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◆ Applied Sciences2025-12-17· Spectroscopy

Evaluating the Performance of NIR Spectroscopy in Predicting Soil Properties: A Comparative Study

Govind Dnyandev Vyavahare, Jin-Ju Yun, Jae-Hyuk Park, Jae-Hong Shim, Seong Heon Kim, K. J. Kim, Ahnsung Roh, Ho Jun Jang, Sang-Ho Jeon

原始摘要(英文原文)· Original abstract
Soil analysis is fundamental to sustainable agriculture; however, traditional laboratory methods are time-consuming, expensive, and environmentally hazardous. Spectroscopy techniques, particularly Near-Infrared (NIR), have gained considerable attention because they require minimal sample preparation, no chemicals, and predict multiple soil properties with a single scan. However, selecting appropriate equipment remains critical, as previous studies have reported inconsistent performance between conventional Near-Infrared (NIR) spectroscopy and advanced Fourier-Transform Near-Infrared (FT-NIR) spectroscopy. Therefore, this study aimed to compare the predictive performance of conventional NIR and advanced FT-NIR spectroscopy for sixteen soil properties. Soil samples (n = 567) were collected from different land-use types across South Korea at a depth of 0–20 cm and analyzed using laboratory methods and spectroscopy techniques. Five models, including partial least squares regression (PLSR), Cubist, support vector machine (SVM), random forest (RF), and memory-based learning (MBL), were evaluated using 15-fold cross-validation to assess prediction accuracy. Overall, conventional NIR spectroscopy yielded consistently higher accuracy for all soil properties than FT-NIR. Strong predictive accuracy was achieved for EC (R2 = 0.84), OM (R2 = 0.84), avl. P (R2 = 0.77), TN (R2 = 0.84), and CEC (R2 = 0.76). In contrast, FT-NIR provided good prediction accuracy only for Ex. K (R2 = 0.72) and TN (R2 = 0.84). The average performance of NIR (R2 = 0.67) outperformed FT-NIR spectroscopy (R2 = 0.63) across all soil properties. These findings demonstrate that, despite their lower spectral resolution, NIR spectra provide robust predictive capability across a wide range of soil properties, which can significantly reduce the investment cost of advanced equipment such as FT-NIR for routine soil analysis.
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