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Virtual benchmarking and model continuity in prototyping embedded multiprocessor signal processing systems

机译:嵌入式多处理器信号处理系统原型中的虚拟基准测试和模型连续性

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The complexity of hardware/software codesign of embedded real-time signal processing systems can be reduced by rapid system prototyping (RSP). However, existing RSP frameworks do not provide a sound specification and design methodology (SDM) because they require the designer to choose the implementation target before specification and design exploration and they do not work together coherently across development stages. This paper presents a new SDM, called MAGIC, that allows the designer to capture an executable specification model for use in design exploration to find the optimal multiprocessor technology before committing to that technology. MAGIC uses a technique called "virtual benchmarking," for early validation of promising architectures. The MAGIC SDM also exploits emerging open-standards computation and communication middleware to establish model continuity between RSP frameworks. This methodology has been validated through the specification and design of a moderately complex system representative of the signal processing domain: the RASSP Synthetic Aperture Radar benchmark. In this case study, MAGIC achieves three orders of magnitude speedup over existing virtual prototyping approaches and demonstrates the ability to evaluate competitive technologies prior to implementation. Transfer of this methodology to the system-on-a-chip domain using Cadence's Virtual Component Codesign infrastructure is also discussed with promising results.
机译:嵌入式实时信号处理系统的硬件/软件代码签名的复杂性可以通过快速系统原型设计(RSP)来降低。但是,现有的RSP框架没有提供完善的规范和设计方法(SDM),因为它们要求设计者在进行规范和设计探索之前先选择实现目标,并且它们在整个开发阶段无法协同工作。本文提出了一种称为MAGIC的新SDM,使设计人员可以捕获可执行的规格模型,以用于设计探索,以便在致力于该技术之前找到最佳的多处理器技术。 MAGIC使用一种称为“虚拟基准测试”的技术来对有前途的架构进行早期验证。 MAGIC SDM还利用新兴的开放标准计算和通信中间件在RSP框架之间建立模型连续性。通过代表信号处理领域的中度复杂系统的规范和设计,该方法论已得到验证:RASSP合成孔径雷达基准。在此案例研究中,MAGIC比现有的虚拟原型方法提高了三个数量级的速度,并展示了在实施之前评估竞争技术的能力。还讨论了使用Cadence的虚拟组件协同设计基础架构将此方法转移到片上系统域的方法,并获得了可喜的结果。

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