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R3TOS-Based Integrated Modular Space Avionics for On-Board Real-Time Data Processing

机译:基于R3TOS的集成模块化空间航空电子设备,用于车载实时数据处理

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The partitioning of computing platforms is a wellknown technique for achieving fault isolation and fault tolerance in space avionics. With the advent of large-capacity and partially reconfigurable FPGAs, partitioning has been proposed at the System-on-Chip (SoC) level. However, fixed hardware partitions in a SoC, such as those in slotted reconfigurable architectures, are not effective in coping with permanent chip damage provoked by cumulative space radiation, the reason being that a single damaged on-chip resource in one partition can prevent the use of that entire partition. In this paper, we discuss how to use R3TOS (Reliable Reconfigurable Real-Time Operating System) to implement a dynamically-partitioned computing platform on a Xilinx Zynq SoC that processes science data delivered by a NASA Fourier transform spectrometer. Unlike in related approaches, R3TOS avoids fixed partitions by harnessing the Zynq's configuration memory for exchanging data among the partitions. This enables us to achieve higher levels of flexibility in the spectrometer avionics, which results in a more effective capability to withstand chip damage. We have simulated different chip damage scenarios and checked that an R3TOS-based prototypic avionics system can tolerate on average around 13% more on-chip damaged resources than a traditional fixed slotted solution.
机译:计算平台的划分是一种用于在空间航天器中实现故障隔离和容错的众所周知的技术。随着大容量和部分可重新配置的FPGA的出现,在片上系统(SOC)水平上提出了分区。但是,SOC中的固定硬件分区,例如开槽可重构架构中的SOC,在应对通过累积空间辐射引起的永久性芯片损坏方面无效,其原因是一个分区中的单个损坏的片上资源可以防止使用整个分区。在本文中,我们讨论如何使用R3TOS(可靠的可重新配置的实时操作系统)来在Xilinx Zynq SoC上实现动态分区计算平台,该Xilinx Zynq SoC处理NASA傅里叶变换光谱仪提供的科学数据。与相关方法不同,R3TO通过利用Zynq的配置存储器来避免固定分区,以便在分区之间交换数据。这使我们能够在光谱仪航空电子设备中实现更高水平的灵活性,这导致耐受芯片损坏的更有效能力。我们已经模拟了不同的芯片损伤方案,并检查了基于R3TOS的原型航空电子系统可以平均容忍大约13%的片上损坏的资源,而不是传统的固定开槽解决方案。

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