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A concept-relationship acquisition and inference approach for hierarchical taxonomy construction from tags

机译:基于标签的层次分类法构建的概念关系获取和推理方法

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摘要

Taxonomy construction is a resource-demanding, top-down, and time consuming effort. It does not always cater for the prevailing context of the captured information. This paper proposes a novel approach to automatically convert tags into a hierarchical taxonomy. Folksonomy describes the process by which many users add metadata in the form of keywords or tags to shared content. Using folksonomy as a knowledge source for nominating tags, the proposed method first converts the tags into a hierarchy. This serves to harness a core set of taxonomy terms; the generated hierarchical structure facilitates users' information navigation behavior and permits personalizations. Newly acquired tags are then progressively integrated into a taxonomy in a largely automated way to complete the taxonomy creation process. Common taxonomy construction techniques are based on 3 main approaches: clustering, lexico-syntactic pattern matching, and automatic acquisition from machine-readable dictionaries. In contrast to these prevailing approaches, this paper proposes a taxonomy construction analysis based on heuristic rules and deep syntactic analysis. The proposed method requires only a relatively small corpus to create a preliminary taxonomy. The approach has been evaluated using an expert-defined taxonomy in the environmental protection domain and encouraging results were yielded.
机译:分类法构建是一项资源需求,自上而下且耗时的工作。它并不总是迎合所捕获信息的主要上下文。本文提出了一种新颖的方法来自动将标签转换为层次分类法。 Folksonomy描述了许多用户将关键字或标签形式的元数据添加到共享内容的过程。利用民俗分类法作为标记的知识来源,该方法首先将标记转换为层次结构。这有助于利用一组核心的分类法术语;生成的分层结构有助于用户的信息导航行为并允许个性化。然后,在很大程度上自动化的方式将新获取的标签逐步集成到分类法中,以完成分类法创建过程。常见的分类法构建技术基于3种主要方法:聚类,词汇句法模式匹配以及从机器可读词典中自动获取。与这些流行的方法相反,本文提出了一种基于启发式规则和深度句法分析的分类法构建分析。所提出的方法仅需要相对较小的语料库即可创建初步分类法。该方法已在环境保护领域使用专家定义的分类法进行了评估,并获得了令人鼓舞的结果。

著录项

  • 来源
    《Information Processing & Management》 |2010年第1期|44-57|共14页
  • 作者单位

    Knowledge Management Research Centre, Department of Industrial and Systems Engineering, The Hong Kong Polytechnic University, Hung Hum, Kowloon, Hong Kong;

    Knowledge Management Research Centre, Department of Industrial and Systems Engineering, The Hong Kong Polytechnic University, Hung Hum, Kowloon, Hong Kong;

    Knowledge Management Research Centre, Department of Industrial and Systems Engineering, The Hong Kong Polytechnic University, Hung Hum, Kowloon, Hong Kong;

    Knowledge Management Research Centre, Department of Industrial and Systems Engineering, The Hong Kong Polytechnic University, Hung Hum, Kowloon, Hong Kong;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    collaborative tagging; folksonomy; natural language processing; knowledge capture; semantic web;

    机译:协作标记民间疗法自然语言处理;知识获取;语义网;
  • 入库时间 2022-08-17 23:20:19

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