Matching method of optical image and radar image based on multi-channel convolutional neural network
A convolutional neural network, optical image technology, applied in biological neural network models, neural architectures, instruments, etc., can solve problems such as inability to match accurately, and achieve the effect of fully utilizing, good feature space, and stable matching results
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[0050] Such as figure 1 As shown, the following takes the matching of two 1000×1000 images as an example to describe the following steps in detail:
[0051] In the step "preprocessing", both the optical image and the radar image are compressed to 256×256, and then steps 401 and 401-1 are performed;
[0052] In step 401, 96 times of 7×7 convolutions are performed on the optical image, and the convolution result is input to the ReLU neuron; in step 401-1, 12 times of 7×7 convolution is performed on the SAR image, and the convolution result input to the ReLU neuron; then perform steps 402 and 402-1;
[0053] In step 402, the neuron output obtained in step 401 is subjected to 2×2 mean value downsampling; in step 402-1, the neuron output obtained in step 401-1 is subjected to 2×2 mean value downsampling; Then execute steps 403 and 403-1;
[0054]In step 403, 128 5×5 convolutions are performed on the optical image, and the convolution result is input to the ReLU neuron; in step 4...
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