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Model Driven Provisioning in Multi-tenant Clouds

机译:多租户云中的模型驱动配置

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摘要

In multi-tenant cloud systems today, provisioning of resources for new tenancy is based on selection from a catalogue published by the cloud provider. The published images are generally a stack of appliances with Infrastructure (IaaS) and Platform (PaaS) layers and optionally Application layers (SaaS). Such a ready-made model enables quicker and streamlined resource provisioning to clients. However, this approach poses certain challenges to clients in the short run and providers in the long run. Unique tenancy requirements from each client are forcibly generalized by selecting one of the available images from the catalogue as the tenancy requirements are not modeled or validated to start with. Moreover, resource provisioning is mostly done towards addressing the peak load expectations in the tenancy. Such a static approach does not help in adapting to dynamically changing tenancy requirements, most often leading to the tenants owning and subsequently paying for more than what they need. In particular, provisioned resources are expected to perform at the same level of quality without accounting for their changing health. In our paper, we propose an extensible dynamic provisioning framework to address these challenges. We start with defining a Tenancy Requirements Model (TRM) which helps map provisioned resources with tenants. The provisioned and candidate resources are also modeled with their Quality of Service (QoS) characteristics which we call Health Grading Model (HGM); this helps in continuous monitoring and grading of resources based on health parameters and enables health prediction for future provisioning. Together, TRM and HGM allow dynamic re-provisioning for existing tenants based on either changing tenancy requirements or health grading predictions. We also present algorithms for prediction based provisioning and tenancy requirement matching. We illustrate our ideas throughout this paper with a running example, and present a proof-of-concept prototype im- lementation on IBM's Rational Software Architect modeling tool.
机译:在当今的多租户云系统中,为新租户提供资源是基于从云提供商发布的目录中选择的。发布的映像通常是一堆带有基础结构(IaaS)和平台(PaaS)层以及可选的应用程序层(SaaS)的设备。这种现成的模型可以为客户提供更快,更简化的资源供应。但是,这种方法在短期内对客户和长期内的提供商都构成了一定的挑战。由于没有对租赁需求进行建模或验证,因此通过从目录中选择可用图像之一来强制概括每个客户的独特租赁需求。此外,资源供应主要是为了解决租赁中的峰值负载期望。这种静态方法无助于适应动态变化的租赁需求,通常导致租户拥有并随后支付超出其所需水平的费用。尤其是,在不考虑其不断变化的健康状况的前提下,预配置的资源将以相同的质量水平运行。在我们的论文中,我们提出了一个可扩展的动态配置框架来应对这些挑战。我们首先定义一个租赁需求模型(TRM),该模型可帮助将配置的资源与租户进行映射。已配置资源和候选资源还使用它们的服务质量(QoS)特性进行建模,我们将其称为健康分级模型(HGM);这有助于根据运行状况参数对资源进行连续监视和分级,并可以进行运行状况预测以供将来配置。 TRM和HGM一起可以根据不断变化的租赁要求或健康等级预测对现有的租户进行动态重新配置。我们还提出了基于预测的供应和租赁需求匹配的算法。我们将通过一个运行中的示例在整个本文中说明我们的想法,并在IBM的Rational Software Architect建模工具上展示概念证明原型的实现。

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