Industrial product irregular defect detection method based on deep learning
A deep learning and defect detection technology, applied in image data processing, instruments, computing and other directions, can solve the problems of inability to meet the needs of the industrial product testing market, poor product testing results, and high computing power requirements, to improve network recognition performance, The effect of solving irregular defects and expanding data sets
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[0126] In order to overcome the above-mentioned shortcomings of the prior art, the present invention provides a method for detecting irregular defects of industrial products based on deep learning for some irregular defect problems. First, image enhancement processing is performed on the collected sample images to make the defects more obvious; then, based on the convolutional neural network (CNN), combined with the SSD target recognition model, the basic model of the defect detection network is constructed, and the model parameters are reasonably designed; finally, using The non-maximum suppression algorithm reduces the number of prediction boxes, uses data enhancement operations to expand the data set, and increases the amount of network training, which can effectively improve the network recognition performance and solve the problem of irregular defect detection.
[0127] To achieve the above object, the present invention adopts the following technical solutions:
[0128] A...
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