具有可逆算法和逻辑单元的纳米电子学应用QCA

G. M. S. Latha, S. Rooban
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引用次数: 2

摘要

目的通过算法和逻辑单元对量子点元胞自动机(QCA)的概念进行了简要的讨论。这项工作对纳米电子应用最有用,VLSI工业主要依赖于这种基于容错QCA的算术逻辑单元(ALU)设计。ALU的设计主要依靠设定指令和规则;这些都是通过低功耗的超功能技巧来维持的,只有基于qca的可逆算法和逻辑单元才能用于纳米电子学。本研究的主要目的是利用QCA技术设计一种超低功耗、超高速的ALU。下面的QCA方法是通过可逆逻辑实现的。设计/方法/方法QCA逻辑是实现纳米级设计的主要和关键条件,可以提供相当快的集成模块,有效的可执行计算,并且在纳米级(QCA)上具有较低的能源效率。处理器需要一个ALU来处理和计算数据。利用反向逻辑的QCA技术中的抗故障ALU是本研究的主要目标。现在有两个部分,即可逆ALU (RAU),逻辑(LAU)和算术(RAU)。基于弗雷德金门(FRG)的可逆2 × 1多路复用器,允许用户在算术和逻辑运算之间进行选择。还实现了QCA全加法器,以提高算术运算的性能。ALU采用容错的可逆逻辑门构建。与之前的研究相比,本文引入了可逆QCA操作的可逆多层ALU。8位和16位ALU以及逻辑单元功能通过较少的门,恒定的输入和输出设计。该实现是在Mentor Graphics QCA工具上设计的,并验证所有功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
QCA with reversible arithmetic and logic unit for nanoelectronics applications
PurposeIn this research work, brief quantum-dot cellular automata (QCA) concepts are discussed through arithmetic and logic units. This work is most useful for nanoelectronic applications, VLSI industry mainly depends on this type of fault-tolerant QCA based arithmetic logic unit (ALU) design. The ALU design is mainly depending on set instructions and rules; these are maintained through low-power ultra-functional tricks only possible with QCA-based reversible arithmetic and logic unit for nanoelectronics. The main objective of this investigation is to design an ultra-low power and ultra-high-speed ALU design with QCA technology. The following QCA method has been implemented through reversible logic.Design/methodology/approachQCA logic is the main and critical condition for realizing NANO-scale design that delivers considerably fast integrate module, effective performable computation and is less energy efficiency at the nano-scale (QCA). Processors need an ALU in order to process and calculate data. Fault-resistant ALU in QCA technology utilizing reverse logic is the primary objective of this study. There are now two sections, i.e. reversible ALU (RAU), logical (LAU) and arithmetical (RAU).FindingsA reversible 2 × 1 multiplexer based on the Fredkin gate (FRG) was developed to allow users to choose between arithmetic and logical operations. QCA full adders are also implemented to improve arithmetic operations' performance. The ALU is built using reversible logic gates that are fault-tolerant.Originality/valueIn contrast to earlier research, the suggested reversible multilayered ALU with reversible QCA operation is imported. The 8- and 16-bit ALU, as well as logical unit functioning, is designed through fewer gates, constant inputs and outputs. This implementation is designed on the Mentor Graphics QCA tool and verifies all functionalities.
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