Remote sensing image change detection method based on dense connection and geometric structure constraint
A geometric structure and change detection technology, which is applied in neural learning methods, neural architecture, character and pattern recognition, etc., can solve the problems of lack of abstract description of geometric structure information and inability to reuse across layers
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[0037] In order to better understand the technical solutions of the present invention, the technical solutions of the present invention will be further described below with reference to the accompanying drawings and embodiments.
[0038] The invention adopts the symmetrical coding-decoding DCNN network structure, so that the image change features of the previous and later stages are differentiated and upsampled layer by layer, and the problem of two-phase remote sensing image change detection is solved through the dense connection reuse of each group of convolution features and the constraint of multi-branch geometric structure. This method makes use of the reusable feature of the same group of changing features to densely connect the changing differential features of different convolutional layers in the group. At the same time, taking into account the geometric structure constraints of the image during upsampling, two weights are shared. The geometric structure (image edge) pr...
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