可扩展和高效的关联处理器解决方案,以保证空中交通管制系统的实时性要求

M. Yuan, J. Baker, W. Meilander, K. Schaffer
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引用次数: 4

摘要

本文提出了一种使用一种增强的SIMD机器模型(称为关联处理器(associated Processor, AP))的空中交通管制(ATC)解决方案。我们的解决方案不同于以前为MIMD计算机设计的ATC系统,并且在满足ATC的可预测性要求方面存在很大困难,这对于满足安全关键软件组件所需的严格认证标准至关重要。建议的AP解决方案支持对最坏情况执行时间的准确预测,并保证满足所有截止日期。此外,基于AP模型开发的软件比目前相应的ATC软件更简单、体积更小。由于关联处理器是由SIMD硬件构建的,因此它比目前用于支持ATC的MIMD硬件便宜和简单得多。我们在Clear Speed CSX600加速器上为8个ATC实时任务设计了一个原型,用于模拟AP。性能根据执行时间和可预测性进行评估,并与使用OpenMP在8核多处理器(MIMD)上实现的最快主机版本进行比较。我们的大量实验表明,AP实现满足静态调度的所有截止日期。相反,当在MIMD上实现时,有些任务会错过最后期限。结果表明,建议的AP解决方案将支持对最坏情况执行时间的准确和有意义的预测,并将保证满足所有截止日期。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Scalable and Efficient Associative Processor Solution to Guarantee Real-Time Requirements for Air Traffic Control Systems
This paper proposes a solution to air traffic control (ATC) using an enhanced SIMD machine model called an Associative Processor (AP). Our solution differs from previous ATC systems that are designed for MIMD computers and have a great deal of difficulty meeting the predictability requirements for ATC, which are critical for meeting the strict certification standards required for safety critical software components. The proposed AP solution supports accurate predictions of worst case execution times and guarantees all deadlines are met. Furthermore, the software developed based on the AP model is much simpler and smaller in size than the current corresponding ATC software. As the associative processor is built from SIMD hardware, it is considerably cheaper and simpler than the MIMD hardware currently used to support ATC. We have designed a prototype for eight ATC real-time tasks on Clear Speed CSX600 accelerator that is used to emulate AP. Performance is evaluated in terms of execution time and predictability and is compared to the fastest host-only version implemented using OpenMP on an 8-core multiprocessor (MIMD). Our extensive experiments show that the AP implementation meets all deadlines that can be statically scheduled. To the contrary, some tasks miss their deadlines when implemented on MIMD. It is shown that the proposed AP solution will support accurate and meaningful predictions of worst case execution times and will guarantee that all deadlines are met.
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