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An Anomaly Detection Algorithm of Cloud Platform Based on Self-Organizing Maps

机译:基于自组织映射的云平台异常检测算法

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摘要

Virtual machines (VM) on a Cloud platform can be influenced by a variety of factors which can lead to decreased performance and downtime, affecting the reliability of the Cloud platform. Traditional anomaly detection algorithms and strategies for Cloud platforms have some flaws in their accuracy of detection, detection speed, and adaptability. In this paper, a dynamic and adaptive anomaly detection algorithm based on Self-Organizing Maps (SOM) for virtual machines is proposed. A unified modeling method based on SOM to detect the machine performance within the detection region is presented, which avoids the cost of modeling a single virtual machine and enhances the detection speed and reliability of large-scale virtual machines in Cloud platform. The important parameters that affect the modeling speed are optimized in the SOM process to significantly improve the accuracy of the SOM modeling and therefore the anomaly detection accuracy of the virtual machine.
机译:Cloud平台上的虚拟机(VM)可能受到多种因素的影响,这些因素可能导致性能降低和停机时间减少,从而影响Cloud平台的可靠性。针对云平台的传统异常检测算法和策略在检测准确性,检测速度和适应性方面存在一些缺陷。提出了一种基于自组织映射(SOM)的虚拟机动态自适应异常检测算法。提出了一种基于SOM的检测区域内机器性能检测的统一建模方法,避免了对单个虚拟机进行建模的成本,提高了大型虚拟机在云平台上的检测速度和可靠性。在SOM流程中优化了影响建模速度的重要参数,以显着提高SOM建模的准确性,从而提高虚拟机的异常检测准确性。

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  • 来源
    《Mathematical Problems in Engineering 》 |2016年第4期| 3570305.1-3570305.9| 共9页
  • 作者单位

    Chongqing Univ, Coll Comp Sci, Chongqing 400044, Peoples R China;

    Chongqing Univ, Coll Software Engn, Chongqing 400044, Peoples R China;

    Chongqing Univ, Coll Comp Sci, Chongqing 400044, Peoples R China;

    Chongqing Univ, Coll Comp Sci, Chongqing 400044, Peoples R China;

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