Δelta: differential energy-efficiency, latency, and timing analysis for real-time networks

S. Reif, Andreas Schmidt, Timo Hönig, T. Herfet, Wolfgang Schröder-Preikschat
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引用次数: 3

Abstract

The continuously increasing degree of automation in many areas (e.g. manufacturing engineering, public infrastructure) lead to the construction of cyber-physical systems and cyber-physical networks. To both, time and energy are the most critical operating resources. Considering for instance the Tactile Internet specification, end-to-end latencies in these systems must be below 1ms, which means that both communication and system latencies are in the same order of magnitude and must be predictably low. As control loops are commonly handled over different variants of network infrastructure (e.g. mobile and fibre links) particular attention must be payed to the design of reliable, yet fast and energy-efficient data-transmission channels that are robust towards unexpected transmission failures. As design goals are often conflicting (e.g. high performance vs. low energy), it is necessary to analyze and investigate trade-offs with regards to design decisions during the construction of cyber-physical networks. In this paper, we present Δelta, an approach towards a tool-supported construction process for cyber-physical networks. Δelta extends the previously presented X-LAP tool by new analysis features, but keeps the original measurements facilities unchanged. Δelta jointly analyzes and correlates the runtime behavior (i.e. performance, latency) and energy demand of individual system components. It provides an automated analysis with precise thread-local time interpolation, control-flow extraction, and examination of latency criticality. We further demonstrate the applicability of Δelta with an evaluation of a prototypical implementation.
Δelta:实时网络的不同能源效率、延迟和时间分析
许多领域(如制造工程、公共基础设施)的自动化程度不断提高,导致了信息物理系统和信息物理网络的建设。对两者来说,时间和精力都是最关键的运营资源。例如,考虑到触觉互联网规范,这些系统中的端到端延迟必须低于1ms,这意味着通信和系统延迟都处于相同的数量级,并且必须可预测地低。由于控制回路通常在网络基础设施的不同变体(例如移动和光纤链路)上处理,因此必须特别注意设计可靠,但快速和节能的数据传输通道,这些通道对意外传输故障具有鲁棒性。由于设计目标经常相互冲突(例如高性能与低能耗),因此有必要在构建网络物理网络期间分析和调查有关设计决策的权衡。在本文中,我们提出Δelta,一种工具支持的网络物理网络构建过程的方法。Δelta通过新的分析功能扩展了以前提出的X-LAP工具,但保持原有的测量设施不变。Δelta联合分析和关联单个系统组件的运行时行为(即性能,延迟)和能源需求。它提供了精确的线程本地时间插值、控制流提取和延迟临界性检查的自动分析。我们通过对原型实现的评估进一步证明Δelta的适用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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