Multi-scale color texture image segmentation method combined with MRF (Markov Random Field) and neural network
A neural network and texture image technology, applied in the field of image processing, can solve problems such as the inability to accurately describe the distribution characteristics of the feature field, and the difficulty in estimating the parameters of complex probability models, achieving good segmentation results and simple modeling methods
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[0029] Concrete realization process of the present invention is as follows:
[0030] Step 1: Input the image to be segmented, and extract the R, G, and B values of each pixel at a given scale s and the size of the pixel as w s ×w s In the neighborhood of (w s Neighborhood window size) The spectral mean and standard deviation of the three bands of R, G, and B form a feature vector, and its specific execution process is as follows:
[0031] (1a) According to the given scale s, determine the neighborhood size as w s ×w s ;
[0032] (1b) Calculate the spectral mean and standard deviation of the R, G, and B bands in the neighborhood pixel by pixel of the image to be segmented, and the mean value is:
[0033]
[0034] The standard deviation is:
[0035]
[0036] Among them, v ∈ {r, g, b} represents a band of the texture image, ij represents the current pixel position, and w is the neighborhood window diameter;
[0037] (1c) For each pixel position (i, j) of the image,...
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