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Automatic Extraction of Information about the Molecular Interactions in Biological Pathways from Texts Based on Ontology and Semantic Processing

机译:基于本体论和语义加工的文本自动提取关于生物途径中的分子相互作用的信息

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We develop a framework using ontology inference and semantic processing techniques to help biologists to extract knowledge directly from a large scale of biological literature in NCBI PubMed. The system integrated various sharable thesauri of WordNet, MeSH (Medical Subject Heading), and GO (Gene ontology) to support the automatic semantic annotation and analysis. The natural language processing and semantic processing are facilitated by the ontological inference, and the system could automatically extract the correct molecular interactions from the complex sentences in an abstract automatically. It facilitates the biologists not only to save time and efforts to construct and analyze biological pathways, but also to discover the novel molecular interactions by comparing the information extracted from the literature with that in such existing pathway database as KEGG. We evaluated the system performance based on the pathways in Apoptosis domain.
机译:我们使用本体推理和语义加工技术制定框架,以帮助生物学家直接从NCBI Pubmed中的大规模生物文学中提取知识。系统集成了Wordnet的各种可共享词库,网格(医学主题标题),并转到(基因本体)以支持自动语义注释和分析。通过本体学理促进了自然语言处理和语义处理,系统可以自动自动从摘要中从复杂句子中提取正确的分子交互。它促进了生物学家不仅可以节省时间和努力来构建和分析生物途径,而且还通过比较从文献中提取的信息作为KEGG的这种信息来了解新的分子相互作用。我们根据凋亡域中的途径评估了系统性能。

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