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Exploiting replicated checkpoints for soft error detection and correction

机译:利用复制的检查点进行软错误检测和纠正

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Register renaming is a widely used technique to remove false dependencies in contemporary superscalar microprocessors. A register alias table (RAT) is formed to hold current locations of the values that correspond to the architectural registers. Some recently designed processors take a copy of the rename table at each branch instruction, in order to recover its contents when a misspeculation occurs. In this paper first we investigate the RAT vulnerability against transient errors. Then we analyze the vulnerability of RAT checkpoints and propose two techniques for soft error detection and correction utilizing redundantly taken copies of the entries whose content is the same with the previous and/or next checkpoints. Simulation results of the spec 2006 benchmarks reveal that on the average RAT vulnerability is 25% and checkpoint vulnerability is 6%. Results also reveal that redundancy exists at sequential checkpoint copies and can be used for error detection and correction purposes. We propose techniques that exploit this redundancy and show that faults in 41% of all checkpoints and 44% of rolled-back checkpoints can be detected and errors in 33% of the rolled-back checkpoints can be corrected. Since we exploit the already available storage, proposed error detection and correction techniques can be implemented with minimal hardware overhead.
机译:寄存器重命名是一种广泛使用的技术,可以消除当代超标量微处理器中的虚假依赖。形成寄存器别名表(RAT)以保存对应于体系结构寄存器的值的当前位置。一些最近设计的处理器在每个分支指令处获取重命名表的副本,以便在发生错误推测时恢复其内容。在本文中,我们首先研究针对瞬态错误的RAT漏洞。然后,我们分析了RAT检查点的脆弱性,并提出了两种技术,它们利用内容与先前和/或下一个检查点相同的条目的冗余副本进行软错误检测和纠正。 Spec 2006基准测试的模拟结果表明,平均RAT漏洞为25%,检查点漏洞为6%。结果还表明,冗余存在于顺序检查点副本中,可用于错误检测和更正。我们提出了利用这种冗余的技术,表明可以检测到所有检查点中的41%和回滚检查点中的44%的故障,并且可以纠正33%的回滚检查点中的错误。由于我们利用了已经可用的存储,因此可以以最小的硬件开销来实现建议的错误检测和纠正技术。

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