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Parametrized dataflow scenarios

机译:参数化数据流方案

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摘要

The FSM-based scenario-aware data ow (FSM-SADF) model of computation has been introduced to facilitate the analysis of dynamic streaming applications. FSM-SADF interprets application's execution as an execution of a sequence of static modes of operation called scenarios. Each scenario is modeled using a synchronous data ow (SDF) graph (SDFG), while a finite-state machine (FSM) is used to encode scenario occurrence patterns. However, FSM-SADF can precisely capture only those dynamic applications whose behaviors can be abstracted into a reasonably sized set of scenarios (coarse-grained dynamism). Nevertheless, in many cases, the application may exhibit thousands or even millions of behaviours (fine-grained dynamism). In this work, we generalize the concept of FSM-SADF to one that is able to model dynamic applications exhibiting fine-grained dynamism. We achieve this by applying parametrization to the FSM-SADF's base model, i.e. SDF, and defining scenarios over parametrized SDFGs. We refer to the extension as parametrized FSM-SADF (PFSM-SADF). Thereafter, we present a novel and a fully parametric analysis technique that allows us to derive tight worst-case performance (throughput and latency) guarantees for PFSM-SADF specifications. We evaluate our approach on a realistic case-study from the multimedia domain.
机译:已经引入了基于FSM的场景感知数据OW(FSM-SADF)计算模型以促进动态流应用的分析。 FSM-SADF将应用程序的执行解释为执行一个静态操作模式的执行,称为场景。每个场景都使用同步数据ow(SDF)图(SDFG)进行建模,而有限状态机(FSM)用于编码方案发生模式。然而,FSM-SADF可以精确地捕获那些行为可以被抽象成合理大小的情景(粗粒度的动态)的动态应用程序。然而,在许多情况下,申请可能表现出数千甚至数百万个行为(细粒度的动态)。在这项工作中,我们将FSM-SADF的概念概括为能够模拟呈现细粒度的动态应用的动态应用。我们通过将参数化应用于FSM-SADF的基础模型,即SDF和定义参数化SDFGS的场景来实现这一目标。我们将扩展名称为参数化FSM-SADF(PFSM-SADF)。此后,我们提出了一种新颖的和一个完整的参数分析技术,使我们能够导出PFSM-SADF规范的严格最坏情况(吞吐量和延迟)保证。我们评估了从多媒体领域的现实案例研究中的方法。

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