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Chinese Pronominal Coreference Resolution Using Decision Tree Plus Filter Rules

机译:使用决策树加滤波器规则的汉语双功冠心心引力分辨率

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With the advancement of natural language understanding (NLU), coreference resolution, as a main part of information extraction (IE), has received much more attention. For this task, either rule-based or statistics-based methods cannot meet the needs of large-scale text processing. An integrated method based on decision tree for Chinese pronominal coreference is proposed. The basic idea is filter rules could, to some degree compensate the drawback of decision tree that ignoring the relationship between attributes. The performance of the proposed method is evaluated on Chinese Treebank. In our experiments, the attributes and coreferences are manually labeled, and then the filter rules are utilized to feature vectors following the decision tree of C4.5 algorithm. The success rate is 82.59%, in which the rate of personal pronouns and demonstrative pronouns are 87.60% and 75.21% respectively.
机译:随着自然语言理解(NLU),Coreference解决方案的进步,作为信息提取的主要部分(即),已收到更多的关注。对于此任务,基于规则的或基于统计的方法无法满足大规模文本处理的需求。提出了一种基于决策树的综合方法,包括用于汉代理COSEREREDS。基本思想是过滤规则可以,以某种程度补偿忽略属性之间关系的决策树的缺点。在中国树木银行中评估了所提出的方法的性能。在我们的实验中,手动标记属性和经验性,然后将过滤规则用于在C4.5算法的决策树之后的传感器。成功率为82.59%,其中人称代词和示范代词的率分别为87.60%和75.21%。

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