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Effect of neural firing pattern on NbOx/Al2O3 memristor-based reservoir computing system

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dc.contributor.authorJu, Dongyeol-
dc.contributor.authorJi, Hyeonseung-
dc.contributor.authorLee, Jungwoo-
dc.contributor.authorKim, Sungjun-
dc.date.accessioned2024-08-08T14:00:53Z-
dc.date.available2024-08-08T14:00:53Z-
dc.date.issued2024-07-
dc.identifier.issn2166-532X-
dc.identifier.issn2166-532X-
dc.identifier.urihttps://scholarworks.dongguk.edu/handle/sw.dongguk/22805-
dc.description.abstractThe implementation of reservoir computing using resistive random-access memory as a physical reservoir has attracted attention due to its low training cost and high energy efficiency during parallel data processing. In this work, a NbOx/Al2O3-based memristor device was fabricated through a sputter and atomic layer deposition process to realize reservoir computing. The proposed device exhibits favorable resistive switching properties (>10(3) cycle endurance) and demonstrates short-term memory characteristics with current decay. Utilizing the controllability of the resistance state and its variability during cycle repetition, electrical pulses are applied to investigate the synapse-emulating properties of the device. The results showcase the functions of potentiation and depression, the coexistence of short-term and long-term plasticity, excitatory post-synaptic current, and spike-rate dependent plasticity. Building upon the functionalities of an artificial synapse, pulse spikes are categorized into three distinct neural firing patterns (normal, adapt, and boost) to implement 4-bit reservoir computing, enabling a significant distinction between "0" and "1."-
dc.format.extent13-
dc.language영어-
dc.language.isoENG-
dc.publisherAIP Publishing-
dc.titleEffect of neural firing pattern on NbOx/Al2O3 memristor-based reservoir computing system-
dc.typeArticle-
dc.publisher.location미국-
dc.identifier.doi10.1063/5.0211178-
dc.identifier.scopusid2-s2.0-85199458165-
dc.identifier.wosid001274910500001-
dc.identifier.bibliographicCitationAPL Materials, v.12, no.7, pp 1 - 13-
dc.citation.titleAPL Materials-
dc.citation.volume12-
dc.citation.number7-
dc.citation.startPage1-
dc.citation.endPage13-
dc.type.docTypeArticle-
dc.description.isOpenAccessY-
dc.description.journalRegisteredClassscie-
dc.description.journalRegisteredClassscopus-
dc.relation.journalResearchAreaScience & Technology - Other Topics-
dc.relation.journalResearchAreaMaterials Science-
dc.relation.journalResearchAreaPhysics-
dc.relation.journalWebOfScienceCategoryNanoscience & Nanotechnology-
dc.relation.journalWebOfScienceCategoryMaterials Science, Multidisciplinary-
dc.relation.journalWebOfScienceCategoryPhysics, Applied-
dc.subject.keywordPlusSWITCHING MECHANISM-
dc.subject.keywordPlusRESISTIVE MEMORY-
dc.subject.keywordPlusSYNAPSE-
dc.subject.keywordPlusPLASTICITY-
dc.subject.keywordPlusSTRATEGIES-
dc.subject.keywordPlusBILAYER-
dc.subject.keywordPlusSPEED-
dc.subject.keywordAuthorAtomic Layer Deposition-
dc.subject.keywordAuthorData Handling-
dc.subject.keywordAuthorEnergy Efficiency-
dc.subject.keywordAuthorRandom Access Storage-
dc.subject.keywordAuthorAtomic-layer Deposition-
dc.subject.keywordAuthorComputing System-
dc.subject.keywordAuthorDeposition Process-
dc.subject.keywordAuthorHigh Energy Efficiency-
dc.subject.keywordAuthorMemristor-
dc.subject.keywordAuthorNeural Firing Patterns-
dc.subject.keywordAuthorParallel Data Processing-
dc.subject.keywordAuthorRandom Access Memory-
dc.subject.keywordAuthorReservoir Computing-
dc.subject.keywordAuthorTraining Costs-
dc.subject.keywordAuthorMemristors-
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