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A Dimension Separation Based Hybrid Classifier Ensemble for Locating Faults in Cloud Services

机译:基于维分离的混合分类器集合,用于云服务中的故障定位

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摘要

Cloud services provide Internet users with various services featured with data fusion through the dynamic and expandable virtual resources. Because a large amount of data runs in different modules of the cloud service systems, it will inevitably produce all kinds of failures when the data is processed in and transferred between modules. Therefore the job of rapid fault location has an important role in improving the quality of cloud services. Because of the features of large scale and data fusion of data in the cloud service system, it is difficult to use the conventional fault locating method to locate the faults quickly. Taking the requirements on the speed of locating faults into account, we will make a clear division to all possible failure causes according to the business phases, and quickly locate the faults by implementing a cascading structure of the neural network ensemble. At last, we conducted an experiment of locating faults in a cloud service system runned by a telecom operator, comparing the proposed hybird classifier ensemble with neural networks trained by separated data subsets and a conventional neural network ensemble based on bagging algorithm. The experiment proved that the neural network ensemble based on dimension separation is effective for locating faults in cloud services.
机译:云服务通过动态和可扩展的虚拟资源为Internet用户提供各种具有数据融合功能的服务。由于大量数据运行在云服务系统的不同模块中,因此当在模块中处理数据并在模块之间传输数据时,不可避免地会产生各种故障。因此,快速定位故障的工作在提高云服务质量方面具有重要作用。由于云服务系统中数据量大且数据融合的特点,很难使用常规的故障定位方法快速定位故障。考虑到故障定位速度的要求,我们将根据业务阶段对所有可能的故障原因进行明确划分,并通过实现神经网络集成的级联结构来快速定位故障。最后,我们进行了在电信运营商运营的云服务系统中定位故障的实验,将提出的混合分类器集成与由分离的数据子集训练的神经网络以及基于装袋算法的常规神经网络集成进行了比较。实验证明,基于维度分离的神经网络集成对于定位云服务中的故障是有效的。

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