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Evolutionary Computation for Optimal Component Deployment with Multitenancy Isolation in Cloud-hosted Applications

机译:云托管应用中多节型隔离的最佳分量部署的进化计算

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A multitenant cloud-application that is designed to use several components needs to implement the required degree of isolation between the components when the workload changes. The highest degree of isolation results in high resource consumption and running cost per component. A low degree of isolation allows sharing of resources, but leads to degradation in performance and to increased security vulnerability. This paper presents a simulation-based approach operating on computational metaheuristics that search for optimal ways of deploying components of a cloud-hosted application to guarantee multitenancy isolation When the workload changes, an open multiclass Queuing Network model is used to determine the average number of component access requests, followed by a metaheuristic search for the optimal deployment solutions of the components in question. The simulation-based evaluation of optimization performance showed that the solutions obtained were very close to the target solution. Various recommendations and best practice guidelines for deploying components in a way that guarantees the required degree of isolation are also provided.
机译:旨在使用多个组件的多仪云应用程序需要在工作负载变化时在组件之间实现所需的隔离程度。每个组件的最高程度的隔离程度导致高资源消耗和运行成本。低的隔离程度允许共享资源,但导致性能下降并提高安全漏洞。本文介绍了一种基于模拟的方法,用于在计算成束中操作,搜索在工作负载变化时,搜索云托管应用程序的组件的最佳方式,以保证多租期隔离,用于确定平均组件数量的开放式多种多组队列网络模型访问请求,然后是讨论所讨论的组件的最佳部署解决方案。基于仿真的优化性能评估表明,所获得的溶液非常接近靶溶液。还提供了各种建议和最佳实践指南,以确保保证所需的隔离程度的方式部署组件。

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