Semi-supervised orthogonal discriminant projection for plant leaf classification

被引:0
|
作者
Shanwen Zhang
Yingke Lei
Chuanlei Zhang
Yihua Hu
机构
[1] Xijing University,Department of Electronics and Information Engineering
[2] Electronic Engineering Institute,School of Computer Science and Information Engineering
[3] Tianjin University of Science & Technology,undefined
来源
关键词
Plant leaf classification; Dimensionality reduction; Orthogonal discriminant projection; Semi-supervised orthogonal discriminant projection;
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学科分类号
摘要
Plant classification based on the leaf images is an important and tough task. For leaf classification problem, in this paper, a new weight measure is presented, and then a dimensional reduction algorithm, named semi-supervised orthogonal discriminant projection (SSODP), is proposed. SSODP makes full use of both the labeled and unlabeled data to construct the weight by incorporating the reliability information, the local neighborhood structure and the class information of the data. The experimental results on the two public plant leaf databases demonstrate that SSODP is more effective in terms of plant leaf classification rate.
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页码:953 / 961
页数:8
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