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A hardware/software co-design approach for Ethernet controllers to support time-triggered traffic in the upcoming IEEE TSN standards

机译:以太网控制器的硬件/软件协同设计方法,以支持即将到来的IEEE TSN标准中的时间触发流量

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Due to the increasing bandwidth and timing requirements, next generation communication backbones in cars will most likely base on real-time Ethernet variants that satisfy the demands of the new automotive applications. The upcoming IEEE 802.1Qbv standard shows communication approaches based on coordinated time devision multiple access (TDMA) to be good candidates for providing communication with determinism and highly precise timing. Implementing time-triggered architectures in software requires significant development effort and computational power. This paper shows a scalable HW/SW co-design approach for new real-time Ethernet controllers based on the partitioning into communication and application components. The tasks required for communication are divided: Time-critical and computationally intensive parts are realised in dedicated hardware modules allowing the attached CPU to fulfil the timing requirements of the automotive application without interference. The evaluation using a Field Programmable Gate Array (FPGA) based prototype implementation shows that the precision for the time-triggered transmission and the performance of the proposed implementation of the required synchronisation protocols satisfies the requirements of applications in the automotive domain.
机译:由于带宽和时序要求的不断提高,汽车中的下一代通信主干极有可能基于满足新汽车应用需求的实时以太网变体。即将到来的IEEE 802.1Qbv标准显示,基于协作式时分多址(TDMA)的通信方法将是为确定性和高精度定时提供通信的理想选择。在软件中实现时间触发的体系结构需要大量的开发工作和计算能力。本文展示了一种基于新的实时以太网控制器的可扩展的硬件/软件协同设计方法,该方法基于对通信和应用组件的划分。通信所需的任务分为以下部分:时间紧迫且计算量大的部件在专用硬件模块中实现,从而使所连接的CPU能够满足汽车应用的时序要求而不会产生干扰。使用基于现场可编程门阵列(FPGA)的原型实现进行的评估表明,时间触发传输的精度以及所需同步协议的拟议实现的性能都满足了汽车领域的应用需求。

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