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MACHINE LEARNING APPLICATIONS FOR TEMPORALLY-RELATED EVENTS

机译:临时事件的机器学习应用

摘要

Systems and methods for enhanced classification of sequences of objects based on clique similarity and metadata associated with the sequences are presented. Sequences are received. Events are detected based on analyzing k-skip-n-grams included in the sequences. For each event of the detected plurality of events, a graph is generated. The graph for a particular event includes z-cliques that correspond to portions of the k-skip-n-grams that are included in the sequences that are associated with the particular event. A first sequence, which is separate from the other sequences, is received. The first sequence includes a first plurality of k-skip-n-grams. A trained classifier is employed to classify the first sequence as being associated with a first event of the detected events. Classifying the first sequence is based on a comparison between the first plurality of k-skip-n-grams and the z-cliques of the graph that is generated for the first event.
机译:提出了用于基于群体相似性和与序列相关联的元数据来增强对象序列的分类的系统和方法。序列被接收。根据分析序列中包含的k-跳过n-gram来检测事件。对于检测到的多个事件中的每个事件,生成图。特定事件的图包括z斜率,该z斜率对应于与该特定事件相关联的序列中所包括的k跳过n元语法的部分。接收与其他序列分开的第一序列。第一序列包括第一多个k跳过n元。采用训练有素的分类器将第一序列分类为与检测到的事件的第一事件相关联。对第一序列进行分类是基于第一组多个k-跳过n-gram和为该第一事件生成的图的z-clique之间的比较。

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