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Improving distance based image retrieval using non-dominated sorting genetic algorithm

机译:使用非支配排序遗传算法改进基于距离的图像检索

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摘要

Relevance feedback has been adopted as a standard in Content Based Image Retrieval (CBIR). One major difficulty that algorithms have to face is to achieve and adequate balance between the exploitation of already known areas of interest and the exploration of the feature space to find other relevant areas. In this paper, we evaluate different ways to combine two existing relevance feedback methods that place unequal emphasis on exploration and exploitation, in the context of distance-based methods. The hybrid approach proposed has been evaluated by using three image databases of various sizes that use different descriptors. Results show that the hybrid technique performs better than any of the original methods, highlighting the benefits of combining exploitation and exploration in relevance feedback tasks.
机译:相关性反馈已被用作基于内容的图像检索(CBIR)中的标准。算法必须面对的一个主要困难是,在利用已知的感兴趣区域和探索特征空间以找到其他相关区域之间取得平衡。在本文中,我们评估了在基于距离的方法的背景下,将两种现有的相关反馈方法组合在一起的不同方法,这些方法对勘探和开发的重视程度不同。已通过使用使用不同描述符的各种大小的三个图像数据库对提出的混合方法进行了评估。结果表明,混合技术的性能比任何原始方法都要好,突出了在相关反馈任务中结合开发和探索的好处。

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