首页> 中文期刊> 《武汉大学学报:自然科学英文版》 >Non-Destructive Crack Detection of Preserved Eggs Using a Machine Vision and Multivariate Analysis

Non-Destructive Crack Detection of Preserved Eggs Using a Machine Vision and Multivariate Analysis

         

摘要

Pidan or century egg, also known as preserved egg, is one of the most traditional and popular egg products in China. The crack detection of preserved eggshell is very important to guarantee its quality. In this study, we develop an image algorithm for preserved eggshell's crack detection by using natural light and polarized image. Four features including crack length, crack state coefficient, maximum projection and angular point are extracted from the natural light image by morphology calculus algorithms. The support vector machines(SVM) model with radial basis kernel function is established using the four features with an accuracy of about 92%. The detection accuracy is improved to 94% by using a new characteristic parameter of crack length on polarization image. The Multi-information fusion analysis indicates the potential for cracks detection by a real-time synthesis imaging system.

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