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A framework for adaptive reconfigurable space-borne computing platforms for run-time self-recovery from transient and permanent hardware faults

机译:自适应可重构星载计算平台的框架,可从瞬时和永久性硬件故障中进行运行时自我恢复

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Mitigation of radiation effects is one of the major problems for space-borne computing platforms. The presented work proposes an approach for building reliable, hardware fault adaptive stream processing platforms for space applications. The proposed concept is based on architecture-to-fault adaptation by run-time hardware reconfiguration. The concept assumes representation of system components in virtual form (configuration bit-streams for partially reconfigurable FPGAs) and dynamic allocation and/or relocation of components in predetermined slots in the target FPGA. In case of transient faults (e.g. SEU) the affected component can be reloaded to the same slot. In the case of permanent faults the affected component can be relocated to a reserved slot. Experimental results have shown that both restoration procedures can be done in runtime. The work describes novel procedures for run-time on-chip self-assembling/repair procedures of an application specific processors (ASP). The self-synchronization aspect of the above ASP also is discussed in detail. The feasibility of the proposed approach has been proved by testing all above procedures on a prototype platform based on a Xilinx Virtex-4 FPGA. The timing and hardware overhead for the required framework infrastructure have also been analyzed and discussed.
机译:辐射效应的缓解是星载计算平台的主要问题之一。提出的工作提出了一种为空间应用构建可靠的硬件故障自适应流处理平台的方法。所提出的概念基于通过运行时硬件重新配置的架构到故障的适应。该概念假定以虚拟形式(用于部分可重新配置的FPGA的配置位流)表示系统组件,并在目标FPGA的预定插槽中动态分配和/或重新分配组件。如果发生瞬时故障(例如SEU),可以将受影响的组件重新加载到同一插槽中。在永久性故障的情况下,可以将受影响的组件重新放置到保留的插槽中。实验结果表明,两种还原过程都可以在运行时完成。该工作描述了针对专用处理器(ASP)的运行时片上自组装/维修过程的新颖过程。还详细讨论了上述ASP的自同步方面。通过在基于Xilinx Virtex-4 FPGA的原型平台上测试所有上述过程,证明了该方法的可行性。还分析和讨论了所需框架基础架构的时间安排和硬件开销。

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