Real image denoising method based on multi-scale selection feedback network
A feedback network and real image technology, applied in the field of computer vision and image processing, can solve the problems of reducing excessive dependence on clean and high-quality training data, high complexity of denoising models, and robustness of noise changes, achieving superior denoising performance, The effect of low model complexity and reduced dependence on training data
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[0021] The present invention will be further described below with reference to the accompanying drawings and specific embodiments.
[0022] The embodiment of the present invention proposes a real image denoising method based on a multi-scale selection feedback network, which mainly includes steps S1-S5:
[0023] S1. Construct a multi-scale selection block (MSB) for extracting multiple receptive field scale features.
[0024] figure 2 It is a schematic diagram of a multi-scale selection module according to an embodiment of the present invention. like figure 2 As shown, the shown multi-scale selection module (MSB) includes a feature extraction unit 10, a feature compression unit 20, a feature importance probability assignment unit 30, a feature calibration unit 40 and a fusion output unit 50, which are sequentially connected from the input end to the output end. exist figure 2 In the illustrated exemplary network, the feature extraction unit 10 uses three parallel convolu...
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