首页> 外国专利> MACHINE LEARNING PREDICTION OF VIRTUAL COMPUTING INSTANCE TRANSFER PERFORMANCE

MACHINE LEARNING PREDICTION OF VIRTUAL COMPUTING INSTANCE TRANSFER PERFORMANCE

机译:虚拟计算实例传输性能的机器学习预测

摘要

The disclosure provides an approach for preventing the failure of virtual computing instance transfers across data centers. In one embodiment, a flow control module collects performance information primarily from components in a local site, as opposed to components in a remote site, during the transfer of a virtual machine (VM) from the local site to the remote site. The performance information that is collected may include various performance metrics, each of which is considered a feature. The flow control module performs feature preparation by normalizing feature data and imputing missing feature data, if any. The flow control module then inputs the prepared feature data into machine learning model(s) which have been trained to predict whether a VM transfer will succeed or fail, given the input feature data. If the prediction is that the VM transfer will fail, then remediation actions may be taken, such as slowing down the VM transfer.
机译:本公开提供了一种用于防止跨数据中心的虚拟计算实例传输失败的方法。在一个实施例中,在虚拟机(VM)从本地站点到远程站点的传输期间,流控制模块主要从本地站点的组件(与远程站点的组件相反)收集性能信息。收集的性能信息可能包括各种性能指标,每个指标都被视为功能。流量控制模块通过规范化特征数据并估算缺失的特征数据(如果有)来执行特征准备。然后,流控制模块将准备好的特征数据输入到机器学习模型中,这些模型已经过训练,可以根据给定的输入特征数据预测VM传输成功还是失败。如果预测VM传输将失败,则可以采取补救措施,例如减慢VM传输。

著录项

  • 公开/公告号US2020026538A1

    专利类型

  • 公开/公告日2020-01-23

    原文格式PDF

  • 申请/专利权人 VMWARE INC.;

    申请/专利号US201816040272

  • 申请日2018-07-19

  • 分类号G06F9/455;G06F11/34;G06N3/02;G06K9/62;G06N7;G06F11/20;

  • 国家 US

  • 入库时间 2022-08-21 11:21:50

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