在线学习到的接触长度的平均值来选择。分析和仿真结果均表明,在典型的模拟路边无线传感器网络场景下,SNIP-RH可以显著降低传感器数据上传所需的触点探测能量消耗,或者在传感器节点用于触点探测的能量预算下显著增加被探测触点容量。
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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