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Real-Time Single-Shot Brand Logo Recognition

机译:实时单发品牌徽标识别

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The amount of data produced every day on the internet increases every day and with the increasing popularity of the social networks the number of published photos are huge, and those pictures contain several implicit or explicit brand logos. Detecting this logos in natural images can provide information about how widespread is a brand, discover unwanted copyright distribution, analyze marketing campaigns, etc. In this paper, we propose a real-time brand logo recognition system that outperforms all other state-of-the-art in two different datasets. Our approach is based on the Single Shot MultiBox Detector (SSD), we explore this tool in a different domain and also experiment the impact of training with pretrained weights and the impact of warp transformations in the input images. We conducted our experiments in two datasets, the FlickrLogos-32 (FL32) and the Logos-32Plus (L32plus), which is an extension of the training set of the FL32. On the FL32, we outperform the state-of-the-art by 2.5% the F-score and by 7.4% the recall. For the L32plus, we surpass the state-of-the-art by 1.2% the F-score and by 3.8% the recall.
机译:每天在互联网上产生的数据量每天都在增加,并且随着社交网络的日益普及,已发布的照片​​数量巨大,并且这些照片包含多个隐式或显式品牌徽标。在自然图像中检测到此徽标可以提供有关品牌的广泛程度,发现不必要的版权分布,分析营销活动等信息。在本文中,我们提出了一种实时品牌徽标识别系统,该系统优于其他所有状态。 -art在两个不同的数据集中。我们的方法基于Single Shot MultiBox Detector(SSD),我们在不同的领域中探索了该工具,还尝试了使用预训练权重进行训练的影响以及输入图像中变形的影响。我们在两个数据集FlickrLogos-32(FL32)和Logos-32Plus(L32plus)中进行了实验,这是FL32训练集的扩展。在FL32上,我们的F得分要比最新技术好2.5%,召回率要好7.4%。对于L32plus,我们将最新技术的F得分提高了1.2%,召回率提高了3.8%。

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