ReLU convolutional neutral network-based image denoising method

A technology of convolutional neural network and neural network model, which is applied in the field of image denoising based on ReLU convolutional neural network, which can solve the problems of high time and space complexity, poor denoising effect, and inaccuracy. , to enhance the learning ability, avoid gradient explosion, and achieve the effect of good denoising effect
CN106204468AActive Publication Date: 2016-12-07SHENZHEN INST OF FUTURE MEDIA TECH +1

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
SHENZHEN INST OF FUTURE MEDIA TECH
Publication Date
2016-12-07

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Abstract

The invention discloses an ReLU convolutional neutral network-based image denoising method. The method comprises the following steps of building an ReLU convolutional neutral network model, wherein the ReLU convolutional neutral network model comprises a plurality of convolutional layers and active layers after the convolutional layers, wherein the active layers are ReLU functions; selecting a training set, and setting training parameters of the ReLU convolutional neutral network model; training the ReLU convolutional neutral network model by taking a minimized loss function as a target according to the ReLU convolutional neutral network model and the training parameters of the ReLU convolutional neutral network model to form an image denoising neural network model; and inputting a to-be-processed image to the image denoising neural network model, and outputting a denoised image. According to the ReLU convolutional neutral network-based image denoising method disclosed by the invention, the learning ability of the neural network is greatly enhanced, accurate mapping from noisy images to clean images is established, and real-time denoising can be realized.
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Description

technical field

[0001] The invention relates to the fields of computer vision and digital image processing, in particular to an image denoising method based on a ReLU convolutional neural network. Background technique

[0002] Image denoising is a classic and fundamental problem in computer vision and image processing. It is a necessary preprocessing process to solve many related problems. Its purpose is to restore a potential clean image x from a noisy image y. The process can be expressed as: y=x+n, where n is usually considered as Additive White Gaussian (AWG), which is a typical ill-conditioned linear inverse problem. In order to solve this problem, many early methods are solved by local filtering, such as Gaussian filtering, median filtering, bilateral filtering, etc. These local filtering methods neither filter in the global scope nor consider the relationship between natural image blocks and The connection between blocks, so the obtained denoising effect is not satis...

Claims

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