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Logo Detection and Recognition Based on Classification

机译:基于分类的徽标检测与识别

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Online product frauds in the booming e-commerce market have become a major concern for market surveillants and commercial companies. The logo detection plays a crucial role in preventing the increasing online counterfeit trading attempts. In this paper, a novel method based on Random Forest classification with multi-type features is presented to detect the logo regions on arbitrary images and the detected logo regions are further recognized using the visual words with spatial correlated information. Extensive experiments have been conducted on realistic and noise images with different logos. The results show that the proposed method is able to detect the logo regions, and the recognition performance outperforms the well-known Viola-Jones approach for recognizing the arbitrary logos on realistic images.
机译:在蓬勃发展的电子商务市场中,在线产品欺诈已成为市场监视人员和商业公司的主要关注点。徽标检测在防止在线伪造交易尝试增加方面起着至关重要的作用。本文提出了一种基于随机森林分类的​​多类型特征检测方法,该方法可以检测任意图像上的徽标区域,并利用具有空间相关信息的视觉词对识别出的徽标区域进行识别。已经对具有不同徽标的逼真的图像和噪点图像进行了广泛的实验。结果表明,该方法能够检测出徽标区域,并且在识别真实图像上的任意徽标方面,其识别性能优于著名的Viola-Jones方法。

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