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Machine learning and security classification of user accounts

机译:用户账户的机器学习和安全分类

摘要

Machine learning techniques are used in combination with graph data structures to perform automated classification of accounts. Graphs may be constructed using a seed node and then expanded outward to second-degree nodes and third-degree nodes that are connected to a seed user account node via direct interaction between the accounts. Characterization information regarding the interaction between accounts can be stored in the graph (e.g., quantity of interactions, types of interactions) as well as other metrics and metadata. A classifier, using random forest or another technique, may be trained using a number of different graphs that can then be used to reach a determination as to whether a user account falls into one particular category or another. These techniques can identify accounts that may be violating terms of service, committing a security violation, and/or performing illegal actions in a way that is not ascertainable from human analysis.
机译:机器学习技术与图形数据结构组合使用,以执行账户的自动分类。 可以使用种子节点构造图,然后通过账户之间的直接交互向外扩展到二维节点和三度节点,该节点通过账户之间的直接交互连接到种子用户帐户节点。 关于帐户之间的交互的特征信息可以存储在图中(例如,交互数量,交互类型)以及其他度量和元数据中。 使用随机森林或另一种技术的分类器可以使用多个不同的图来训练,该不同图可以用于达到确定用户帐户是否落入一个特定类别或另一个特定类别的不同图。 这些技术可以识别可能违反服务条款的帐户,以不确定人类分析不确定的方式执行安全违规行为,以及执行非法行动。

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