Ordinal-based shape retrieval with relevance feedback

F. A. Cheikh, B. Cramariuc, M. Gabbouj
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Abstract

In this paper we propose to incorporate a feedback loop, into the ordinal correlation framework and apply it to shape-based image retrieval. The user's feedback on the relevance of the retrieval results is used to tune the weights of the similarity measure. Statistics from the features of both relevant and irrelevant items are used to estimate the weights. Moreover, the information accumulated from previous retrieval iterations is used in the weights estimation. A simple measure of the discrimination power is proposed and used to show that the relevance feedback increases the capability of the ordinal correlation scheme to discriminate between relevant and irrelevant objects.
基于顺序的形状检索与相关反馈
在本文中,我们提出将反馈环路纳入有序相关框架,并将其应用于基于形状的图像检索。用户对检索结果相关性的反馈用于调整相似性度量的权重。从相关和不相关项目的特征统计数据被用来估计权重。此外,在权重估计中使用了先前检索迭代中积累的信息。提出了一种简单的判别能力度量,并用于证明相关反馈提高了顺序相关方案区分相关和不相关对象的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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