2024
DOI: 10.3233/jifs-236838
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Dynamic task scheduling in edge cloud systems using deep recurrent neural networks and environment learning approaches

S.K. Ammavasai

Abstract: The rapid growth of the cloud computing landscape has created significant challenges in managing the escalating volume of data and diverse resources within the cloud environment, catering to a broad spectrum of users ranging from individuals to large corporations. Ineffectual resource allocation in cloud systems poses a threat to overall performance, necessitating the equitable distribution of resources among stakeholders to ensure profitability and customer satisfaction. This paper addresses the critical issu… Show more

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Cited by 2 publications
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“…For extensive workflows, the costs associated with utilizing cloud resources can quickly escalate, posing a significant financial burden to research endeavors. Moreover, the latency incurred by transferring data over vast distances to and from cloud servers can impede the overall performance of the workflow, undermining the very efficiency researchers seek to achieve 7,8 . Enter the hybrid cloud-edge paradigm-a groundbreaking approach that redefines the landscape of computational research.…”
Section: Introductionmentioning
confidence: 99%
“…For extensive workflows, the costs associated with utilizing cloud resources can quickly escalate, posing a significant financial burden to research endeavors. Moreover, the latency incurred by transferring data over vast distances to and from cloud servers can impede the overall performance of the workflow, undermining the very efficiency researchers seek to achieve 7,8 . Enter the hybrid cloud-edge paradigm-a groundbreaking approach that redefines the landscape of computational research.…”
Section: Introductionmentioning
confidence: 99%