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DEEP CONVOLUTIONAL NEURAL NETWORK WITH SELF-TRANSFER LEARNING

机译:深度卷积神经网络,自转学习

摘要

Systems and techniques for facilitating a deep convolutional neural network with self-transfer learning are presented. In one example, a system includes a machine learning component, a medical imaging diagnosis component and a visualization component. The machine learning component generates learned medical imaging output regarding an anatomical region based on a convolutional neural network that receives medical imaging data. The machine learning component also performs a plurality of sequential downsampling and upsampling of the medical imaging data associated with convolutional layers of the convolutional neural network. The medical imaging diagnosis component determines a classification and an associated localization for a portion of the anatomical region based on the learned medical imaging output associated with the convolutional neural network. The visualization component generates a multi-dimensional visualization associated with the classification and the localization for the portion of the anatomical region.
机译:提出了一种利用具有自转移学习的深卷积神经网络的系统和技术。在一个示例中,系统包括机器学习组件,医学成像诊断分量和可视化组件。机器学习组件基于接收医学成像数据的卷积神经网络产生关于解剖区域的学习医学成像输出。机器学习组件还执行与卷积神经网络的卷积层相关联的医学成像数据的多个顺序下采样和上采样。基于与卷积神经网络相关联的学习的医学成像输出,医学成像诊断组件确定对解剖区域的一部分的分类和相关定期。可视化组件生成与分类相关联的多维可视化和解剖区域的部分的定位。

著录项

  • 公开/公告号US2021319559A1

    专利类型

  • 公开/公告日2021-10-14

    原文格式PDF

  • 申请/专利权人 GENERAL ELECTRIC COMPANY;

    申请/专利号US202117354848

  • 发明设计人 MIN ZHANG;GOPAL BILIGERI AVINASH;

    申请日2021-06-22

  • 分类号G06T7;G06K9/62;G16H50/20;G06N3/04;

  • 国家 US

  • 入库时间 2022-08-24 21:40:23

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