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Interactive Visual Object Search through Mutual Information Maximization

机译:通过互信息最大化实现交互式视觉对象搜索

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Searching for small objects (e.g., logos) in images is a critical yet challenging problem. It becomes more difficult when target objects differ significantly from the query object due to changes in scale, viewpoint or style, not to mention partial occlusion or cluttered backgrounds. With the goal to retrieve and accurately locate the small object in the images, we formulate the object search as the problem of finding subimages with the largest mutual information toward the query object. Each image is characterized by a collection of local features. Instead of only using the query object for matching, we propose a discriminative matching using both positive and negative queries to obtain the mutual information score. The user can verify the retrieved subimages and improve the search results incrementally. Our experiments on a challenging logo database of 10,000 images highlight the effectiveness of this approach.
机译:在图像中搜索小物体(例如徽标)是一个关键但具有挑战性的问题。当目标对象由于比例,视点或样式的变化而与查询对象有显着差异时,就更难了,更不用说部分遮挡或背景混乱了。为了检索并准确定位图像中的小对象,我们将对象搜索公式化为查找对查询对象具有最大互信息的子图像的问题。每个图像都具有一系列局部特征。我们不仅使用查询对象进行匹配,还提出了使用肯定查询和否定查询的判别匹配,以获取相互信息得分。用户可以验证检索到的子图像并逐步改善搜索结果。我们在具有挑战性的10,000张图片的徽标数据库中进行的实验凸显了这种方法的有效性。

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