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A Benes Based NoC Switching Architecture for Mixed Criticality Embedded Systems

机译:基于BISE的NOC交换架构,用于混合临界嵌入式系统

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Multi-core, Mixed Criticality Embedded (MCE) real-time systems require high timing precision and predictability to guarantee there will be no interference between tasks. These guarantees are necessary in application areas such as avionics and automotive, where task interference or missed deadlines could be catastrophic, and safety requirements are strict. In modern multi-core systems, the interconnect becomes a potential point of uncertainty, introducing major challenges in proving behaviour is always within specified constraints, limiting the means of growing system performance to add more tasks, or provide more computational resources to existing tasks. We present MCENoC, a Network-on-Chip (NoC) switching architecture that provides innovations to overcome this with predictable, formally verifiable timing behaviour that is consistent across the whole NoC. We show how the fundamental properties of Benes networks benefit MCE applications and meet our architecture requirements. Using SystemVerilog Assertions (SVA), formal properties are defined that aid the refinement of the specification of the design as well as enabling the implementation to be exhaustively formally verified. We demonstrate the performance of the design in terms of size, throughput and predictability, and discuss the application level considerations needed to exploit this architecture.
机译:多核,混合关键嵌入式(MCE)实时系统需要高定时精度和可预测性,以保证会有任务之间没有干扰。这些保证在应用领域,如航空电子设备和汽车,其中任务干扰或错过最终期限可能是灾难性的必要,并且安全性要求很严格。在现代多核系统,互连成为不确定性的潜在问题,在证明的行为总是被指定限制范围内引入重大挑战,限制生长系统性能的手段,以增加更多的任务,或对现有任务提供更多的计算资源。我们目前MCENoC,网络级芯片(NOC)交换架构,提供创新与跨越整个NoC的一致预测的,可核查的正式计时的行为,克服这一点。我们展示贝奈斯网络的基本性能如何受益MCE应用,并达到我们的架构需求。使用SystemVerilog声明(SVA),正式的属性定义,援助的设计规范以及使执行细化到穷尽正式验证。我们证明了设计的尺寸,吞吐量和可预测性方面的性能,并讨论利用这种架构所需的应用层面的考虑。

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