Image super-resolution reconstruction method based on non-local dictionary learning and double regularization
A super-resolution reconstruction, non-local dictionary technology, applied in the field of image processing, can solve the problems of distortion, image artifacts, ignoring the prior knowledge of the super-low-resolution image, etc., to improve the quality, improve the accuracy, maintain the edge and The effect of texture detail information
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[0023] Refer to attached figure 1 , concrete steps of the present invention include:
[0024] Step 1. To the initial high-resolution image Carry out adaptive clustering dictionary training to get R cluster centers C center ={C i ,i=1,2,...,R}, the initial expected dictionary set D 0 and the initial set of residual dictionaries d 0 .
[0025] 1a) Extract the initial high-resolution image The high-frequency features of , get the high-frequency feature map G;
[0026] 1b) respectively in the initial high-resolution image Take a 7×7 block on the high-frequency feature image G, and the initial high-resolution image All the image blocks obtained above are arranged sequentially in the form of column vectors to form a set of image blocks Arrange all the feature blocks acquired on the high-frequency feature image G in the form of column vectors to form a set of feature blocks
[0027] 1c) Use K-means clustering method to set feature blocks Perform clustering to get R...
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