首页> 外文会议>Proceedings of the 54th ASIS annual meeting(ASIS'91) >COMPUTER AND HUMAN UNDERSTANDING IN INTELLIGENT RETRIEVAL ASSISTANCE
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COMPUTER AND HUMAN UNDERSTANDING IN INTELLIGENT RETRIEVAL ASSISTANCE

机译:智能检索协助中的计算机和人类理解

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摘要

The senses in which computers and humans may be said to "understand" themselves and each other in the environment of computer systems for document retrieval are discussed. While the extent to which computers understand is still at a rather low level, many recent attempts at retrieval system performance can be seen to involve an attempt to achieve greater understanding. Three paradigms of retrieval methodology - deep semantic, statistical, and "smart Boolean" -are contrasted for their approaches from a knowledge-based perspective. A detailed summary of one approach in the smart Boolean framework - the CONIT intermediary retrieval assistance system - is given with respect to its attempts at providing understanding to the computer and the human. It is shown how CONIT incorporates in its workings knowledge of the retrieval systems and their databases, the user's problem, effective search heuristics, the dynamics of the search itself, the effectiveness of search results, and search strategy modification techniques. Particular attention is focussed on newly designed techniques for estimating precision, for ranking documents by estimated relevance, and for search strategy modification based on user'relevance feedback.
机译:讨论了可以说计算机和人在计算机系统环境中“了解”自己和彼此的感觉,以进行文档检索。尽管计算机的理解程度仍处于较低水平,但是可以看到,最近在检索系统性能方面的许多尝试都涉及获得更大理解的尝试。从基于知识的角度来看,检索方法的三种范式-深度语义,统计和“智能布尔”-进行了对比。关于智能布尔框架中的一种方法-CONIT中间检索辅助系统-的详细摘要,针对其试图向计算机和人类提供理解的尝试进行了介绍。它显示了CONIT如何将检索系统及其数据库的工作知识,用户问题,有效的搜索启发式方法,搜索本身的动态性,搜索结果的有效性以及搜索策略修改技术纳入其工作知识中。特别关注的是新设计的技术,这些技术用于估计精度,通过估计的相关性对文档进行排名以及基于用户相关性反馈的搜索策略修改。

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