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Reliability, reconfiguration, and spare allocation issues in binary-tree architectures based on multiple-level redundancy

机译:基于多级冗余的二叉树体系结构中的可靠性,重新配置和备用分配问题

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摘要

The locally redundant modular tree (LRMT) schemes offer high yield and reliability for trees of relatively few levels but are less effective for large binary trees due to the imbalance of reliability of different levels. A new multiple-level redundancy tree (MLRT) architecture that combines modular schemes with level-oriented schemes which lead to better yield and reliability is presented. The MLRT structure enhances the wafer yield to significant levels by offering separate layers of protection for random and clustered defects. Unlike most existing techniques, this technique performs a more accurate reliability analysis by taking into account both switch and link failures. A measure called the marginal switch to processing element area ratio (MSR) is introduced to precisely characterize the effect of switch complexity on the reliability of the redundant system. A systematic method for the optimal distribution of spare modules of the MLRT structure is also presented. The analyses show that the MLRT structure offers higher yield and system reliability than LRMT and subtree-oriented fault-tolerance (SOFT) structures do.
机译:本地冗余模块化树(LRMT)方案为相对较少级别的树提供了高产量和可靠性,但由于不同级别的可靠性不平衡,因此对于大型二叉树效果不佳。提出了一种新的多级冗余树(MLRT)体系结构,该体系结构将模块化方案与面向级别的方案相结合,从而提高了产量和可靠性。 MLRT结构通过为随机缺陷和簇状缺陷提供单独的保护层,将晶圆的产量提高到了可观的水平。与大多数现有技术不同,该技术通过考虑交换和链接故障来执行更准确的可靠性分析。引入了一种称为边际开关与处理元件面积之比(MSR)的措施,以精确表征开关复杂度对冗余系统可靠性的影响。还提出了一种用于MLRT结构的备用模块的最佳分配的系统方法。分析表明,MLRT结构比LRMT和面向子树的容错(SOFT)结构具有更高的良率和系统可靠性。

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