Performance of the pilling evaluation method based on the technique of DFF
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In previous work, we reconstructed the depth image of fabric based on the method of Depth from Focus (DFF) and segmented pills and fuzz from fabric background. Work in this paper was performed using the segmented image. Here, we demonstrate the prediction operation of the pilling evaluation using a large set of fabric samples. The support vector machine (SVM) was applied to build the classifier machine by learning from existing data. The grid search method was used to select the optimal parameter values. The study found that the best prediction accuracy can reach 90.75%, indicating the extracted pilling features from depth image can predict the pilling grade well.
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2015 ◽
Vol 256
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pp. 425-437
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