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Generalized nonlinear relevance feedback for interactive content-based retrieval and organization

机译:基于交互式基于内容的检索和组织的广义非线性相关性反馈

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摘要

In this paper, a novel relevance feedback algorithm is proposed for improving the performance of interactive content-based retrieval systems. The algorithm recursively estimates the similarity measure, which is used for data ranking in description environments where similarity-based queries are applied, using a set of relevant/irrelevant samples feedback by the user to the system so that the adjusted response is a better approximation of the current user's information needs and preferences. In particular, using concepts of functional analysis, the similarity measure is expressed as a parametric form of known monotone increasing functional components. Then, the contribution of each functional component to the similarity measure is estimated through a recursive and efficient on-line learning algorithm so that: 1) the current user's needs and preferences, as indicated by a set of selected relevant/irrelevant samples, are satisfied as much as possible, while simultaneously 2) a minimal modification of the already estimated similarity measure is accomplished. Experimental results on a large real-life database using objective evaluation criteria, such as the precision-recall curve and the average normalized modified retrieval rank (ANMRR), indicate that the proposed scheme outperforms the compared ones. In addition, the proposed algorithm requires low computational complexity and it can be implemented in a recursive way.
机译:本文提出了一种新的关联反馈算法,以提高基于内容的交互式检索系统的性能。该算法使用用户反馈给系统的一组相关/不相关样本,来递归估计相似性度量,该度量用于描述环境中的数据排名,在描述性环境中应用了基于相似性的查询,因此调整后的响应可以更好地近似于当前用户的信息需求和偏好。特别地,使用功能分析的概念,将相似性度量表示为已知单调递增功能组件的参数形式。然后,通过递归和有效的在线学习算法估算每个功能组件对相似性度量的贡献,从而:1)满足当前用户的需求和偏好,如一组选定的相关/不相关样本所表明的那样2)对已经估算的相似性度量进行最小的修改。在大型真实生活数据库中使用客观评估标准(例如精确召回曲线和平均归一化修正检索等级(ANMRR))进行的实验结果表明,该方案优于比较方案。另外,所提出的算法需要较低的计算复杂度,并且可以以递归的方式实现。

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