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Time-Triggered Switch-Memory-Switch Architecture for Time-Sensitive Networking Switches

机译:用于时间敏感的网络交换机的时间触发的开关 - 交换机架构

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Time-sensitive networking (TSN) is a set of extended standards for the IEEE 802.3 Ethernet under development by the IEEE 802.1 TSN task group. TSN depends on two key components, scheduling and fault tolerance, to provide real-time and reliable transmission. There is a strong motivation to replace the widely used field-buses with TSNs in industrial networking applications. However, industrial network devices are typical application-specific embedded systems with limited memory resources. Time-sensitive (TS) transmission certainly prefers on-chip memory, which is even more scarce for embedded systems. As a result, it is critical for TSNs to develop memory-efficient switching techniques with scalable schedulability and elegant fault-tolerance support. This paper proposes a time-triggered switch-memory-switch (SMS) architecture for memory-efficient TSN switches. First, based on the SMS shared memory, our architecture makes it possible to statically schedule memory allocation with full utilization for TS traffic and the remaining memory for other traffic. Compared with perport memory, the shared memory achieves a ratio of (n(n)!) (approximate to (e(n) / root 2 pi n), n -> infinity), where n is the port number, in the feasible solution space under memory constraints and thus significantly improves scheduling memory ability and flexibility. Moreover, we develop a fault-tolerance scheme for reliable transmission. It facilitates a memory-efficient implementation of the popular multiline redundancy in industrial networks. The scheme is validated by five classes of memory conflicts and a case study on two-line redundancy.
机译:时间敏感的网络(TSN)是IEEE 802.1 TSN任务组的IEEE 802.3以太网的一组扩展标准。 TSN取决于两个关键组件,调度和容错,提供实时和可靠的传输。在工业网络应用中,替换具有TSN的广泛使用的现场总线存在强烈的动力。但是,工业网络设备是具有有限的内存资源的典型应用专用嵌入式系统。时间敏感(TS)传输肯定更喜欢片上存储器,嵌入式系统更加稀缺。因此,TSNS是为了开发具有可扩展调度性和优雅的容错支持的内存有效的交换技术。本文提出了一种用于内存高效TSN交换机的时间触发的开关 - 内存 - 交换机(SMS)架构。首先,基于SMS共享内存,我们的架构可以静态调度内存分配,充分利用TS流量和用于其他流量的剩余内存。与Perport内存相比,共享内存实现了(n(n)/ n!)的比率(近似于(e(n)/ root 2 pi n),n - > Infinity),其中n是端口号,在内存约束下的可行解决方案空间,从而显着提高了调度存储器能力和灵活性。此外,我们开发了一种可靠传输的容错方案。它有助于内存有效地实现工业网络中流行的多行冗余。该方案由五类内存冲突验证,以及对双线冗余的案例研究。

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