Natural language query in the biochemistry and molecular biology domains based on cognition search™.

Elizabeth J Goldsmith, Saurabh Mendiratta, Radha Akella, Kathleen Dahlgren
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Abstract

Motivation: With the increasing volume of scientific papers and heterogeneous nomenclature in the biomedical literature, it is apparent that an improvement over standard pattern matching available in existing search engines is required. Cognition Search Information Retrieval (CSIR) is a natural language processing (NLP) technology that possesses a large dictionary (lexicon) and large semantic databases, such that search can be based on meaning. Encoded synonymy, ontological relationships, phrases, and seeds for word sense disambiguation offer significant improvement over pattern matching. Thus, the CSIR has the right architecture to form the basis for a scientific search engine.

Result: Here we have augmented CSIR to improve access to the MEDLINE database of scientific abstracts. New biochemical, molecular biological and medical language and acronyms were introduced from curated web-based sources. The resulting system was used to interpret MEDLINE abstracts. Meaning-based search of MEDLINE abstracts yields high precision (estimated at >90%), and high recall (estimated at >90%), where synonym, ontology, phrases and sense seeds have been encoded. The present implementation can be found at http://MEDLINE.cognition.com.

Contact: Elizabeth.goldsmith@UTsouthwestern.edu Kathleen.dahlgren@cognition.com.

Abstract Image

Abstract Image

基于认知搜索的生物化学和分子生物学领域的自然语言查询。
动机:随着科学论文数量的增加和生物医学文献中异质命名法的增多,显然需要对现有搜索引擎中可用的标准模式匹配进行改进。认知搜索信息检索(CSIR)是一种自然语言处理(NLP)技术,它拥有大型词典(lexicon)和大型语义数据库,可以基于意义进行搜索。编码的同义词、本体关系、短语和用于词义消歧的种子提供了比模式匹配更大的改进。因此,CSIR具有形成科学搜索引擎基础的正确架构。结果:我们增强了CSIR,改善了对MEDLINE科学摘要数据库的访问。新的生物化学、分子生物学和医学语言和缩略语从经过整理的网络资源中引入。结果系统用于解释MEDLINE摘要。MEDLINE摘要的基于意义的搜索产生了高精度(估计>90%)和高召回率(估计>90%),其中同义词、本体、短语和意义种子已经编码。目前的实现可以在http://MEDLINE.cognition.com.Contact: Elizabeth.goldsmith@UTsouthwestern.edu Kathleen.dahlgren@cognition.com找到。
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