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Deriving Optimal Actions from a Random Forest Model

机译:从随机森林模型推导最佳行动

摘要

Training a random forest model to relate settings of a network security device to undesirable behavior of the network security device is provided. A determination of a corresponding set of settings associated with each region of lowest incident probability is made using a random forest. The plurality of identified desired settings are presented as options for changing the network security device from the as-is settings to the identified desired settings. A choice is received from the plurality of options. The choice informs the random forest model. The random forest model ranks for a new problematic network security device the plurality of options for changing the new problematic network security device from as-is settings to desired settings by aggregating an identified cost of individual configuration changes, thereby identifying a most cost-effective setting for the network security device to achieve a desired output of the network security device.
机译:提供训练随机森林模型以将网络安全设备的设置与网络安全设备的不良行为相关联。使用随机森林确定与最低入射概率的每个区域相关联的一组对应设置。多个识别出的期望设置被呈现为用于将网络安全设备从原样设置改变为识别出的期望设置的选项。从多个选项中接收选择。该选择将通知随机森林模型。随机森林模型为新的有问题的网络安全设备分配了多个选项,用于通过汇总确定的各个配置更改的成本,从而将新的有问题的网络安全设备从原样设置更改为所需设置,从而确定最具成本效益的设置使网络安全设备实现网络安全设备的期望输出。

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