Polarized SAR Image Classification Method Based on Sparse Deep Stack Network
A classification method and sparse technology, applied in the field of image processing, can solve the problems of low classification accuracy, achieve the effects of high classification accuracy, overcome high time complexity, and improve classification efficiency
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[0049] The present invention will be further described below in conjunction with the accompanying drawings.
[0050] refer to figure 1 , the specific implementation steps of the present invention are as follows:
[0051] Step 1. Input a polarimetric SAR image.
[0052] Input a coherence matrix of a polarization SAR image to be classified, its size is a matrix of 3×3×N, and N represents the number of pixels in the polarization SAR image.
[0053] Step 2. Select training samples and test samples.
[0054] The real and imaginary parts of the six upper triangular elements of the coherence matrix are used as the features of the polarimetric SAR image to form a 9×N sample set.
[0055] 10% of the samples are randomly selected from the sample set as training samples, and the remaining 90% of the samples are used as test samples.
[0056] Step 3. Construct a sparse deep stack network.
[0057] The three single-layer sparse deep networks, the positional relationship of the upper l...
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