Recognition algorithm for plant leaves based on adaptive supervised locally linear embedding

文献类型: 外文期刊

第一作者: Qing, Yan

作者: Qing, Yan;Dong, Liang;Zhang Dongyan;Zhang Dongyan;Xu, Wang

作者机构:

关键词: supervised locally linear embedding;manifold learning;Fisher projection;adaptive neighbors;leaf recognition;Precision Agriculture

期刊名称:INTERNATIONAL JOURNAL OF AGRICULTURAL AND BIOLOGICAL ENGINEERING ( 影响因子:2.032; 五年影响因子:2.137 )

ISSN: 1934-6344

年卷期: 2013 年 6 卷 3 期

页码:

收录情况: SCI

摘要: Locally linear embedding (LLE) algorithm has a distinct deficiency in practical application. It requires users to select the neighborhood parameter, k, which denotes the number of nearest neighbors. A new adaptive method is presented based on supervised LLE in this article. A similarity measure is formed by utilizing the Fisher projection distance, and then it is used as a threshold to select k. Different samples will produce different k adaptively according to the density of the data distribution. The method is applied to classify plant leaves. The experimental results show that the average classification rate of this new method is up to 92.4%, which is much better than the results from the traditional LLE and supervised LLE.

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