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Codebook Guided Feature-Preserving for Recognition-Oriented Image Retargeting

机译:码本指导的特征保留功能,用于面向识别的图像重定向

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摘要

Traditional image resizing methods, such as uniform scaling and content-aware image retargeting, are designed to preserve the visually salient contents of an image while resizing it. In this paper, we propose a novel image resizing approach called recognition-oriented image retargeting. Its goal is to preserve the distinctive local features for recognition instead of the traditional visual saliency during resizing. Moreover, we also apply our approach to image matching and image retrieval applications to verify its performance. Meanwhile, using our approach to these applications is able to solve some of the challenging problems in their fields. In image matching application, we find that our approach shows promising preservation of local feature descriptors. In image retrieval task, extensive experiments on Oxford5K, Holidays, Paris, and Flickr100k data sets demonstrate that our approach consistently outperforms other image retargeting methods by large margins in the aspects of retrieval precision and query bits.
机译:传统的图像调整大小方法(例如统一缩放和内容感知的图像重新定向)旨在在调整图像大小时保留图像的视觉显着内容。在本文中,我们提出了一种新颖的图像调整大小方法,称为面向识别的图像重新定向。其目标是在调整大小时保留独特的本地特征以供识别,而不是传统的视觉显着性。此外,我们还将我们的方法应用于图像匹配和图像检索应用程序以验证其性能。同时,使用我们的方法来处理这些应用程序能够解决其领域中的一些难题。在图像匹配应用中,我们发现我们的方法显示出有希望的局部特征描述符的保留。在图像检索任务中,对Oxford5K,Holidays,Paris和Flickr100k数据集的大量实验表明,在检索精度和查询位方面,我们的方法始终优于其他图像重定目标方法。

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