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An Intelligent Framework for Energy-Aware Mobile Computing Subject to Stochastic System Dynamics.

机译:受随机系统动力学影响的能量感知型移动计算智能框架。

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摘要

User satisfaction is pivotal to the success of mobile applications. At the same time, it is imperative to maximize the energy efficiency of the mobile device to ensure optimal usage of the limited energy source available to mobile devices while maintaining the necessary levels of user satisfaction. However, this is complicated due to user interactions, numerous shared resources, and network conditions that produce substantial uncertainty to the mobile device's performance and power characteristics. In this dissertation, a new approach is presented to characterize and control mobile devices that accurately models these uncertainties. The proposed modeling framework is a completely data-driven approach to predicting power and performance. The approach makes no assumptions on the distributions of the underlying sources of uncertainty and is capable of predicting power and performance with over 93% accuracy.;Using this data-driven prediction framework, a closed-loop solution to the DEM problem is derived to maximize the energy efficiency of the mobile device subject to various thermal, reliability and deadline constraints. The design of the controller imposes minimal operational overhead and is able to tune the performance and power prediction models to changing system conditions. The proposed controller is implemented on a real mobile platform, the Google Pixel smartphone, and demonstrates a 19% improvement in energy efficiency over the standard frequency governor implemented on all Android devices.
机译:用户满意度对于移动应用程序的成功至关重要。同时,必须最大限度地提高移动设备的能源效率,以确保最佳使用可用于移动设备的有限能源,同时保持必要的用户满意度。但是,由于用户交互,大量共享资源以及网络条件(使移动设备的性能和功率特性产生很大的不确定性),这使情况变得复杂。本文提出了一种新的方法来表征和控制可精确模拟这些不确定性的移动设备。所提出的建模框架是一种完全由数据驱动的方法来预测功能和性能。该方法不对潜在不确定性源的分布进行任何假设,并且能够以超过93%的准确度预测功率和性能。;使用此数据驱动的预测框架,得出DEM问题的闭环解决方案以最大程度地提高移动设备的能源效率受到各种热量,可靠性和期限的约束。控制器的设计带来了最小的操作开销,并且能够针对不断变化的系统状况调整性能和功率预测模型。拟议中的控制器在真实的移动平台Google Pixel智能手机上实现,与所有Android设备上实现的标准频率调节器相比,其能效提高了19%。

著录项

  • 作者

    Gaudette, Benjamin.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Computer engineering.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 184 p.
  • 总页数 184
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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