多处理器硬实时系统中工作负载相关性的表征

E. Wandeler, L. Thiele
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引用次数: 26

摘要

现代嵌入式系统通常是集成在芯片上的多处理器系统,其特点是系统组件表现出复杂的行为和依赖关系。触发此类系统的不同事件通常会导致不同的执行需求,这取决于它们的事件类型以及它们所处理的任务,从而导致复杂的工作负载相关性。例如,在数据处理系统中,事件有效负载数据的大小通常将决定其在大多数或所有系统组件上的执行需求,从而导致高度相关的工作负载。这种复杂系统的性能分析通常非常困难,而且传统的分析方法无法捕捉到可能存在的工作负载相关性。这将导致过于悲观的分析结果,从而导致过于昂贵的系统设计和相当大的性能储备。我们提出了一个抽象模型来描述和捕获系统架构中存在的工作负载相关性,并展示了如何将捕获的附加系统信息合并到现有框架中,以进行嵌入式系统的模块化性能分析。本文还提出了一种从典型系统规范中解析得到抽象工作负载关联模型的方法。我们的方法的适用性及其优于传统性能分析方法的优势在芯片上多处理器系统的详细案例研究中得到了证明,与传统分析方法获得的结果相比,我们的方法获得的分析结果有很大改善。
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Characterizing workload correlations in multi processor hard real-time systems
Modern embedded systems are typically integrated as multiprocessor system on chips, and are often characterized by the complex behaviors and dependencies that system components exhibit. Different events that trigger such systems normally cause different execution demands, depending on their event type as well as on the task they are processed by, leading to complex workload correlations. For example in data processing systems, the size of an events payload data will typically determine its execution demand on most or all system components, leading to highly correlated workloads. Performance analysis of such complex system is often very difficult, and conventional analysis methods have no means to capture the possible existence of workload correlations. This leads to overly pessimistic analysis results, and thus to too expensive system designs with considerable performance reserves. We propose an abstract model to characterize and capture workload correlations present in a system architecture, and we show how the captured additional system information can be incorporated into an existing framework for modular performance analysis of embedded systems. We also present a method to analytically obtain the proposed abstract workload correlation model from a typical system specification. The applicability of our approach and its advantages over conventional performance analysis methods is shown in a detailed case study of a multiprocessor system on chip, where the analysis results obtained with our approach are considerably improved compared to the results obtained with conventional analysis methods.
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