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SYSTEMS AND METHODS FOR TRAINING GENERATIVE ADVERSARIAL NETWORKS AND USE OF TRAINED GENERATIVE ADVERSARIAL NETWORKS

机译:训练发电逆向网络的系统和方法以及训练的发电逆向网络的使用

摘要

The present disclosure relates to computer-implemented systems and methods for training and using generative adversarial networks to detect abnormalities in images of a human organ. In one implementation, a method is provided for training a neural network system, the method may include applying a perception branch of an object detection network to frames of a first subset of a plurality of videos to produce a first plurality of detections of abnormalities. Further, the method may include using the first plurality of detections and frames from a second subset of the plurality of videos to train a generator network to generate a plurality of artificial representations of polyps, and training an adversarial branch of the discriminator network to differentiate between artificial representations of the abnormalities and true representations of abnormalities. Additionally, the method may include retraining the perception branch based on difference indicators between the artificial representations of abnormalities and true representations of abnormalities included in frames of the second subset of plurality of videos and a second plurality of detections.
机译:本公开涉及用于训练和使用生成对抗网络以检测人体器官的图像中的异常的计算机实现的系统和方法。在一个实现中,提供了一种用于训练神经网络系统的方法,该方法可以包括将对象检测网络的感知分支应用于多个视频的第一子集的帧以产生第一组多个异常检测。此外,该方法可以包括使用来自多个视频的第二子集的第一组多个检测和帧来训练生成器网络以生成息肉的多个人工表示,以及训练鉴别器网络的对抗分支以区分异常的人工表示和异常的真实表示。另外,该方法可以包括基于包括在多个视频的第二子集的帧和第二多个检测中的异常的人工表示与异常的真实表示之间的差异指示符来重新训练感知分支。

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