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Erasing Scene Text with Weak Supervision

机译:用弱监督擦除场景文本

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摘要

Scene text erasing is a task of removing text from natural scene images, which has been gaining attention in recent years. The main motivation is to conceal private information such as license plate numbers, and house nameplates that can appear in images. In this work, we propose a method for scene text erasing that approaches the problem as a general inpainting task. In contrast to previous methods, which require pairs of original images containing text and images from which the text has been removed, our method does not need corresponding image pairs for training. We use a separately trained scene text detector and an inpainting network. The scene text detector predicts segmentation maps of text instances which are then used as masks for the inpainting network. The network for inpainting, trained on a large-scale image dataset, fills in masked out regions in an input image and generates a final image in which the original text is no longer present. The results show that our method is able to successfully remove text and fill in the created holes to produce natural-looking images.
机译:场景文本擦除是从自然场景图像中移除文本的任务,近年来一直在关注。主要动机是隐藏私人信息,如牌照号码,以及可以在图像中出现的房屋铭牌。在这项工作中,我们提出了一种用于场景文本擦除的方法,将问题视为一般的染色任务。与先前的方法相比,需要剩余的原始图像的原始图像以及从中删除文本的图像,我们的方法不需要相应的图像对进行培训。我们使用单独培训的场景文本检测器和染色网络。场景文本检测器预测文本实例的分割映射,然后将其用作染色网络的掩码。用于在大规模图像数据集上训练的网络培训网络,填充输入图像中的蒙版OUT区域,并生成最终图像,其中原始文本不再存在。结果表明,我们的方法能够成功地删除文本并填写创建的孔以产生自然的图像。

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