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Mobile image retrieval using multi-photos as query

机译:使用多张照片作为查询的移动图像检索

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In this paper, we propose a novel image retrieval scheme, where multi relevant images are input as queries to improve the retrieval performance. We exploit sufficient information provided by multi query images to reduce distractor features, quantization loss and learn visual synonyms. During learning synonyms, consisting of visual synonyms detection and visual synonyms expansion, some identical and unique details semantically important to the query are captured. We represent images using a set of visual synonyms, each of which comprises several visual word paths, quantizing a descriptor from the root to a leaf of a hierarchical vocabulary tree. Spatial layout is also introduced for geometry constraint as an information source independent from descriptor space. Hierarchical visual word path and synonyms learning provide multiple choices for feature matching. Finally we evaluate our approach on two image datasets, where images from 5K Oxford building dataset are used as query; a 227K image dataset act as distractor.
机译:在本文中,我们提出了一种新颖的图像检索方案,其中多个相关图像被输入为提高检索性能的查询。我们利用多查询图像提供的充分信息,以减少干扰的特征,量化丢失和学习Visual同义词。在学习同义词期间,由Visual同义词的检测和Visual同义词扩展组成,捕获对查询的一些相同和唯一的详细信息被捕获。我们代表使用一组Visual同义词的图像,每个同义词包括多个视觉字路径,从根到分层词汇树的叶子中量化描述符。还将空间布局引入几何约束作为与描述符空间无关的信息源。分层视觉单词路径和同义词学习为特征匹配提供了多种选择。最后,我们在两个图像数据集中评估我们的方法,其中5k牛津大楼数据集的图像用作查询;一个227K图像数据集充当令人厌忌。

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