用于人群感知的资源高效移动通信

C. Wietfeld, Christoph Ide, Bjoern Dusza
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引用次数: 13

摘要

由于新兴移动电话应用程序的通信流量不断增长,资源高效的通信是提供高质量体验的廉价网络服务的关键。虽然一些通信流量需要立即分配资源(例如语音服务),但越来越多的手机应用程序产生了大量的后台通信流量(例如社交网络应用程序,人群感知服务)。本文讨论了预测信道感知传输(pCAT)方案,该方案利用了有利信道条件比恶劣信道条件所需的频谱资源分配少得多的事实。通过利用对用户轨迹和具有有利信道条件的重复点(即所谓的LTE连接热点)的了解,客户端可以根据预期的信道质量和应用数据优先级来调度后台流量传输。因此,可以显著减少应用程序后台流量的频谱消耗。同时,频谱资源的有效利用也影响着移动设备的电池寿命。通过介绍LTE通信的情境感知功耗模型(CoPoMo),我们强调了网络关于频谱资源分配的决策将如何影响电池寿命。一个案例研究将表明,通过简单地改变资源分配方案,而不需要花费更多的频谱资源,使用本文介绍的节能调度(EES)可以减少70%以上的功耗。
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Resource efficient mobile communications for crowd-sensing
Due to continuously growing communication traffic of emerging mobile phone applications, resource-efficient communication is a key to affordable network services with high Quality of Experience. While some communication traffic requires immediate resource allocations (such as voice services), an increasing number of mobile phone applications produce a lot of background communication traffic (e.g. social network apps, crowd sensing services). In this paper we discuss the predictive Channel-Aware Transmission (pCAT) scheme, which leverages the fact, that favorable channel conditions require much less spectrum resource allocation than bad channel conditions. By leveraging the knowledge of user trajectories and recurring spots with favorable channel conditions, the so-called LTE connectivity hot spots, background traffic transmissions can be scheduled by the client according to expected channel quality and application data priority. Thereby, the spectrum consumption of background traffic of applications can be reduced significantly. At the same time, the efficient usage of spectrum resources has also an impact on the battery lifetime of the mobile devices. By introducing the Context-Aware Power Consumption Model (CoPoMo) for LTE communications, we highlight, how decisions about the spectrum resource allocation by the network will impact the battery lifetime. One case study will show, that by simply changing the resource allocation scheme and without the need for spending more spectrum resources, the power consumption can be reduced by more than 70% using the Energy-Efficient Scheduling (EES) introduced in this paper.
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