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Adaptive reconfigurable voting for enhanced reliability in medium-grained fault tolerant architectures

机译:自适应可重新配置投票,可增强中等粒度容错体系结构中的可靠性

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摘要

The impact of SRAM-based FPGAs is constantly growing in aerospace industry despite the fact that their volatile configuration memory is highly susceptible to radiation effects. Therefore, strong fault-handling mechanisms have to be developed in order to protect the design and make it capable of fighting against both soft and permanent errors. In this paper, a fully reconfigurable medium-grained triple modular redundancy (TMR) architecture which forms part of a runtime adaptive on-board processor (OBP) is presented. Fault mitigation is extended to the voting mechanism by applying our reconfiguration methodology not only to domain replicas but also to the voter itself. The proposed approach takes advantage of adaptive configuration placement and modular property of the OBP, thus allowing on-line creation of different medium-grained TMRs and selection of their granularity level. Consequently, we are able to narrow down the fault-affected area thus making the error recovery process faster and less power consuming. The conventional hardware based voting is supported by the ICAP-based one in order to additionally strengthen the reconfigurable intermediate voting. In addition, the implementation methodology ensures using only one memory footprint for all voters and their voting adaptations thus saving storing resources in expensive rad-hard memories.
机译:尽管基于SRAM的易失性配置存储器极易受到辐射影响,但基于SRAM的FPGA的影响在航空航天行业中一直在不断增长。因此,必须开发强大的故障处理机制,以保护设计并使其能够抵抗软错误和永久错误。在本文中,提出了一种完全可重新配置的中粒三重模块冗余(TMR)架构,该架构构成了运行时自适应板载处理器(OBP)的一部分。通过将我们的重新配置方法不仅应用于域副本,还应用于表决者本身,从而将故障缓解扩展到表决机制。所提出的方法利用了OBP的自适应配置位置和模块化属性,从而允许在线创建不同的中粒TMR并选择其粒度级别。因此,我们能够缩小受故障影响的区域的范围,从而使错误恢复过程更快,功耗更低。基于ICAP的投票支持传统的基于硬件的投票,以进一步增强可重新配置的中间投票。此外,该实现方法可确保所有选民及其投票适应仅使用一个内存占用空间,从而节省了将资源存储在昂贵的rad-hard存储器中的可能性。

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