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首页> 外文期刊>International journal of information retrieval research >Information Retrieval Model using Uncertain Confidence's Network
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Information Retrieval Model using Uncertain Confidence's Network

机译:使用不确定置信网络的信息检索模型

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摘要

This paper proposes a new relevance feedback approach to collaborative information retrieval based on a confidence's network, which performs propagation relevance between annotations terms. The main contribution of our approach is to extract relevant terms to reformulate the initial user query considering the annotations as an information source. The proposed model introduces the concept of necessity that allows determining the terms that have strong association relationships. The authors estimated the association relationship to a measure of a confidence. Another contribution consists on determining the relevant annotations for a given evidence source. Since the user is over whelmed by a variety of contradictory annotations on even one which are far from the original subject, the authors' model proceed filtering these annotations to determine the relevant one and then it classify them by grouping those related semantically. The experimental study conducted on different queries gives promoters results. They show very encouraging results that could reach an improvement rate.
机译:本文提出了一种新的基于置信度网络的协作反馈信息检索方法,该方法在注解词之间进行传播相关。我们的方法的主要贡献是提取了相关术语,以将注释作为信息源来重新构造初始用户查询。提出的模型引入了必要性的概念,该概念允许确定具有强大关联关系的术语。作者将联想关系估计为一种置信度。另一个贡献是确定给定证据源的相关注释。由于用户对甚至远离原始主题的各种相互矛盾的注释感到不知所措,因此作者的模型继续对这些注释进行过滤以确定相关注释,然后通过对语义上相关的分组进行分类。对不同查询进行的实验研究给出了启动子结果。他们显示出令人鼓舞的结果,可以达到改善的速度。

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