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Loose term-centric representation for term classification in aspect-based sentiment analysis

机译:基于方面的情感分析中以术语为中心的松散术语分类

摘要

A method for aspect categorization includes receiving an input text sequence and identifying aspect terms and sentiment phrases in the input text sequence, where present. For an identified aspect term, identifying sentiment dependencies in which the aspect term is in a syntactic dependency with one of the identified sentiment phrases, and identifying pseudo-dependencies from a dependency graph of the input text sequence. The dependency graph includes a sequence of nodes. In a pseudo-dependency, a node representing the aspect term precedes or follows a node representing a semantic anchor in the dependency graph without an intervening other aspect term. Features for the aspect term are extracted from at least one of identified sentiment dependencies and identified pseudo-dependencies. With a classifier trained to output at least one of category labels and polarity labels for aspect terms, classifying the identified aspect term based on the extracted features.
机译:一种用于方面分类的方法,包括:接收输入文本序列,并在存在的情况下识别输入文本序列中的方面术语和情感短语。对于所识别的方面术语,识别其中方面术语与所识别的情感短语之一处于句法依赖性的情感依赖性,并从输入文本序列的依赖性图识别伪依赖性。依赖图包括一系列节点。在伪依赖性中,代表方面术语的节点在依赖关系图中的代表语义锚点的节点之前或之后,而无需干预其他方面术语。从所识别的情感依赖性和所识别的伪依赖性中的至少一个提取方面项的特征。通过训练分类器以输出方面项的类别标签和极性标签中的至少一个,基于提取的特征对识别出的方面项进行分类。

著录项

  • 公开/公告号US9633007B1

    专利类型

  • 公开/公告日2017-04-25

    原文格式PDF

  • 申请/专利权人 XEROX CORPORATION;

    申请/专利号US201615079883

  • 发明设计人 CAROLINE BRUN;JULIEN PEREZ;CLAUDE ROUX;

    申请日2016-03-24

  • 分类号G06F17/27;G06F17/30;G06F15;

  • 国家 US

  • 入库时间 2022-08-21 13:44:14

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