Hyperspectral image classification method and system based on stack width learning
A hyperspectral image and classification method technology, applied in the field of remote sensing impact processing and analysis, can solve the problems of difficulty in learning effective classification features, high sample complexity, etc., and achieve the effect of small sample complexity
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[0065] The technical solutions and effects of the present invention will be described in further detail below with reference to the accompanying drawings.
[0066] refer to figure 1 , the implementation steps of the present invention are as follows:
[0067] 1) Input a hyperspectral image, and normalize the image so that its range is within [0, 1].
[0068] Order I tr ={I 1 , I 2 ,...,I N} is a training set consisting of N pixels, where I i ∈R d (i=1,2,...,N) is the i-th training sample, and they belong to class C; the image is normalized, and the data values are normalized to [0, 1] by the following steps:
[0069]
[0070] Among them, M x =max(I(:)),M n =min(I(:)) are the maximum and minimum values of pixel values on the input image, respectively, and is the pixel I with coordinates (i,j) ij B bands, is the pixel with coordinates (i, j) on the normalized hyperspectral image B bands.
[0071] 2) Use DB5 wavelet to decompose each pixel after norma...
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