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Accuracy Improvement of Dataflow Analysis for Cyclic Stream Processing Applications Scheduled by Static Priority Preemptive Schedulers

机译:静态优先级抢先式调度程序调度的循环流处理应用程序的数据流分析精度提高

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Stream processing applications executed on embedded multiprocessor systems regularly contain cyclic data dependencies due to the presence of feedback loops and bounded FIFO buffers. Dataflow modeling is suitable for the temporal analysis of such applications. However, the accuracy can be unsatisfactory as existing temporal analysis techniques ignore that cyclic data dependencies limit interference between tasks executed on shared processors. This paper presents a dataflow analysis approach that increases the analysis accuracy by taking into account that cyclic data dependencies limit interference between tasks. It is shown that the approach is applicable for single-rate stream processing applications that are executed on multiprocessor systems using static priority preemptive schedulers. The improvement of accuracy is demonstrated in a case study employing a WLAN 802.11p transceiver application that is executed on a multiprocessor system with shared processors.
机译:由于存在反馈循环和有限的FIFO缓冲区,因此在嵌入式多处理器系统上执行的流处理应用程序通常包含循环数据依赖性。数据流建模适用于此类应用程序的时间分析。但是,由于现有的时间分析技术忽略了循环数据依赖性限制了在共享处理器上执行的任务之间的干扰,因此准确性可能不令人满意。本文提出了一种数据流分析方法,该方法通过考虑循环数据依赖性限制任务之间的干扰来提高分析准确性。结果表明,该方法适用于使用静态优先级抢占式调度程序在多处理器系统上执行的单速率流处理应用程序。在使用WLAN 802.11p收发器应用程序的案例研究中证明了准确性的提高,该应用程序在具有共享处理器的多处理器系统上执行。

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