Article detail · 2021
Design and Analysis of Fault-Tolerant 1:2 Demultiplexer Using Quantum-Dot Cellular Automata Nano-Technology
Journal
ElectronicsISSN 2079-9292
The ISSN points to another catalog journal; the name is from the YÖKSİS record.
- Year
- 2021
- Type
- article
Data source split
- YÖKSİS YÖKSİS article record
- YÖKSİS venue Electronics
- Catalog match (ISSN) Electronics (Switzerland)
- OpenAlex OpenAlex enrichment (abstract, citations, topics)
Abstract
OpenAlex · English
Quantum-dot Cellular Automata (QCA) is an innovative paradigm bringing hopeful applications in the perceptually novel computing layout in quantum electronics. The circuits manufactured by QCA technology can provide a notable decrease in size, rapid-switching velocity, and ultra-low power utilization. The demultiplexer is a beneficial component to optimize the whole process in any logical design, and therefore is very important in QCA. Moreover, fault-tolerant circuits can improve the reliability of digital circuits by redundancy. Hence, the present investigation illustrates a novel QCA-based fault-tolerant 1:2 demultiplexer construct that employs a two-input AND gate and inverter. The functionality of the suggested layout was executed and evaluated with the utilization of the QCADesigner 2.0.3 simulator. This paper utilizes cell redundancy on the wire, inverter, and AND gates for designing a fault-tolerant demultiplexer. Four components (i.e., missing cells, dislocation cells, extra cells, and misalignment) were analyzed by the QCADesigner simulator. The simulation results demonstrated that our proposed QCA-based fault-tolerant 1:2 demultiplexer acted more efficiently than prior constructs regarding delay and fault tolerance. The proposed fault-tolerant 1:2 demultiplexer could attain high fault-tolerance when single missing cell or extra cell faults exist in the QCA layout.
Topics
Citations
OpenAlex cited_by_count. Not a WoS or Scopus citation count; those sources have no separate column here.
23 citations
OpenAlex cited_by_count (cache / database)
7 publications in the local catalog that cite this work (OpenAlex reference match; not the full global list).
- An optimized arithmetic logic unit in quantum-dot cellular automata (QCA) technology 2022
- Secure Quantum‐based Adder Design for Protecting Machine Learning Systems Against Side‐Channel Attacks 2025
- Secure Quantum‐based Adder Design for Protecting Machine Learning Systems Against Side‐Channel Attacks 2025
- A fault-tolerant image processor for executing the morphology operations based on a nanoscale technology 2022
- RETRACTED ARTICLE: A nano-scale design of a multiply-accumulate unit for digital signal processing based on quantum computing 2023
- A nano-scale design of a multiply-accumulate unit for digital signal processing based on quantum computing 2023
- Design and analysis of a fault tolerance nano-scale code converter based on quantum-dots 2024