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Behavioral Classification of Business Process Executions at Runtime

机译:运行时业务流程执行的行为分类

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Current automated methods to identify erroneous or malicious executions of a business process from logs, metrics, or other observable effects are based on detecting deviations from the normal behavior of the process. This requires a "single model of normative behavior": the current execution either conforms to that model, or not. In this paper, we propose a method to automatically distinguish different behaviors during the execution of a process, so that a timely reaction can be triggered, e.g., to mitigate the risk of an ongoing attack. The behavioral classes are learned from event logs of a process, including branching probabilities and event frequencies. Using this method, harmful or problematic behavior can be identified during or even prior to its occurrence, raising alarms as early as undesired behavior is observable. The proposed method has been implemented and evaluated on a set of artificial logs capturing different types of exceptional behavior. Pushing the method to its edge in this evaluation, we provide a first assessment of where the method can clearly discriminate between classes of behavior, and where the differences are too small to make a clear determination.
机译:从日志,度量标准或其他可观察到的影响中识别业务流程的错误或恶意执行的当前自动化方法是基于检测与流程正常行为的偏差。这需要一个“规范行为的单一模型”:当前执行是否符合该模型。在本文中,我们提出了一种在流程执行过程中自动区分不同行为的方法,以便可以触发及时的反应,例如以减轻正在进行的攻击的风险。从流程的事件日志中学习行为类,包括分支概率和事件频率。使用这种方法,可以在有害的或有问题的行为发生之前甚至发生之前进行识别,从而在发现不希望有的行为之前就发出警报。提议的方法已在一组捕获不同类型异常行为的人工日志上实现和评估。在评估中将方法推到最前沿时,我们提供了对方法可以清楚地区分行为类别以及差异太小而无法做出明确确定的初步评估。

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