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A coarse-to-fine logo recognition method in video streams

机译:视频流中从粗到细的徽标识别方法

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Visual logo recognition is significant for many applications, such as enterprise identification, entertainment advertising, vehicle recognition, road sign reading, trademark protection, and much more. In this paper, we propose a coarse-to-fine framework to recognize visual logos from video streams. To reduce the instability of the initial template selection problem, we introduce the “iconic template” selection strategy to select effective template set for visual logos. At the coarse stage, we adopt DOT(Dominant Orientation Templates) matching with a low threshold to find logo candidates. At the fine stage, we transform the multiple template matching problem into a pairwise binary classification problem. The candidates collected from the template matching process combined with the target template are send to a pairwise binary classifier to predict whether the candidate and the template belong to the same logo or not. The pairwise binary classifier is trained in an offline manner and with an unsupervised training data collection strategy. The proposed method can flexibly adapt to different template matching approaches and various matching thresholds. The false-alarm rate is greatly reduced through the second stage. Experimental results show the feasibility and effectiveness of the proposed approach.
机译:视觉徽标识别在许多应用中都很重要,例如企业识别,娱乐广告,车辆识别,道路标志阅读,商标保护等等。在本文中,我们提出了一种从粗到细的框架来识别视频流中的视觉徽标。为了减少初始模板选择问题的不稳定性,我们引入了“图标模板”选择策略来为视觉徽标选择有效的模板集。在粗略阶段,我们采用低阈值匹配的DOT(优势方向模板)来查找徽标候选者。在优良阶段,我们将多个模板匹配问题转换为成对的二进制分类问题。从模板匹配过程中收集的与目标模板组合的候选者将被发送到成对的二进制分类器,以预测候选者和模板是否属于同一徽标。成对二进制分类器以离线方式和无监督的训练数据收集策略进行训练。所提出的方法可以灵活地适应不同的模板匹配方法和各种匹配阈值。通过第二阶段,大大降低了误报警率。实验结果表明了该方法的可行性和有效性。

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