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Utilize Signal Traces from Others? A Crowdsourcing Perspective of Energy Saving in Cellular Data Communication

机译:利用别人的信号走线?蜂窝数据通信中节能的众包视角

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With the tremendous growth in wireless network deployment and increasing use of mobile devices, e.g., smartphones and tablets, improving energy efficiency in such devices, especially with communication driven workloads, is critical to providing a satisfactory user experience. Studies show that signal strength plays an important role on energy consumption of cellular data communications. While energy consumption can be minimized by accurately predicting signal strengths and reacting to it in real-time, the dynamic nature of wireless environments makes signal strengths highly unpredictable. In this paper, after analyzing in detail the signal strength variation and its impact on energy consumption, we propose to use crowdsourcing approach to optimize mobile devices' energy efficiency by utilizing signal strength traces reported/shared by other users/devices in cellular networks. Via a comprehensive measurement study, we observe that signal strength traces collected from different devices are pseudo-identical, and they even exhibit similar threshold-based behaviors in the relationship between signal strength and device power consumption. Based on our observations, we propose a predictive scheduling algorithm that: (i) selects the right set of signal strength traces based on its location, (ii) applies a filter to smooth out signal strengths and hide abrupt changes, (iii) digitizes the signal strength to “good” and “bad” areas, and (iv) schedules transmissions based on power-throughput characteristics to optimize the transmission energy efficiency. To demonstrate the efficacy of the proposed algorithms, we prototype the crowdsourcing-based predicative scheduling algorithm on Android-based smartphones. Our experiment results from real-life driving tests demonstrate that, by leveraging others' signal traces, mobile devices can save energy up to 35 percent compared to the conventional opportunistic scheduling, i.e., schedule transmissions o- ly based on instantaneous channel conditions.
机译:随着无线网络部署的巨大增长以及移动设备(例如,智能手机和平板电脑)的使用增加,提高此类设备的能源效率,尤其是在通信驱动的工作负载下,对于提供令人满意的用户体验至关重要。研究表明,信号强度在蜂窝数据通信的能耗中起着重要作用。尽管可以通过准确预测信号强度并对其进行实时反应来最大程度地降低能耗,但无线环境的动态特性使信号强度非常难以预测。在本文中,在详细分析了信号强度变化及其对能耗的影响之后,我们建议使用众包方法,利用蜂窝网络中其他用户/设备报告/共享的信号强度轨迹来优化移动设备的能效。通过全面的测量研究,我们观察到从不同设备收集的信号强度轨迹是伪相同的,甚至在信号强度和设备功耗之间的关系中甚至表现出类似的基于阈值的行为。根据我们的观察,我们提出一种预测性调度算法:(i)根据其位置选择正确的信号强度轨迹集;(ii)应用滤波器使信号强度平滑并隐藏突变,(iii)将信号数字化信号强度到达“好”和“坏”区域,(iv)根据功率吞吐量特性调度传输,以优化传输能效。为了证明所提出算法的有效性,我们在基于Android的智能手机上原型化了基于众包的预测性调度算法。我们从实际驾驶测试中得出的实验结果表明,与传统的机会调度(即仅基于瞬时信道条件进行的调度)相比,通过利用其他人的信号轨迹,移动设备可以节省多达35%的能量。

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