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Near infrared spectroscopy for soil bulk density assessment

机译:近红外光谱法用于土壤容重评估

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SummarySoil bulk density values are needed to convert organic carbon content to mass of organic carbon per unit area. However, field sampling and measurement of soil bulk density are labour-intensive, costly and tedious. Near-infrared reflectance spectroscopy (NIRS) is a physically non-destructive, rapid, reproducible and low-cost method that characterizes materials according to their reflectance in the near-infrared spectral region. The aim of this paper was to investigate the ability of NIRS to predict soil bulk density and to compare its performance with published pedotransfer functions. The study was carried out on a dataset of 1184 soil samples originating from a reforestation area in the Brazilian Amazon basin, and conventional soil bulk density values were obtained with metallic 'core cylinders'. The results indicate that the modified partial least squares regression used on spectral data is an alternative method for soil bulk density predictions to the published pedotransfer functions tested in this study. The NIRS method presented the closest-to-zero accuracy error (-0.002 g cm-3) and the lowest prediction error (0.13 g cm-3) and the coefficient of variation of the validation sets ranged from 8.1 to 8.9% of the mean reference values. Nevertheless, further research is required to assess the limits and specificities of the NIRS method, but it may have advantages for soil bulk density predictions, especially in environments such as the Amazon forest.
机译:总结需要土壤堆积密度值才能将有机碳含量转换为每单位面积的有机碳质量。然而,现场取样和测量土壤容重是费力的,昂贵且乏味的。近红外反射光谱法(NIRS)是一种物理无损,快速,可重现且低成本的方法,可根据材料在近红外光谱区域中的反射率来表征材料。本文的目的是研究NIRS预测土壤容重的能力,并将其性能与已发布的pedotransfer函数进行比较。这项研究是对来自巴西亚马逊河流域再造林地区的1184个土壤样本的数据集进行的,并且使用金属“核心圆筒”获得了常规的土壤容重值。结果表明,在光谱数据上使用的改进的偏最小二乘回归是本研究中测试的已发布的pedotransfer函数的土壤容重预测的替代方法。 NIRS方法显示了最接近零的精度误差(-0.002 g cm-3)和最低的预测误差(0.13 g cm-3),并且验证集的变异系数范围为平均值的8.1%至8.9%参考值。尽管如此,仍需要进一步研究以评估NIRS方法的局限性和特异性,但它对于预测土壤容重有优势,尤其是在亚马逊森林等环境中。

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