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A Hybrid Cloud Resource Clustering Method using Analysis of Application Characteristics

机译:一种使用应用特征分析的混合云资源聚类方法

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With the development of cloud computing technology, there are many scientists who want to perform their experiments in cloud environments. Because of the pay-per-use method, it is cost-optimal for scientists to only pay for the cloud services needed for their experiments. However, selection of suitable resources is difficult because they are composed of various characteristics. Therefore, a method of classification is needed to effectively utilize cloud resources. Static classification of a resource can derive inaccurate results, while scientists submit various experiment intentions and requirements. Thus, a dynamic resource-clustering method is needed to accurately determine application characteristics and scientists' requirements. In this paper, a resource-clustering analysis, which considers application characteristics in a hybrid cloud environment is proposed. The resource clustering analysis applies a self-organizing map and the k-means algorithm to cluster similar resources dynamically. Performance is verified by comparing the proposed clustering method with other studies' resource classification methods. Results show that the proposed method can classify similar resource cluster reflecting application characteristics.
机译:随着云计算技术的发展,有许多想要在云环境中进行实验的科学家。由于每次使用付费的方法,科学家们只需支付他们实验所需的云服务即可获得成本最佳。然而,选择合适的资源是困难的,因为它们由各种特征组成。因此,需要一种分类方法来有效地利用云资源。资源的静态分类可以导出不准确的结果,而科学家提交了各种实验意图和要求。因此,需要动态资源聚类方法来准确确定应用特征和科学家的要求。本文提出了一种资源聚类分析,其考虑混合云环境中的应用特征。资源聚类分析适用于自组织地图和K-Means算法,以动态群集类似的资源。通过将建议的聚类方法与其他研究的资源分类方法进行比较来验证性能。结果表明,该方法可以对反映应用特征的类似资源集群进行分类。

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