TASuRe: Text Aware Super-Resolution

Elena Filonenko, A. Filonenko, K. Jo
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Abstract

Recognition of text on low-resolution (LR) images is a challenging task. Traditional interpolation methods, as well as general super-resolution approaches, do not recover the shape of text character robustly. In this work, we propose a text-aware super- resolution neural network called TASuRe. Text awareness is interwoven in the proposed network that contains a text rectification part and text recognition auxiliary module. The training procedure is built around character shape restoration by adding a binary mask to the input image and using a specialized loss that penalties the network for missing gradients on the border of characters. Experiments on the real LR images have shown that the proposed network can deal with hard cases better than convolutional competitors.
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TASuRe:文本感知超分辨率
低分辨率图像上的文本识别是一项具有挑战性的任务。传统的插值方法和一般的超分辨率插值方法都不能很好地恢复文本字符的形状。在这项工作中,我们提出了一个文本感知的超分辨率神经网络称为TASuRe。该网络包含文本纠错模块和文本识别辅助模块。训练过程是围绕字符形状恢复建立的,通过向输入图像添加二进制掩码,并使用专门的损失来惩罚网络在字符边界上丢失的梯度。在真实LR图像上的实验表明,该网络可以比卷积网络更好地处理复杂情况。
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