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A natural language processing system to assess user needs in information retrieval.

机译:一种自然语言处理系统,用于评估信息检索中的用户需求。

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摘要

An important goal of Biomedical Informatics is the delivery of information to health care providers that can positively influence the health care process. The biomedical literature is a significant source of such information but it is difficult to access at the point-of-care. Information retrieval (IR) systems can deliver this information, but do not assist the clinician in understanding his or her information need. Our new approach to clinical IR specifies the information a clinician requires before formulating IR queries by analyzing relevant text documents with a new Medical Language Processing (MLP) system.; We have designed a MLP system that can structure natural language for both representing contextual information and for conceptual IR. The system was designed specifically to require the minimum amount of human engineering. The system uses existing language resources, specifically the Unified Medical Language System's definitions for semantic types and relationships, to structure text into conceptual graphs. Our MLP system differs from existing MLP systems through its use of computerized learning techniques. Our system is capable of generating its knowledge structures solely from positive training examples. Furthermore, the system is robust and will never fail to generate a parse and therefore will always be able to pass a parse along to an IR system.; The system uses a machine learned syntactic grammar as the foundation for a semantic one. Our results showed that using syntactic analysis prior to semantic parsing improved the system's ability to identify semantic relationships. This MLP system has been integrated into an existing information needs identification system. The system is able to generate information needs based on selected user text. This shifts the burden of articulating information needs away from the user; the user need only select a region of interesting text and the system will generate reasonable information needs based on that selection. When compared to human generated graphs, the system as a whole performed comparably in identifying user needs, although it still requires clinical evaluation to confirm that the generated needs are can be utilized in IR tasks.
机译:生物医学信息学的一个重要目标是向医疗保健提供者传递可以对医疗保健过程产生积极影响的信息。生物医学文献是此类信息的重要来源,但在医疗点很难获取。信息检索(IR)系统可以传递此信息,但不能帮助临床医生了解他或她的信息需求。我们的临床IR的新方法通过使用新的医学语言处理(MLP)系统分析相关文本文档来指定临床医生在制定IR查询之前需要的信息。我们设计了一个MLP系统,该系统可以构建自然语言以表示上下文信息和概念IR。该系统是专门为要求最少的人力工程而设计的。该系统使用现有的语言资源,特别是统一医学语言系统对语义类型和关系的定义,将文本构造为概念图。我们的MLP系统通过使用计算机学习技术而不同于现有的MLP系统。我们的系统能够仅通过积极的培训示例来生成其知识结构。此外,该系统是健壮的,并且将永远不会失败,因此将始终能够将解析传递给IR系统。该系统使用机器学习的语法作为语义语义的基础。我们的结果表明,在语义解析之前使用语法分析可以提高系统识别语义关系的能力。该MLP系统已集成到现有的信息需求识别系统中。该系统能够根据选定的用户文本生成信息需求。这将表达信息需求的负担从用户身上转移了出去;用户只需要选择一个有趣的文本区域,系统就会基于该选择生成合理的信息需求。当与人类生成的图表进行比较时,该系统作为一个整体在识别用户需求方面具有可比性,尽管它仍然需要临床评估以确认生成的需求可用于IR任务。

著录项

  • 作者

    Campbell, David Andrew.;

  • 作者单位

    Columbia University.;

  • 授予单位 Columbia University.;
  • 学科 Engineering Biomedical.; Biology Molecular.; Artificial Intelligence.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 233 p.
  • 总页数 233
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;分子遗传学;人工智能理论;
  • 关键词

  • 入库时间 2022-08-17 11:41:25

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