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Updated: Aug 30, 2026

Two-Dimensional Visualization and Quantification of Labile, Inorganic Plant Nutrients and Contaminants in Soil
Published on: September 1, 2020
Coupling critical nitrogen dilution curve with hyperspectral feature optimization and machine learning for inversion
Tingting Zhao1, Jie Li1, Caixia Hu1
1Agro-Environmental Protection Institute, Ministry of Agriculture and Rural Affairs, Tianjin, China.
Introduction:
Rapid, non-destructive, and accurate diagnosis of nitrogen (N) nutritional status in greenhouse cucumber production is critical to mitigate over-fertilization risks and support sustainable intensification.
Methods:
An integrated diagnostic framework was developed by coupling the agronomic critical nitrogen (Nc) dilution curve with a hybrid Competitive Adaptive Reweighted Sampling and Variance Inflation Factor (CARS-VIF) feature selection algorithm, followed by benchmarking six machine learning regression models, including K-Nearest Neighbors (KNN), Multilayer Perceptron (MLP), Support Vector Regression (SVR), Extra Trees, Random Forest (RF), and Gradient Boosting Regression (GBR) .
Results:
The critical nitrogen dilution curve was parameterized as Nc = 4.378 × DW-0.115 (R² = 0.745), with empirical Nitrogen Nutrition Index (NNI) values ranging from 0.72 to 1.22. The CARS-VIF pipeline compressed the full spectrum down to four sensitive wavebands (430, 677, 688, and 953 nm), achieving a 99.81% dimensionality reduction. GBR emerged as the optimal inversion model, delivering a validation R² of 0.845, RMSE of 0.061, and the lowest MAE of 0.046.
Discussion:
This non-destructive framework holds promise for future integration into automated greenhouse sensor platforms or unmanned aerial vehicles (UAVs), offering a powerful digital toolkit to support precision fertilization decision-making and sustainable smart facility horticulture. Additional validation under field conditions is required before operational deployment.
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