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Two-stage approach to full Chinese parsing

机译:全中文解析的两阶段方法

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摘要

Natural language parsing is a task of great importance and extreme difficulty. In this paper, we present a full Chinese parsing system based on a two-stage approach. Rather than identifying all phrases by a uniform model, we utilize a divide and conquer strategy. We propose an effective and fast method based on Markov model to identify the base phrases. Then we make the first attempt to extend one of the best English parsing models i.e. the head-driven model to recognize Chinese complex phrases. Our two-stage approach is superior to the uniform approach in two aspects. First. it creates synergy between the Markov model and the head-driven model. Second, it reduces the complexity of full Chinese parsing and makes the parsing system space and time efficient. We evaluate our approach in PARSEVAL measures on the open test set, the parsing system performances at 87.53 percent precision, 87.95 percent recall.
机译:自然语言解析是非常重要和极端困难的任务。在本文中,我们提出了一种基于两阶段方法的完整中文分析系统。我们没有采用统一的模型来识别所有短语,而是采用了分而治之的策略。我们提出了一种基于马尔可夫模型的快速有效的方法来识别基本短语。然后我们首先尝试扩展一种最佳的英语解析模型,即用于识别中文复杂短语的头部驱动模型。我们的两阶段方法在两个方面都优于统一方法。第一。它在马尔可夫模型和头部驱动模型之间产生协同作用。其次,它降低了完整中文解析的复杂性,并使解析系统的空间和时间效率更高。我们在开放测试集的PARSEVAL度量中评估我们的方法,解析系统的性能精度为87.53%,召回率为87.95%。

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