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Application of Fuzzy Support Vector Machine In Chalky Rice Identification

机译:模糊支持向量机在Chalky RIS鉴定中的应用

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In order to improve the identification accuracy of fuzzy support vector machine for chalky rice, this paper puts forward a fuzzy support vector machine method based on fuzzy K nearest-neighbor. This method firstly gets a sample center by calculating sample mean aimed at every class sample; and then it calculates the initial membership of sample by calculating the distance between sample and center; finally, it calculates K neighbor points of each sample, calculates the membership of sample according to the fuzzy K neighbor method, and integrates the initial membership with fuzzy K neighbor membership at a certain proportion, to get the ultimate membership values of samples. Combined with image detection problems of rice, verify the validity of this method. Experiments show that this method not only can improve the accuracy of identification but also can improve its speed, with a better result than common fuzzy support vector machine.
机译:为了提高对Chalky Rice的模糊支持向量机的识别精度,本文提出了一种基于模糊K最近邻的模糊支持向量机方法。该方法首先通过计算针对每个类样本的样本意味来获得样本中心;然后它通过计算样品和中心之间的距离来计算样品的初始成员资格;最后,计算每个样本的k个邻点,根据模糊k邻邻方法计算样本的成员身份,并以一定比例集成与模糊k邻居成员的初始成员资格,以获得样本的最终成员资格值。结合米饭的图像检测问题,验证这种方法的有效性。实验表明,这种方法不仅可以提高识别的准确性,还可以提高其速度,而不是常见的模糊支持向量机的结果。

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