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A Feature Extraction Method For Galvanized Steel Sheet Powdering Rates Classification

机译:镀锌钢板粉化率分类的特征提取方法

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This paper describes a feature extraction method for classifying galvanized steel sheet powdering rates. By combining machine vision with statistics, and using the standard deviation's difference between powdered and normal regions, the range of powdered areas is recognized. The method exhibits a number of interesting features: it uses mathematical statistics for image feature analysis, and develops an effective method for analyzing particle size which cannot be measured by manual detection. The experiment result shows that the correction rate of this method to acquire galvanized steel sheet powdered regions is up to 99%, which satisfies the requirements of the application.
机译:本文介绍了一种用于对镀锌钢板粉末化率进行分类的特征提取方法。通过将机器视觉与统计数据相结合,并利用粉末区域和正常区域之间的标准差差异,可以识别粉末区域的范围。该方法具有许多有趣的功能:它使用数学统计信息进行图像特征分析,并开发了一种有效的方法来分析无法通过手动检测进行测量的粒度。实验结果表明,该方法获得镀锌钢板粉末区域的校正率高达99%,满足了应用的要求。

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