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An Implementation of Leaf Recognition System Based on Leaf Contour and Centroid for Plant Classification

机译:基于叶片轮廓和植物分类叶片识别系统的实现

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In this paper, we propose a leaf recognition system based on the leaf contour and centroid that can be used for plant classification. The proposed approach uses frequency domain data by performing a Fast Fourier transform (FFT) for the leaf recognition system. Twenty leaf features were extracted for leaf recognition. First, the distance between the centroid and all points on the leaf contours were calculated. Second, an FFT was performed using the calculated distances. Ten features were extracted using the calculated distances, FFT magnitude, and its phase. Ten features were also extracted based on the digital morphological features using four basic geometric features and five vein features. To verify the validity of the approach, images of 1907 leaves were used to classify 32 kinds of plants. In the experimental results, the proposed leaf recognition system showed an average recognition rate of 95.44 %, and we can confirm that the recognition rate of the proposed advanced leaf recognition method was better than that of the existed leaf recognition method.
机译:在本文中,我们提出了一种基于叶片轮廓和质心的叶识别系统,可用于植物分类。所提出的方法通过对叶片识别系统执行快速傅里叶变换(FFT)来使用频域数据。提取二十叶特征以进行叶片识别。首先,计算质心与叶子轮廓上的所有点之间的距离。其次,使用计算的距离进行FFT。使用计算的距离,FFT幅度及其相位提取十个特征。还基于使用四个基本几何特征和五个静脉特征的数字形态特征提取十个特征。为了验证方法的有效性,1907年叶的图像用于分类32种植物。在实验结果中,所提出的叶片识别系统显示出95.44%的平均识别率,我们可以确认所提出的先进叶片识别方法的识别率优于存在的叶片识别方法。

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