A structured approach to the simulation, analysis and characterization of smartphone applications

Dam Sunwoo, William Wang, Mrinmoy Ghosh, Chander Sudanthi, G. Blake, C. D. Emmons, N. Paver
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引用次数: 35

Abstract

Full-system simulators are invaluable tools for designing new architectures due to their ability to simulate full applications as well as capture operating system behavior, virtual machine or hypervisor behavior, and interference between concurrently-running applications. However, the systems under investigation and applications under test have become increasingly complicated leading to prohibitively long simulation times for a single experiment. This problem is compounded when many permutations of system design parameters and workloads are tested to investigate system sensitivities and full-system effects with confidence. In this paper, we propose a methodology to tractably explore the processor design space and to characterize applications in a full-system simulation environment. We combine SimPoint, Principal Component Analysis and Fractional Factorial experimental designs to substantially reduce the simulation effort needed to characterize and analyze workloads. We also present a non-invasive user-interface automation tool to allow us to study all types of workloads in a simulation environment. While our methodology is generally applicable to many simulators and workloads, we demonstrate the application of our proposed flow on smartphone applications running on the Android operating system within the gem5 simulation environment.
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一个结构化的方法来模拟,分析和表征智能手机应用程序
全系统模拟器是设计新体系结构的宝贵工具,因为它们能够模拟完整的应用程序,以及捕获操作系统行为、虚拟机或管理程序行为,以及并发运行的应用程序之间的干扰。然而,研究中的系统和测试中的应用变得越来越复杂,导致单个实验的模拟时间过长。当测试系统设计参数和工作负载的许多排列以研究系统敏感性和全系统影响时,这个问题变得更加复杂。在本文中,我们提出了一种在全系统仿真环境中可追踪地探索处理器设计空间和表征应用程序的方法。我们结合SimPoint、主成分分析和分数因子实验设计,大大减少了表征和分析工作负载所需的模拟工作量。我们还提供了一个非侵入式用户界面自动化工具,使我们能够在模拟环境中研究所有类型的工作负载。虽然我们的方法通常适用于许多模拟器和工作负载,但我们在gem5模拟环境中在Android操作系统上运行的智能手机应用程序上演示了我们提出的流程的应用程序。
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