Image deblurring method based on aggregation expansion convolutional network
A convolutional network and deblurring technology, which is applied in the field of computer digital image processing, can solve problems such as a large number of memory resources, and achieve the effects of reducing running time, saving time and memory overhead, and high efficiency
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[0056] The image deblurring method of the aggregated expansion convolutional network of the present invention, the specific steps are as follows:
[0057] (1) Construct a deep neural network;
[0058] (2), training deep neural network;
[0059] The construction deep neural network described in above-mentioned step (1), specific process is as follows:
[0060] (11), such as figure 2 As shown, to construct the generator, the specific steps are as follows:
[0061] (111), constructing the network head: the head includes a convolutional layer with a convolution kernel size of 5×5, and transforms the input 3-channel RGB image into a 64-channel feature map;
[0062] (112), constructing the middle part of the network: the middle part sequentially stacks the autoencoder modules, and there are 2 autoencoder modules in total. Each autoencoder module also includes a residual connection, adding the input and output of the autoencoder module, and the output of the autoencoder module, ...
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