Leaf vein segmentation of medicinal plant using Hessian matrix

Adzkia Salima, Y. Herdiyeni, S. Douady
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引用次数: 14

Abstract

This paper proposes a leaf vein segmentation using Hessian matrix. Leaf venation pattern is a biometric feature that form the basis of leaf characterization and classification. It is specific in certain species thus it can be used as a key feature. Hessian Matrix is a method of the second derivative ridge detection that can be used to segment the image based on its group structure by analyzing eigenvalues of the pixel. We applied thinning to achive the better result of leaf vein. In addition, we performed morphological image processing to fix broken ridges or unconnected leaf veins. We have evaluated four veins type of 80 digital leaf. The experimental results show that 53.75% of leaf image scored 2 and 42.5% scored 1 which means our proposed method has good performance to extract the primary, secondary veins and tertiary leaf vein. This method is promising to help botanist and taxonomist identifying medicinal plant species automatically.
基于Hessian矩阵的药用植物叶脉分割
提出了一种基于Hessian矩阵的叶脉分割方法。叶脉结构是一种生物特征,是叶片特征和分类的基础。它在某些物种中是特定的,因此它可以作为一个关键特征。Hessian矩阵是一种二阶导数脊检测方法,通过分析像素的特征值,对图像进行分组结构分割。为了获得更好的叶脉效果,我们对叶脉进行了细化处理。此外,我们还进行了形态学图像处理,以固定断脊或不连接的叶脉。我们评估了80个数字叶的四种叶脉类型。实验结果表明,53.75%的叶片图像得分为2分,42.5%的叶片图像得分为1分,表明所提出的方法能够很好地提取叶片的初级、次级和三级叶脉。该方法有望帮助植物学家和分类学家自动识别药用植物物种。
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