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- W4210817385 abstract "In order to classify several kinds of rice (including the rice grown by plasma seed treatment), the datasets of the hyperspectral images (HSIs) of rice were constructed. Multilayer perceptron (MLP) has a good classification performance on rice HSIs because it removes translation invariance and local connectivity. Residual learning can improve the feature extraction ability of MLP network because of retaining the original information, preventing the model from degenerating, and facilitating the rapid convergence of the model. Therefore, a rice hyperspectral image classification model based on MLP network and residual learning is proposed. The results show that the proposed model has a higher classification accuracy (98.48%) than the other common classification models. In addition, the model has been verified on two public datasets with the accuracy higher than 99.95%." @default.
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- W4210817385 date "2022-01-01" @default.
- W4210817385 modified "2023-10-15" @default.
- W4210817385 title "An MLP Network Based on Residual Learning for Rice Hyperspectral Data Classification" @default.
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- W4210817385 doi "https://doi.org/10.1109/lgrs.2022.3149185" @default.
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