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首页> 外文期刊>Journal of supercomputing >Robust and efficient QCA cell-based nanostructures of elementary reversible logic gates
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Robust and efficient QCA cell-based nanostructures of elementary reversible logic gates

机译:基本可逆逻辑门的稳健而高效的基于QCA细胞的纳米结构

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摘要

Increasing device density and reducing energy consumption are challenging issues in integrated nanoscale circuits. Reversible logic in quantum-dot cellular automata (QCA) nanotechnology is emerging as a promising candidate to overcome these issues and to introduce new computation paradigms with unique features like nanoscale feature size and ultra-low power dissipation. For the first time, QCA cell-based designs of reversible Feynman, Toffoli, Fredkin, and Peres gates are presented in this paper. These elementarygates are usually used in the synthesis of reversible circuits. The proposed layouts utilize electrostatic interactions between cells within QCA configurations to perform desired functions. All the robust designs are evaluated in terms of hardware complexity and power dissipation using QCADesigner and QCAPro simulation tools. The efficient QCA layouts of proposed gates have notable improvements as compared to the existing ones in terms of gate delay, cell count, area occupation, quantum cost, leakage energy, and switching energy. As a result, the proposed elementary gates via QCA cell level-based design are good candidates for building and developing high-level nanoelectronic reversible circuits.
机译:在集成纳米级电路中,增加器件密度和降低能耗是具有挑战性的问题。量子点细胞自动机(QCA)纳米技术中的可逆逻辑正在成为克服这些问题并引入具有纳米级特征尺寸和超低功耗等独特功能的新计算范例的有前途的候选者。本文首次提出了基于QCA细胞的可逆Feynman,Toffoli,Fredkin和Peres门的设计。这些基本门通常用于可逆电路的合成。所提出的布局利用QCA配置内单元之间的静电相互作用来执行所需的功能。使用QCADesigner和QCAPro仿真工具,可以在硬件复杂度和功耗方面评估所有健壮的设计。与现有的门相比,拟议的门的有效QCA布局在门延迟,单元数,面积占用,量子成本,泄漏能量和开关能量方面有显着改善。结果,通过基于QCA单元级设计的拟议基本门是构建和开发高级纳米电子可逆电路的良好候选者。

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