Magnetic tile surface defect feature extraction and defect classification method based on machine vision
A feature extraction and defect classification technology, applied in optical testing flaws/defects, instruments, computer parts, etc., can solve the problems of large workload, low efficiency and high missed detection rate for manual visual inspection
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[0079] The present invention will be further described below in conjunction with specific drawings and embodiments.
[0080] like figure 1 Shown is the algorithm flow chart of the present invention.
[0081] Step 1: Construct a Gabor filter bank suitable for feature extraction of magnetic tile surface defects, which is a total of 40 Gabor wavelet filter banks in 5 scales and 8 directions, and use the obtained wavelet filter bank to filter the original image.
[0082] Step 2: Extract the mean and variance of 40 filtered images respectively to obtain an 80-dimensional feature vector.
[0083] Step 3: Use PCA (Principal Component Analysis) and ICA (Independent Component Analysis) to reduce the dimension of the feature vector from 80 dimensions to 20 dimensions.
[0084] Step 4: Perform normalized preprocessing on the training sample and the sample data to be tested, and the original data is normalized to [0, 1].
[0085] Step 5: Use the Libsvm toolbox to realize the classifica...
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