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A Fine-Grained Approach to Scene Text Script Identification

机译:一种精细的场景文本脚本识别方法

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This paper focuses on the problem of script identification in unconstrained scenarios. Script identification is an important prerequisite to recognition, and an indispensable condition for automatic text understanding systems designed for multi-language environments. Although widely studied for document images and handwritten documents, it remains an almost unexplored territory for scene text images. We detail a novel method for script identification in natural images that combines convolutional features and the Naive-Bayes Nearest Neighbor classifier. The proposed framework efficiently exploits the discriminative power of small stroke-parts, in a fine-grained classification framework. In addition, we propose a new public benchmark dataset for the evaluation of joint text detection and script identification in natural scenes. Experiments done in this new dataset demonstrate that the proposed method yields state of the art results, while it generalizes well to different datasets and variable number of scripts. The evidence provided shows that multi-lingual scene text recognition in the wild is a viable proposition. Source code of the proposed method is made available online.
机译:本文着重讨论无约束场景中的脚本识别问题。脚本识别是识别的重要先决条件,对于为多语言环境设计的自动文本理解系统来说,这是必不可少的条件。尽管对文档图像和手写文档进行了广泛的研究,但对于场景文本图像而言,它仍然是一个尚未开发的领域。我们详细介绍了一种结合了卷积特征和朴素贝叶斯最近邻分类器的自然图像中脚本识别的新颖方法。所提出的框架在细粒度的分类框架中有效地利用了小笔触部分的判别能力。此外,我们提出了一个新的公共基准数据集,用于评估自然场景中的联合文本检测和脚本识别。在这个新的数据集中进行的实验表明,该方法可产生最先进的结果,同时可以很好地推广到不同的数据集和可变数量的脚本。提供的证据表明,在野外多语言场景文本识别是一个可行的主张。所提出方法的源代码可在线获得。

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