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Self-configuration model based neural predition and agent technology for cloud infrastructure

机译:基于自配置模型的神经基础设施和云技术的代理

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Cloud computing including hardware, software and networks are growing towards an ever increasing scale and heterogeneity, becoming overly complex. In order to manage such growing complexity and information overload, nowadays Cloud researchers propose to enrich the Cloud with Autonomic Computing properties. In fact the autonomic computing focuses on self-adaptable computing systems to the maximum extent possible without human intervention or guidance. The Cloud Infrastructure is partially automated. This limitation results from the absence of an architectural model for describing distributed resources and their interdependencies in terms of configuration. This article proposes a model of distributed resources in the form of a set of resources interconnected and automated in order to predict and configure cloud resources. We propose to use the agent technology in order to provide a distributed solution for the decentralized resources self-configuring and the adaptation of the Cloud infrastructure. We enhanced the proposed model with neural prediction method and broker agent in order to ameliorate the performance of the Cloud Infrastructure. Moreover, the proposed model has been validated using a formal policy.
机译:包括硬件,软件和网络在内的云计算正朝着不断扩大的规模和异构性发展,变得过于复杂。为了管理这种日益增长的复杂性和信息过载,如今,云研究人员提出使用自主计算属性来丰富云。实际上,自主计算在没有人工干预或指导的情况下,最大程度地关注自适应系统。云基础架构已部分自动化。这种限制是由于缺少用于描述分布式资源及其在配置方面的相互依赖性的体系结构模型而导致的。本文提出了一种分布式资源模型,该模型以一组相互关联和自动化的资源形式存在,以预测和配置云资源。我们建议使用代理技术,以便为分散式资源的自我配置和云基础架构的适应性提供分布式解决方案。我们使用神经预测方法和代理程序对建议的模型进行了增强,以改善Cloud Infrastructure的性能。此外,所提出的模型已使用正式政策进行了验证。

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