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Bilateral Convolutional Activations Encoded with Fisher Vectors for Scene Character Recognition

机译:Fisher向量编码的双边卷积激活用于场景字符识别

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摘要

A rich and robust representation for scene characters plays a significant role in automatically understanding the text in images. In this letter, we focus on the issue of feature representation, and propose a novel encoding method named bilateral convolutional activations encoded with Fisher vectors (BCA-FV) for scene character recognition. Concretely, we first extract convolutional activation descriptors from convolutional maps and then build a bilateral convolutional activation map (BCAM) to capture the relationship between the convolutional activation response and the spatial structure information. Finally, in order to obtain the global feature representation, the BCAM is injected into FV to encode convolutional activation descriptors. Hence, the BCA-FV can effectively integrate the prominent features and spatial structure information for character representation. We verify our method on two widely used databases (ICDAR2003 and Chars74K), and the experimental results demonstrate that our method achieves better results than the state-of-the-art methods. In addition, we further validate the proposed BCA-FV on the “Pan+ChiPhoto” database for Chinese scene character recognition, and the experimental results show the good generalization ability of the proposed BCA-FV.
机译:场景角色的丰富而强大的表示在自动理解图像中的文本方面起着重要作用。在这封信中,我们着重于特征表示的问题,并提出了一种新颖的编码方法,称为用费舍尔向量(BCA-FV)编码的双边卷积激活来进行场景字符识别。具体而言,我们首先从卷积图提取卷积激活描述符,然后构建双边卷积激活图(BCAM),以捕获卷积激活响应与空间结构信息之间的关系。最后,为了获得全局特征表示,将BCAM注入FV以编码卷积激活描述符。因此,BCA-FV可以有效地整合突出特征和空间结构信息以用于字符表示。我们在两个广泛使用的数据库(ICDAR2003和Chars74K)上验证了我们的方法,实验结果表明,与最新方法相比,我们的方法可获得更好的结果。另外,我们在“ Pan + ChiPhoto”数据库上进一步验证了所提出的BCA-FV用于中文场景字符识别,实验结果表明所提出的BCA-FV具有良好的泛化能力。

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