An EnKF-LSTM Assimilation Algorithm for Crop Growth Model

被引:0
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作者
Zhou, Siqi [1 ]
Wang, Ling [2 ,3 ]
Liu, Jie [2 ,3 ]
Tang, Jinshan [4 ]
机构
[1] Harbin Institution of Technology, Department of Computer Science and Technology, Harbin,150001, China
[2] Harbin Institute of Technology, Department of Computer Science and Technology, Harbin,150001, China
[3] National Key Laboratory of Smart Farming Technology and System, Heilongjiang, Harbin,150000, China
[4] George Mason University, Department of Health Administration and Policy, College of Public Health, Fairfax,VA,22033, United States
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D O I
10.1109/TAFE.2024.3379245
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摘要
Accurate and timely prediction of crop growth is of great significance to ensure crop yields, and researchers have developed several crop models for the prediction of crop growth. However, there are large differences between the simulation results obtained by the crop models and the actual results; thus, in this article, we proposed to combine the simulation results with the collected crop data for data assimilation so that the accuracy of prediction will be improved. In this article, an EnKF-LSTM data assimilation method for various crops is proposed by combining an ensemble Kalman filter and long short-term memory (LSTM) neural network, which effectively avoids the overfitting problem of the existing data assimilation methods and eliminates the uncertainty of the measured data. The verification of the proposed EnKF-LSTM method and the comparison of the proposed method with other data assimilation methods were performed using datasets collected by sensor equipment deployed on a farm. © 2024 IEEE.
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页码:372 / 380
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