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IMAGE SEGMENTATION AND OBJECT DETECTION USING FULLY CONVOLUTIONAL NEURAL NETWORK

机译:利用全卷积神经网络进行图像分割和对象检测

摘要

This disclosure relates to digital image segmentation, region of interest identification, and object recognition. This disclosure describes a method, a system, for image segmentation based on fully convolutional neural network including an expansion neural network and contraction neural network. The various convolutional and deconvolution layers of the neural networks are architected to include a coarse-to-fine residual learning module and learning paths, as well as a dense convolution module to extract auto context features and to facilitate fast, efficient, and accurate training of the neural networks capable of producing prediction masks of regions of interest. While the disclosed method and system are applicable for general image segmentation and object detection/identification, they are particularly suitable for organ, tissue, and lesion segmentation and detection in medical images.
机译:本公开涉及数字图像分割,关注区域识别和对象识别。本公开描述了一种基于包括扩展神经网络和收缩神经网络的全卷积神经网络的图像分割方法,系统。神经网络的各种卷积和反卷积层的结构均包括从粗到细的残差学习模块和学习路径,以及密集的卷积模块,以提取自动上下文特征并促进快速,有效和准确的训练能够产生感兴趣区域的预测蒙版的神经网络。尽管所公开的方法和系统适用于一般图像分割和对象检测/识别,但是它们特别适用于医学图像中的器官,组织和病变的分割和检测。

著录项

  • 公开/公告号US2020058126A1

    专利类型

  • 公开/公告日2020-02-20

    原文格式PDF

  • 申请/专利权人 12 SIGMA TECHNOLOGIES;

    申请/专利号US201916380670

  • 申请日2019-04-10

  • 分类号G06T7/11;G06K9/62;G16H30/20;G06N3/08;

  • 国家 US

  • 入库时间 2022-08-21 11:22:23

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