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Plant classification based on stacked autoencoder

机译:基于堆叠自动化器的植物分类

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摘要

With the development of rapid technology, the similarity between plants is increasing, which will enhance the classified workload of botanists. Therefore, it is urge to find a quick automatic classification method. In recent years, the performance of autoencoder has become more and more prominent. Consequently, in this paper, we employ stacked autoencoder to classify three plants, including 630 images in total. The result of this experience shows that the accuracy of classification is 93.3%.
机译:随着快速技术的发展,植物之间的相似性越来越大,这将增强植物学家的分类工作量。因此,敦促找到一个快速的自动分类方法。近年来,AutoEncoder的表现变得越来越突出。因此,在本文中,我们采用堆叠的AutoEncoder来分类三个工厂,包括总共630个图像。这种经验的结果表明,分类的准确性为93.3 %。

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