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A run time adaptive architecture to trade-off performance for fault tolerance applied to a DVB on-board processor

机译:一种运行时自适应体系结构,可以在应用于DVB机载处理器的容错性能之间进行权衡

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Reliability is one of the key issues in space applications. Although highly flexible and generally less expensive than predominantly used ASICs, SRAM-based FPGAs are very susceptible to radiation effects. Hence, various fault tolerant techniques have to be applied in order to handle faults and protect the design. This paper presents a reconfigurable on-board processor capable of run-time adaptation to harsh environmental conditions and different functional demands. Run-time reconfigurability is achieved applying two different reconfiguration methodologies. We propose a novel self-reconfigurable architecture able to on demand duplicate or triplicate part of the design in order to form DMR and TMR structures. Moreover, we introduce two different approaches for voting the correct output. The first one is a traditional voter that adapts to different DMR/TMR domain positions whereas the second implies comparing the captured flip-flop values directly from the configuration memory read through ICAP. The comparison is done periodically by an embedded processor thus completely excluding the voting mechanism in hardware. The proposed run-time reconfiguration methodology provides savings in terms of device utilization, reconfiguration time, power consumption and significant reductions in the amount of rad-hard memory used by partial configurations.
机译:可靠性是空间应用中的关键问题之一。虽然基于SRAM的FPGA具有很高的灵活性,并且通常比常用的ASIC便宜,但它们很容易受到辐射的影响。因此,必须使用各种容错技术来处理故障并保护设计。本文提出了一种可重新配置的板载处理器,该处理器能够在运行时适应恶劣的环境条件和不同的功能需求。应用两种不同的重新配置方法可实现运行时可重新配置。我们提出了一种新颖的自重配置体系结构,该体系结构可以按需复制设计的一部分或一式三份,以形成DMR和TMR结构。此外,我们引入了两种不同的方法来对正确的输出进行投票。第一个是传统的表决器,可适应不同的DMR / TMR域位置,而第二个则直接比较从ICAP读取的配置存储器中捕获的触发器值。比较由嵌入式处理器定期进行,因此完全排除了硬件中的表决机制。所提出的运行时重新配置方法可以节省设备利用率,重新配置时间,降低功耗,并显着减少部分配置所使用的rad-hard存储器的数量。

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