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Markov decision process (MDP) framework for software power optimization using call profiles on mobile phones

机译:Markov决策过程(MDP)框架,用于使用手机上的呼叫配置文件进行软件功率优化

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We present an optimization framework for delay-tolerant data applications on mobile phones based on the Markov decision process (MDP). This process maximizes an application specific reward or utility metric, specified by the user, while still meeting a talk-time constraint, under limited resources such as battery life. This approach is novel for two reasons. First, it is user profile driven, which means that the user’s history is an input to help predict and reserve resources for future talk-time. It is also dynamic: an application will adapt its behavior to current phone conditions such as battery level or time before the next recharge period. We propose efficient techniques to solve the optimization problem based on dynamic programming and illustrate how it can be used to optimize realistic applications. We also present a heuristic based on the MDP framework that performs well and is highly scalable for multiple applications. This approach is demonstrated using two applications: Email and Twitter synchronization with different priorities. We present experimental results based on Google’s Android platform running on an Android Develepor Phone 1 (HTC Dream) mobile phone.
机译:我们提出了一种基于马尔可夫决策过程(MDP)的手机上延迟容忍数据应用程序的优化框架。该过程在有限的资源(例如电池寿命)下,使用户指定的特定于应用的奖励或效用指标最大化,同时仍然满足通话时间限制。这种方法很新颖,原因有二。首先,它是由用户配置文件驱动的,这意味着用户的历史记录可以帮助预测和保留资源以用于将来的通话时间。它也是动态的:应用程序将使其行为适应当前的电话条件,例如电池电量或下一个充电周期之前的时间。我们提出有效的技术来解决基于动态编程的优化问题,并说明如何将其用于优化实际应用。我们还提出了一种基于MDP框架的启发式方法,该方法性能良好,可针对多个应用程序进行高度扩展。使用两个应用程序演示了此方法:具有不同优先级的电子邮件和Twitter同步。我们展示了基于在Android Develepor Phone 1(HTC Dream)手机上运行的Google Android平台的实验结果。

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