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Classification with segmentation neural network for image-based content capture

机译:分类与分割神经网络进行基于图像的内容捕获

摘要

A segmentation neural network is extended to provide classification at the segment level. An input image of a document is received and processed, utilizing a segmentation neural network, to detect pixels having a signature feature type. A signature heatmap of the input image can be generated based on the pixels in the input image having the signature feature type. The segmentation neural network is extended from here to further process the signature heatmap by morphing it to include noise surrounding an object of interest. This creates a signature region that can have no defined shape or size. The morphed heatmap acts as a mask so that each signature region or object in the input image can be detected as a segment. Based on this segment-level detection, the input image is classified. The classification result can be provided as feedback to a machine learning framework to refine training.
机译:分割神经网络扩展到在段级别提供分类。利用分段神经网络接收和处理文档的输入图像以检测具有签名特征类型的像素。可以基于具有签名特征类型的输入图像中的像素生成输入图像的特征热图。分割神经网络从这里延伸以进一步处理签名热图,以包括围绕感兴趣对象的噪声。这将创建一个签名区域,该区域可以具有明确的形状或大小。变形热图充当掩模,使得输入图像中的每个签名区域或物体可以被检测为段。基于该段级别检测,输入图像被分类。分类结果可以作为反馈给机器学习框架来改进培训。

著录项

  • 公开/公告号US10977524B2

    专利类型

  • 公开/公告日2021-04-13

    原文格式PDF

  • 申请/专利权人 OPEN TEXT SA ULC;

    申请/专利号US201916381962

  • 发明设计人 SREELATHA REDDY SAMALA;

    申请日2019-04-11

  • 分类号G06K9;G06K9/62;G06T5/20;G06T7/11;

  • 国家 US

  • 入库时间 2022-08-24 18:10:56

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