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RECOGNIZING TYPEWRITTEN AND HANDWRITTEN CHARACTERS USING END-TO-END DEEP LEARNING

机译:使用端到端的深度学习识别打字和手写字符

摘要

Disclosed herein are system, method, and computer program product embodiments for optical character recognition using end-to-end deep learning. In an embodiment, an optical character recognition system may train a neural network to identify characters of pixel images, assign index values to the characters, and recognize different formatting of the characters, such as distinguishing between handwritten and typewritten characters. The neural network may also be trained to identify groups of characters and to generate bounding boxes to group these characters. The optical character recognition system may then analyze documents to identify character information based on the pixel data and produce segmentation masks, such as a type grid segmentation mask, and one or more bounding box masks. The optical character recognition system may supply these masks as an output or may combine the masks to generate a version of the received document having optically recognized characters.
机译:本文公开了用于使用端到端深度学习的光学字符识别的系统,方法和计算机程序产品实施例。在一个实施例中,光学字符识别系统可以训练神经网络以识别像素图像的字符,为字符分配索引值,并识别字符的不同格式,例如区分手写字符和打字字符。还可训练神经网络以识别字符组并生成将这些字符分组的边界框。光学字符识别系统然后可以基于像素数据分析文档以识别字符信息,并产生分割掩码,例如类型网格分割掩码和一个或多个边界框掩码。光学字符识别系统可以提供这些掩模作为输出,或者可以组合这些掩模以生成具有光学识别字符的接收文件的版本。

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