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Calibration models database of near infrared spectroscopy to predict agricultural soil fertility properties

机译:近红外光谱校准模型数据库可预测农业土壤肥力特性

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摘要

Presented paper describes spectroscopic dataset and calibration models database of near infrared spectroscopy (NIRS) used to predict agricultural soil fertility properties. Near infrared spectra data in form of absorbance spectrum were acquired in wavelength range from 1000 to 2500 nm for a total of 40 bulk soil samples amounted of 10 g per each bulk. Soil fertility properties, presented as soil nitrogen (N), phosphorus (P). potassium (K), soil pH, magnesium (Mg) and calcium (Ca), were measured by means of wet chemical analysis. Calibration models, used to predict those soil fertility parameters were developed using two different regression algorithms namely principal component regression (PCR) and partial least square regression (PLSR) respectively. Prediction performance can be evaluated and justified by looking their statistical indicators: correlation of determination (R ), correlation coefficient (r), root mean square error (RMSE) and residual predictive deviation (RPD). Spectra data can also be corrected in order to improve and enhance prediction performance. Obtained NIRS dataset and models database can be used as a rapid and simultaneous method to determine agricultural soil fertility properties.
机译:本文介绍了用于预测农业土壤肥力特性的近红外光谱(NIRS)光谱数据集和校准模型数据库。在1000至2500 nm的波长范围内,以吸收光谱的形式获取了近红外光谱数据,总共收集了40个散装土壤样品,每个散装样品10 g。土壤肥力特性,表示为土壤氮(N),磷(P)。钾(K),土壤pH,镁(Mg)和钙(Ca)通过湿化学分析来测量。使用两种不同的回归算法(分别是主成分回归(PCR)和偏最小二乘回归(PLSR))开发了用于预测土壤肥力参数的校准模型。可以通过查看统计指标来评估和证明预测性能:确定的相关性(R),相关系数(r),均方根误差(RMSE)和残余预测偏差(RPD)。光谱数据也可以被校正以改善和增强预测性能。获得的NIRS数据集和模型数据库可用作确定农业土壤肥力特性的快速同步方法。

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