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Extracting and Visualizing Semantic Relationships from Chinese Biomedical Text

机译:从中国生物医学文献中提取和可视化语义关系

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In this paper, we study how to automatically extract and visualize food (or nutrition) and disease relationships from Chinese publications of Nutritional Genomics. Different from previous approaches that mostly apply handcrafted rules or co-occurrence patterns, we propose an approach using probabilistic models and domain knowledge, In particular, we first utilize encyclopedia to construct a domain knowledge base, and then develop a sentence simplification model to simplify complicated sentences we meet. Afterwards, we treat relation extraction issue as a sequence labeling task and adopt Conditional Random Fields (CRFs) models to extract food and disease relationships. Finally, these relationships are visualized. Experimental results on real-world datasets show that the proposed approach is effective.
机译:在本文中,我们研究了如何从中国营养基因组学出版物中自动提取和可视化食物(或营养)与疾病的关系。与以前主要采用手工规则或共现模式的方法不同,我们提出了一种使用概率模型和领域知识的方法,特别是,我们首先利用百科全书库来构建领域知识库,然后开发句子简化模型以简化复杂性我们遇到的句子。然后,我们将关系提取问题视为序列标记任务,并采用条件随机场(CRF)模型来提取食物和疾病的关系。最后,这些关系是可视化的。在真实数据集上的实验结果表明,该方法是有效的。

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