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Application of Natural Language Processing and Evidential Analysis to Web-Based Intelligence Information Acquisition

机译:自然语言处理和证据分析在基于Web的情报信息获取中的应用

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摘要

The quality of decisions made in business and government relates directly to the quality of the information used to formulate the decision. This information may be retrieved from an organization's knowledge base (Intranet) or from the World Wide Web. Intelligence services Intranet held information can be efficiently manipulated by technologies based upon either semantics such as ontologies, or statistics such as meaning-based computing. These technologies require complex processing of large amount of textual information. However, they cannot currently be effectively applied to Web-based search due to various obstacles, such as lack of semantic tagging. A new approach proposed in this paper supports Web-based search for intelligence information utilizing evidence-based natural language processing (NLP). This approach combines traditional NLP methods for filtering of Web-search results, Grounded Theory to test the completeness of the evidence, and Evidential Analysis to test the quality of gathered information. The enriched information derived from the Web-search will be transferred to the intelligence services knowledge base for handling by an effective Intranet search system thus increasing substantially the information for intelligence analysis. The paper will show that the quality of retrieved information is significantly enhanced by the discovery of previously unknown facts derived from known facts.
机译:商业和政府决策的质量直接与用于制定决策的信息的质量有关。可以从组织的知识库(Intranet)或万维网中检索此信息。情报服务Intranet持有的信息可以通过基于诸如本体之类的语义或诸如基于含义的计算之类的统计数据的技术来有效地操纵。这些技术需要大量文本信息的复杂处理。但是,由于各种障碍(例如缺少语义标记),它们当前不能有效地应用于基于Web的搜索。本文提出的一种新方法支持使用基于证据的自然语言处理(NLP)的基于Web的情报信息搜索。这种方法结合了用于过滤Web搜索结果的传统NLP方法,用于检验证据完整性的扎根理论和用于检验所收集信息质量的证据分析。从Web搜索获得的丰富信息将被转移到情报服务知识库,以通过有效的Intranet搜索系统进行处理,从而大大增加了情报分析信息。该论文将表明,通过发现从已知事实得出的先前未知事实,可以显着提高检索到的信息的质量。

著录项

  • 作者

    Danilova, N.; Stupples, D.;

  • 作者单位
  • 年度 2012
  • 总页数
  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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