融合形状和颜色特征的苹果等级检测  被引量:7

Apple grading detection based on fusion of shape and color features

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作  者:李先锋[1,2] 朱伟兴[1] 花小朋[2] 孔令东[2] 

机构地区:[1]江苏大学电气信息工程学院,江苏镇江212013 [2]盐城工学院信息工程学院,江苏盐城224051

出  处:《计算机工程与应用》2010年第35期202-204,234,共4页Computer Engineering and Applications

基  金:盐城工学院重点建设学科开放基金(No.XKY2010021)

摘  要:为了提高苹果分级的准确率和稳定性,在图像处理的基础上,基于Fourier描述子和HIS颜色模型分别提取了苹果的形状和颜色两类主要外观特征,并分别用神经网络进行单特征初步分级,将其结果作为证据,通过D-S证据理论进行决策级融合,根据分类阈值得到最终分级结果。实验结果表明,该方法分级正确率达93.75%,与单指标特征分级相比,识别率高,稳定性好。In order to increase the accuracy and stability of apple gradings,hape and color features which can show the ap-ples’ appearance quality are separately extracted by Fourier descriptor and HIS color model.Firstlyt,he apples are graded re-spectively by neural network.Thent,he former grading results are used as evidences to achieve the decision fusion.Finally,us-ing identification threshold to get the grades.The experimental results show that the grading accuracy reaches 93.75%t,he pro-posed method has good performance on accuracy and stability compared to the grading method based on single feature.

关 键 词:D-S证据理论 特征提取 傅里叶描述子 HIS模型 决策级融合 苹果分级 

分 类 号:TP18[自动化与计算机技术—控制理论与控制工程]

 

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