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VLSI-based self-healing solution for delay faults in synchronous sequential circuits

机译:基于VLSI的自我修复解决方案,用于同步顺序电路中的延迟故障

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The paper evolves a methodology in an effort to heal the occurrence of delay faults in synchronous sequential circuits. The delay fault appears to be critical in the operation of digital circuits owing to the large number of gates integrated on a chip and manifests themselves in the incorrect timing behaviour of some logic elements within the network. The scheme allows detection of a wider range of delay faults with improved resolution and envisages measures to restore the true values at the primary output through appropriate changes in the structure. It uses saboteurs for fault injection and handles delay faults both in combinational and memory blocks of synchronous sequential circuit. The approach turns out to be comparatively simple and helps to improve the long-term reliability of high-performance digital circuits besides enabling to decrease the cost and area overhead over the existing triple modular redundancy (TMR) and distributed minority and majority voting-based redundancy (DMMR) fault healing schemes. The fact that the Spartan architecture synthesises the VLSI codes foster to validate the MODELSIM-based simulated results and perpetuates a claim for its use in real world digital utilities.
机译:本文演变了一种方法,以努力治愈同步顺序电路中的延迟故障的发生。由于集成在芯片上的大量栅极,在数字电路的操作中,延迟故障似乎是至关重要的。该方案允许通过改进的分辨率检测更广泛的延迟故障,并通过结构中的适当变化来恢复主要输出处的真实值的措施。它使用破坏器进行故障注入,并在同步顺序电路的组合和存储器块中处理延迟故障。该方法证明了相对简单,有助于提高高性能数字电路的长期可靠性,除了能够降低现有三重模块化冗余(TMR)和分布式少数和大多数基于投票的冗余的成本和面积开销(DMMR)故障愈合方案。 Spartan架构综合VLSI代码福斯特的事实是为了验证基于模型的模拟结果,并使在现实世界的数字公用事业中使用的索赔。

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