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Towards the design of hybrid QCA tiles targeting high fault tolerance

机译:面向高容错的混合QCA磁贴的设计

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The increasing fabrication cost of CMOS-based computing devices and the ever-approaching limits of their fabrication have led to the search for feasible options with high device density and low power waste. Quantum-dot cellular automata (QCA) is an emerging technology with such potential to match the design target beyond the limits of state-of-the-art CMOS. But nanotechnologies, like QCA are extremely susceptible to various forms of flaws and variations during fabrication at nano scale. Thus, the exploration of ingenious fault tolerant structure around QCA is gaining high importance. This work targets a new robust QCA tile structure hybridizing rotated and non-rotated cell together resulting lesser kink energy. Different QCA logic primitives (majority/minority logic, fanout tiles, etc.) are made using such hybrid cell structure. The functional characterization using the kink energy and the polarization level of such QCA structures under different cell defects have been thoroughly investigated. The results suggest that the proposed QCA logic primitives have achieved high fault tolerance of 97.43 %. Also, 100 % fault tolerance can be ascertained if the proposed logic circuit drives the correct output with the application of 001, 011 as a primitive test vector only. A comparative performance of the proposed logic over existing structure makes it more reliable.
机译:基于CMOS的计算设备的制造成本不断增加以及其制造的不断接近的极限,导致人们寻求具有高设备密度和低功耗的可行选择。量子点元胞自动机(QCA)是一种新兴技术,具有超越最新CMOS限制的匹配设计目标的潜力。但是,像QCA这样的纳米技术在纳米规模的制造过程中极易受到各种形式的缺陷和变化的影响。因此,探索围绕QCA的巧妙的容错结构变得越来越重要。这项工作的目标是将旋转和非旋转单元混合在一起的新型坚固QCA瓷砖结构,从而减少弯折能量。使用这种混合单元结构可以制作不同的QCA逻辑原语(多数/少数逻辑,扇出磁贴等)。已经充分研究了在不同电池缺陷下使用扭结能量和此类QCA结构的极化能级进行的功能表征。结果表明,提出的QCA逻辑原语已实现了97.43%的高容错能力。同样,如果所提出的逻辑电路仅使用001、011作为原始测试向量来驱动正确的输出,则可以确定100%的容错能力。所提出的逻辑相对于现有结构的比较性能使其更加可靠。

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