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A method for discrimination of processed ginger based on image color feature and a support vector machine model

机译:基于图像色彩特征和支持向量机模型的生姜识别方法

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摘要

The discrimination of Chinese herbal medicine uses many appearance properties. Of which, color is one of the most important attributes. However, color descriptions in pharmacopoeia can be vague. It's difficult to unify cognition by artificial and subjective discrimination methods. In this regard, digital image processing and machine learning technology were introduced to help solve these problems. By extracting numerical variables of quantified color from images of processed ginger, experiments demonstrated that the HSV colour space was consistent with the true color and could effectively discriminate three processed ginger. After describing colors in terms of HSV, a support vector machine (SVM) model for discrimination of the processed ginger was constructed. An accuracy rate of 98.0277% was acquired to identify the unknown samples. Therefore, the proposed discrimination method based on the image color feature and SVM model is very able to quantify the color of processed ginger, and to evaluate the quality of appearance characters of Chinese herbal components objectively.
机译:中草药的鉴别具有许多外观特性。其中,颜色是最重要的属性之一。但是,药典中的颜色描述可能含糊不清。通过人为和主观的区分方法很难统一认知。在这方面,引入了数字图像处理和机器学习技术以帮助解决这些问题。通过从加工生姜图像中提取量化颜色的数值变量,实验表明,HSV色彩空间与真实颜色一致,可以有效地区分三个加工生姜。在用HSV描述颜色之后,构建了用于识别加工姜的支持向量机(SVM)模型。识别未知样品的准确率为98.0277%。因此,提出的基于图像颜色特征和支持向量机模型的判别方法能够很好地量化生姜的颜色,客观地评价中草药成分的外观特征。

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