SAR image target recognition method based on sparse representation
A sparse representation and automatic target recognition technology, applied in the field of image processing, can solve the problems of low recognition accuracy and increased computational complexity, and achieve the effect of improving the recognition rate
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[0026] refer to figure 1 , the specific implementation steps of the present invention are as follows:
[0027] Step 1, extract the scale-invariant feature SIFT of the SAR image in the training sample set and the test sample set.
[0028] Input the training sample set and test sample set in the measured SAR ground stationary target database MSTAR provided by the US DARPA / AFLMSTAR project team, for each sample in the two sample sets, uniformly sample with a step size of 6 pixels, and extract each sample The d-dimensional scale-invariant feature SIFT in the 16×16 sub-block around the point is obtained to obtain the SIFT feature matrix X=[x 1 ,x 2 ,...,x i ,...,x N ]∈R d×N , where R represents the set of real numbers, x i Indicates the i-th SIFT feature, i=1,2,...,N, N indicates the number of features in the sample, and d indicates the SIFT feature dimension d=128.
[0029] Step 2: Randomly extract E=8000 features from the scale-invariant feature SIFT obtained from the trai...
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