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首页> 外文期刊>Journal of food engineering >Pizza sauce spread classification using colour vision and support vector machines
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Pizza sauce spread classification using colour vision and support vector machines

机译:使用色觉和支持向量机对比萨酱酱进行分类

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摘要

An automated classification system of pizza sauce spread using colour vision and support vector machine (SVM) was developed. To characterise pizza sauce spread with low dimensional colour features, a sequence of image processing algorithms was developed. After image segmentation from the background, the segmented image was transformed from red, green, and blue (RGB) colour space to hue, saturation, and value (HSV) colour space. Then a vector quantifier was designed to quantify the HS (hue and saturation) space to 256-dimension, and the quantified colour features of pizza sauce spread were represented by colour histogram. Finally, principal component analysis (PCA) was applied to reduce the 256-dimensional vectors to 30-dimensional vectors. With the 30-dimensional vectors as the input, SVM classifiers were used for classification of pizza sauce spread. It was found that the polynomial SVM classifiers resulted in the best classification accuracy with 96.67% on the test experiments.
机译:开发了一种使用色彩视觉和支持向量机(SVM)的比萨饼酱涂抹酱自动分类系统。为了表征具有低维色彩特征的比萨酱酱,开发了一系列图像处理算法。从背景进行图像分割后,将分割后的图像从红色,绿色和蓝色(RGB)颜色空间转换为色相,饱和度和值(HSV)颜色空间。然后设计了一个矢量量化器,以将HS(色相和饱和度)空间量化为256维,并用颜色直方图表示量化的披萨酱传播的颜色特征。最后,应用主成分分析(PCA)将256维向量简化为30维向量。以30维向量为输入,使用SVM分类器对比萨酱酱进行分类。结果发现,多项式SVM分类器在测试实验中获得了96.67%的最佳分类精度。

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