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SYSTEMS AND METHODS FOR EXTRACTING PATTERNS FROM GRAPH AND UNSTRUCTURED DATA

机译:从图形和非结构化数据中提取图案的系统和方法

摘要

A computing system receives input data having both graph and unstructured data and computes a current log likelihood of the input data. The computing system compares the current log likelihood with a previous log likelihood of the input data. If the current log likelihood is larger than the previous log likelihood, the computing system update topic modeling parameters, community modeling parameters, and the link generation parameter until the computing system obtains a maximal value of the log likelihood of the input data. Then, the computing system creates a graph indicating topic similarity between the input data based on the topic modeling parameters, creates another graph indicating community similarity between entities associated with the input data based on the community modeling parameters, and predicts a link existence between input data or entities based on the link generation parameter, the topic modeling parameter and the community modeling parameter.
机译:计算系统接收具有图形数据和非结构化数据的输入数据,并计算输入数据的当前对数似然。计算系统将当前对数似然度与输入数据的先前对数似然度进行比较。如果当前对数可能性大于先前对数可能性,则计算系统更新主题建模参数,社区建模参数和链接生成参数,直到计算系统获得输入数据的对数可能性的最大值为止。然后,计算系统基于主题建模参数创建指示输入数据之间的主题相似性的图,基于社区建模参数创建指示与输入数据相关联的实体之间的社区相似性的另一个图,并预测输入数据之间的链接存在或基于链接生成参数,主题建模参数和社区建模参数的实体。

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