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Discovering Thematic Objects in Image Collections and Videos

机译:在图像收藏和视频中发现主题对象

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Given a collection of images or a short video sequence, we define a thematic object as the key object that frequently appears and is the representative of the visual contents. Successful discovery of the thematic object is helpful for object search and tagging, video summarization and understanding, etc. However, this task is challenging because 1) there lacks a priori knowledge of the thematic objects, such as their shapes, scales, locations, and times of re-occurrences, and 2) the thematic object of interest can be under severe variations in appearances due to viewpoint and lighting condition changes, scale variations, etc. Instead of using a top–down generative model to discover thematic visual patterns, we propose a novel bottom–up approach to gradually prune uncommon local visual primitives and recover the thematic objects. A multilayer candidate pruning procedure is designed to accelerate the image data mining process. Our solution can efficiently locate thematic objects of various sizes and can tolerate large appearance variations of the same thematic object. Experiments on challenging image and video data sets and comparisons with existing methods validate the effectiveness of our method.
机译:给定图像或短视频序列的集合,我们将主题对象定义为经常出现的关键对象,它是视觉内容的代表。成功发现主题对象有助于对象搜索和标记,视频摘要和理解等。但是,此任务具有挑战性,因为1)缺少主题对象的先验知识,例如它们的形状,比例,位置和位置。 2)主题对象可能由于视角和光照条件的变化,比例尺变化等而在外观上出现严重变化。我们不使用自上而下的生成模型来发现主题视觉模式,而是提出一种新颖的自下而上的方法,以逐渐修剪不常见的本地视觉图元并恢复主题对象。设计了多层候选修剪程序以加速图像数据挖掘过程。我们的解决方案可以有效地定位各种大小的主题对象,并且可以容忍同一主题对象的外观变化很大。在具有挑战性的图像和视频数据集上进行的实验以及与现有方法的比较证明了我们方法的有效性。

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