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Application Characterization for Wireless Network Power Management

机译:无线网络电源管理的应用表征

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摘要

The popular IEEE 802.11 standard defines a power saving mode that keeps the network interface in a low power sleep state and periodically powers it up to synchronize with the base station. The length of the sleep interval, the so called beacon period, affects two dimensions, namely application performance and energy consumption. The main disadvantage of this power saving policy lies in its static nature: a short beacon period wastes energy due to frequent activations of the interface while a long beacon period can cause diminished application responsiveness and performance. While the first aspect, reduction of power consumption, has been studied extensively, the implications on application performance have received only little attention. We argue that the tolerable reduction of performance or quality depends on the application and the user. As an example, a beacon period of only 100 ms slows down RPC-based operations like NFS dramatically, while the user will probably not recognize the additional delay when using a web browser. If at all, known power management algorithms guarantee a system wide limit on performance degradation without differentiating between different application profiles. This work presents an approach to identify on-line the currently running application class by a mapping of network traffic characteristics to a predefined set of application profiles. We propose a power saving policy which dynamically adapts to the detected application profile, thus identifying the application- and user-specific power/performance trade-off. An implementation of the characterization algorithm is presented and evaluated running several typical applications for mobile devices.
机译:流行的IEEE 802.11标准定义了一种省电模式,该模式可将网络接口保持在低功耗睡眠状态,并定期为其加电以与基站同步。睡眠间隔的长度(所谓的信标周期)会影响两个维度,即应用程序性能和能耗。此省电策略的主要缺点在于其静态性质:信标周期短会由于频繁激活接口而浪费能量,而信标周期较长会导致应用程序响应能力和性能下降。尽管对降低功耗的第一个方面进行了广泛的研究,但对应用程序性能的影响只受到很少的关注。我们认为性能或质量的可容忍降低取决于应用程序和用户。例如,只有100毫秒的信标周期会大大降低基于RPC的操作(如NFS)的速度,而用户使用Web浏览器时可能不会意识到额外的延迟。如果有的话,已知的电源管理算法可确保在整个系统范围内降低性能,而不必区分不同的应用程序配置文件。这项工作提出了一种通过将网络流量特征映射到一组预定义的应用程序配置文件来在线识别当前正在运行的应用程序类的方法。我们提出了一种节能策略,该策略可动态适应检测到的应用程序配置文件,从而确定应用程序和用户特定的功率/性能折衷方案。提出并描述了表征算法的一种实现,该算法在移动设备的几种典型应用程序上运行。

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