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Chinese shallow semantic parsing based on multilevel linguistic clues

机译:基于多级语言线索的中国浅层语义解析

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摘要

With rapid development of artificial intelligence and Chinese information processing technology, research related to natural language processing have reached the level of semantic understanding gradually, while Chinese Shallow Semantic Parsing is the key technique in the semantic understanding field. In this paper, a further improvement is conducted on the basic model of Chinese semantic role labeling for linear classification based on conditional random fields. In this paper, a method of combination of linguistic clues, combining with the existing linear sequence labeling algorithm and integrating some multilevel linguistic clues, such as morphology is related to syntax, in the model training to reconstruct and improve the Chinese semantic role labeling model of linear sequence. Through the experimental comparison and linguistic assistant analysis, this paper puts forward a targeted improvement method to significantly improve the accuracy of model labeling and proves that the integration of related linguistic clues in the semantic role labeling model based on linear sequence can improve the effect of model labeling.
机译:随着人工智能和中国信息加工技术的快速发展,与自然语言处理有关的研究逐渐达到了语义理解的水平,而中国浅层语义解析是语义理解领域的关键技术。本文在基于条件随机场的线性分类的基本模型上进行了进一步的改进。在本文中,一种语言线索组合的方法,与现有的线性序列标记算法组合并集成了一些多级语言线索,例如形态与语法有关,在模型训练中重建和改进汉语语义角色标记模型线性序列。通过实验比较和语言助理分析,本文提出了一个有针对性的改进方法,显着提高了模型标记的准确性,并证明了基于线性序列的语义作用标记模型中相关语言线索的整合可以提高模型的效果标签。

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