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Effective Prediction in Amazon Web Service Based Clustered Data Using Artificial Neural Networks

机译:使用人工神经网络的基于亚马逊网络服务的群集数据的有效预测

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Now a days, there are number of cab services providers which are confusing the client with number of similar kind of service options. That's why there is a need of selecting a quality service from a set of given services. It motivates us to design an approach which is efficient in providing the effective service after the data analysis of real time data developed and collected through Amazon Web Services. This paper aims at analyzing a mathematical model that is used to predict the most efficient output of a dataset of a model using Artificial Neural Network. The proposed mathematical model is made and applied on a database of real time cab services developed using Amazon Web Services to predict the effective web service. We have analyzed the real time dataset using Rapidminer. The Analysis is done on the bases of the threshold and root mean square error values obtained. We are proposing the methodology which is highly competent and accurate in obtaining the results.
机译:现在,有一天,有数量的驾驶室服务提供商,这些提供商令客户端困惑着类似的服务选项数量。这就是为什么需要从一组给定的服务中选择优质服务。它激励我们设计一种在通过Amazon Web服务开发和收集的实时数据的数据分析后提供有效的服务。本文旨在分析用于预测使用人工神经网络预测模型数据集的最有效输出的数学模型。所提出的数学模型是在使用Amazon Web服务开发的实时驾驶室服务数据库上,以预测有效的Web服务的数据库。我们使用RapidMiner分析了实时数据集。在获得的阈值和根均方误差值的基础上进行分析。我们提出了在获得结果方面具有高度竞争力和准确的方法。

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