异构分布式嵌入式系统的多维鲁棒性优化

A. Hamann, R. Racu, R. Ernst
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引用次数: 31

摘要

嵌入式系统优化通常考虑成本、时间、缓冲区大小和功耗等目标。鲁棒性标准,即系统对执行和传输延迟、输入数据速率、CPU时钟速率等属性变化的敏感性,尽管具有实际意义,但却很少受到关注。本文提出了一种优化复杂分布式嵌入式系统中多维鲁棒性准则的方法。该方法的关键新颖之处在于一种可扩展的随机多维灵敏度分析技术,该技术从两个方面逼近了人们所追求的灵敏度前沿,即来自工作空间和非工作系统属性组合空间。我们利用所提出的随机灵敏度分析来推导多维鲁棒性指标,这些指标能够以很少的计算量约束给定系统配置的鲁棒性。所提出的指标可以通过快速识别有前途的系统配置来显著加快多维鲁棒性优化,并且可以在优化过程之后对其进行深入的鲁棒性评估
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multi-dimensional Robustness Optimization in Heterogeneous Distributed Embedded Systems
Embedded system optimization typically considers objectives such as cost, timing, buffer sizes, and power consumption. Robustness criteria, i.e. sensitivity of the system to property variations like execution and transmission delays, input data rates, CPU clock rates, etc., has found less attention despite its practical relevance. In this paper we present an approach for optimizing multidimensional robustness criteria in complex distributed embedded systems. The key novelty of our approach is a scalable stochastic multi-dimensional sensitivity analysis technique approximating the sought-after sensitivity front from two sides, i.e. coming from the space of working and from the space of non-working system property combinations. We utilize the proposed stochastic sensitivity analysis to derive multi-dimensional robustness metrics, which are capable of bounding the robustness of given system configurations with little computational effort. The proposed metrics can significantly speed up multidimensional robustness optimization by quickly identifying promising system configurations, whose in-depth robustness evaluation can be performed subsequently to the optimization process
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