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Inferring User Actions from Provenance Logs

机译:从出处日志推断用户操作

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Progger, a kernel-spaced cloud data provenance logger which provides fine-grained data activity records, was recently developed to empower cloud stakeholders to trace data life cycles within and across clouds. Progger logs have the potential to allow analysts to infer user actions and create a data-centric behaviour history in a cloud computing environment. However, the Progger logs are complex and noisy and therefore, currently this potential can not be met. This paper proposes a statistical approach to efficiently infer the user actions from the Progger logs. Inferring logs which capture activities at kernel-level granularity is not a straightforward endeavour. This paper overcomes this challenge through an approach which shows a high level of accuracy. The key aspects of this approach are identifying the data preprocessing steps and attribute selection. We then use four standard classification models and identify the model which provides the most accurate inference on user actions. To our best knowledge, this is the first work of its kind. We also discuss a number of possible extensions to this work. Possible future applications include the ability to predict an anomalous security activity before it occurs.
机译:最近开发了Progger,它是一种内核间隔的云数据源记录器,它提供细粒度的数据活动记录,以使云利益相关者能够跟踪云内和跨云的数据生命周期。 Progger日志具有使分析人员推断用户操作并在云计算环境中创建以数据为中心的行为历史的潜力。但是,Progger日志复杂且嘈杂,因此目前无法满足这种潜力。本文提出了一种统计方法,可以有效地从Progger日志中推断出用户操作。推断以内核级粒度捕获活动的日志并不是一件容易的事。本文通过显示高水平准确性的方法克服了这一挑战。该方法的关键方面是确定数据预处理步骤和属性选择。然后,我们使用四个标准分类模型,并确定对用户操作提供最准确推断的模型。据我们所知,这是同类工作中的第一项。我们还讨论了这项工作的许多可能的扩展。未来可能的应用包括能够在异常安全活动发生之前对其进行预测。

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