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Optimal reconfiguration algorithms for real-time fault-tolerant processor arrays

机译:实时容错处理器阵列的最佳重新配置算法

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In this paper we consider the problem of reconfiguring processor arrays subject to computational loads that alternate between two modes. A strict mode is characterized by a heavy computational load and severe constraints on response time while a relaxed mode is characterized by a relatively light computational load and relaxed constraints on response time. In the strict mode, reconfiguration is performed by a distributed local algorithm in order to achieve fast recovery from faults. In the relaxed mode, a global reconfiguration algorithm is used to restore the system to a state that maximizes the probability that future faults occurring in subsequent strict modes will be repairable. Several new results are given for this problem. Efficient reconfiguration algorithms are described for a number of general classes of architectures. These general algorithms obviate the need for architecture-specific algorithms for architectures in these classes. We show that it is unlikely that similar algorithms can be obtained for related classes of architectures since the reconfiguration problem for these classes is NP-complete. Finally, a general approximation algorithm is described that can be used for any architecture. Experimental results are given, suggesting that our algorithms are very effective.
机译:在本文中,我们考虑了重新配置处理器阵列的问题,这些阵列要承受两种模式之间交替出现的计算负荷。严格模式的特征在于繁重的计算负载和对响应时间的严格约束,而放松模式的特征在于相对较轻的计算负载和对响应时间的宽松约束。在严格模式下,通过分布式本地算法执行重新配置,以实现从故障中的快速恢复。在松弛模式下,使用全局重新配置算法将系统还原到最大程度的状态,以使在随后的严格模式下发生的将来故障可以修复的可能性最大。针对此问题给出了几个新结果。针对许多通用类别的体系结构描述了有效的重新配置算法。这些通用算法消除了这些类中对体系结构特定的算法的需求。我们表明,对于相关类别的体系结构,不可能获得类似的算法,因为这些类别的重配置问题是NP完全的。最后,描述了可用于任何体系结构的通用近似算法。实验结果表明,该算法是有效的。

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