Nested loop consistency-based generative adversarial network image style transfer method
A multiple cycle, consistent technology, applied in the field of image processing, can solve problems such as poor results
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[0048] The present invention will be described in detail below in conjunction with the accompanying drawings.
[0049] The invention discloses a method for generating adversarial network image style transfer based on multiple cycle consistency, and the specific implementation steps include:
[0050] (1) Residual block based generator.
[0051] (2) Discriminator based on convolutional neural network.
[0052] (3) Loss function training based on multiple cycle consistency and generative adversarial network, its structure is as follows figure 1 shown.
[0053] (4) Generating style images from photo images, or generating photo images from style images, using the deep neural network trained in (3).
[0054] The generator network in the described step (1) specifically includes:
[0055] (11) The input image of the generator passes through the convolution layer with a convolution kernel size of 7, a step size of 1, and a filter number of 32, the InstanceNorm layer, and the ReLu a...
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