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CONVOLUTIONAL BLIND-SPOT ARCHITECTURES AND BAYESIAN IMAGE RESTORATION

机译:卷积盲点架构和贝叶斯图像恢复

摘要

A neural network architecture is disclosed for restoring noisy data. The neural network is a blind-spot network that can be trained according to a self-supervised framework. In an embodiment, the blind-spot network includes a plurality of network branches. Each network branch processes a version of the input data using one or more layers associated with kernels that have a receptive field that extends in a particular half-plane relative to the output value. In one embodiment, the versions of the input data are offset in a particular direction and the convolution kernels are rotated to correspond to the particular direction of the associated network branch. In another embodiment, the versions of the input data are rotated and the convolution kernel is the same for each network branch. The outputs of the network branches are composited to de-noise the image. In some embodiments, Bayesian filtering is performed to de-noise the input data.
机译:公开了一种用于恢复噪声数据的神经网络架构。神经网络是一个盲点网络,可以根据自我监督的框架进行训练。在一个实施例中,盲区网络包括多个网络分支。每个网络分支使用一个或多个与内核相关联的层来处理输入数据的版本,这些内核具有一个相对于输出值在特定半平面内延伸的接收场。在一个实施例中,输入数据的版本在特定方向上偏移,并且卷积内核被旋转以对应于相关联的网络分支的特定方向。在另一个实施例中,旋转输入数据的版本,并且对于每个网络分支,卷积内核是相同的。网络分支的输出被合成以对图像进行降噪。在一些实施例中,执行贝叶斯滤波以对输入数据进行消噪。

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