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The Open Brands Dataset: Unified Brand Detection and Recognition at Scale

机译:开放品牌数据集:大规模统一品牌检测和识别

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Intellectual property protection(IPP) have received more and more attention recently due to the development of the global e-commerce platforms. brand recognition plays a significant role in IPP. Recent studies for brand recognition and detection are based on small-scale datasets that are not comprehensive enough when exploring emerging deep learning techniques. Moreover, it is challenging to evaluate the true performance of brand detection methods in realistic and open scenes. In order to tackle these problems, we first define the special issues of brand detection and recognition compared with generic object detection. Second, a novel brands benchmark called "Open Brands" is established. The dataset contains 1,437,812 images which have brands and 50,000 images without any brand. The part with brands in Open Brands contains 3,113,828 instances annotated in 3 dimensions: 4 types, 559 brands and 1216 logos. To the best of our knowledge, it is the largest dataset for brand detection and recognition with rich annotations. We provide in-depth comprehensive statistics about the dataset, validate the quality of the annotations and study how the performance of many modern models evolves with an increasing amount of training data. Third, we design a network called "Brand Net" to handle brand recognition. Brand Net gets state-of-art mAP on Open Brand compared with existing detection methods.
机译:随着全球电子商务平台的发展,知识产权保护(IPP)近来受到越来越多的关注。品牌认知度在IPP中扮演着重要角色。关于品牌识别和检测的最新研究基于小型数据集,而这些数据集在探索新兴的深度学习技术时还不够全面。此外,在现实和开放的场景中评估品牌检测方法的真实性能也是一项挑战。为了解决这些问题,我们首先定义品牌检测和识别与通用对象检测相比的特殊问题。其次,建立了一个称为“开放品牌”的新颖品牌基准。数据集包含1,437,812张具有品牌的图像和50,000张没有品牌的图像。 “开放品牌”中带有品牌的部分包含3,113,828个实例,这些实例在3个维度上进行了注释:4种类型,559个品牌和1216个徽标。据我们所知,它是具有丰富注释的最大品牌检测和识别数据集。我们提供有关数据集的深入综合统计数据,验证注释的质量,并研究随着训练数据量的增加,许多现代模型的性能如何演变。第三,我们设计了一个称为“品牌网”的网络来处理品牌识别。与现有的检测方法相比,Brand Net在Open Brand上获得了最新的mAP。

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