Reference-free three-dimensional picture quality objective evaluation method based on machine learning
A stereoscopic image and machine learning technology, applied in stereoscopic systems, image communication, television, etc., can solve problems such as lack of stereoscopic image quality
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[0045] The present invention will be further described in detail below in conjunction with the accompanying drawings and embodiments.
[0046] A kind of no-reference stereoscopic image quality objective evaluation method based on machine learning proposed by the present invention, its overall realization block diagram is as follows figure 1 As shown, it includes the following steps:
[0047] ① Select N original undistorted stereoscopic image left view images to form a training image set, denoted as {L i,org |1≤i≤N}, where, N≥1, L i,org means {L i,org The i-th image in |1≤i≤N} represents the left-viewpoint image of the i-th original undistorted stereo image, and the symbol "{}" is a set representation symbol.
[0048] During specific implementation, the number of frames selected for the original undistorted stereoscopic image should be appropriate. If the value of N is larger, the accuracy of the visual dictionary table obtained through training is also higher, but the compu...
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