Assessment of soil properties in situ using a prototype portable MIR spectrometer in two agricultural fields

Mid-infrared (MIR) soil spectroscopy has shown applicability to predict selected properties through various laboratory studies. However, reports on the successful use of MIR instruments in field conditions (in situ) have been limited. In this study, a small portable prototype MIR (898–1811 cm-1) spe...

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Main Authors: Ji, W., Adamchuk, V., Biswas, A., Dhawale, N., Sudarsan, B., Zhang, Y., Viscarra Rossel, Raphael, Shi, Z.
Format: Journal Article
Published: 2016
Online Access:http://hdl.handle.net/20.500.11937/74369
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author Ji, W.
Adamchuk, V.
Biswas, A.
Dhawale, N.
Sudarsan, B.
Zhang, Y.
Viscarra Rossel, Raphael
Shi, Z.
author_facet Ji, W.
Adamchuk, V.
Biswas, A.
Dhawale, N.
Sudarsan, B.
Zhang, Y.
Viscarra Rossel, Raphael
Shi, Z.
author_sort Ji, W.
building Curtin Institutional Repository
collection Online Access
description Mid-infrared (MIR) soil spectroscopy has shown applicability to predict selected properties through various laboratory studies. However, reports on the successful use of MIR instruments in field conditions (in situ) have been limited. In this study, a small portable prototype MIR (898–1811 cm-1) spectrometer was used to collect soil spectra from two agricultural fields (predominantly organic and mineral soils). Both fields were located at Macdonald Campus of McGill University in Ste-Anne-de-Bellevue, Quebec, Canada. In each of the 120 predefined field locations, in situ spectroscopic measurements were repeated three times and one representative soil sample was analyzed following conventional laboratory procedures. For every soil property, a field-specific partial least squares regression (PLSR) model was developed and evaluated using a leave-one-out cross-validation routine. Each soil property was evaluated in terms of the accuracy and reproducibility of model predictions. Among tested soil properties, soil organic matter, water content, bulk density, cation exchange capacity (CEC), Ca and Mg yielded higher model performance indicators (R2 > 0.50 and RPD > 1.40) as compared to soil pH, Fe, Cu, phosphorus, nitrate-nitrogen, K or Na. In most instances, the error estimate representing the prediction reproducibility was found to be as high as 50% of the overall prediction error. This was due to the combination of optical and electrical noise and soil micro-variability causing soil spectra representing the same field location to yield different predictions.
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institution Curtin University Malaysia
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publishDate 2016
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spelling curtin-20.500.11937-743692019-08-15T05:16:43Z Assessment of soil properties in situ using a prototype portable MIR spectrometer in two agricultural fields Ji, W. Adamchuk, V. Biswas, A. Dhawale, N. Sudarsan, B. Zhang, Y. Viscarra Rossel, Raphael Shi, Z. Mid-infrared (MIR) soil spectroscopy has shown applicability to predict selected properties through various laboratory studies. However, reports on the successful use of MIR instruments in field conditions (in situ) have been limited. In this study, a small portable prototype MIR (898–1811 cm-1) spectrometer was used to collect soil spectra from two agricultural fields (predominantly organic and mineral soils). Both fields were located at Macdonald Campus of McGill University in Ste-Anne-de-Bellevue, Quebec, Canada. In each of the 120 predefined field locations, in situ spectroscopic measurements were repeated three times and one representative soil sample was analyzed following conventional laboratory procedures. For every soil property, a field-specific partial least squares regression (PLSR) model was developed and evaluated using a leave-one-out cross-validation routine. Each soil property was evaluated in terms of the accuracy and reproducibility of model predictions. Among tested soil properties, soil organic matter, water content, bulk density, cation exchange capacity (CEC), Ca and Mg yielded higher model performance indicators (R2 > 0.50 and RPD > 1.40) as compared to soil pH, Fe, Cu, phosphorus, nitrate-nitrogen, K or Na. In most instances, the error estimate representing the prediction reproducibility was found to be as high as 50% of the overall prediction error. This was due to the combination of optical and electrical noise and soil micro-variability causing soil spectra representing the same field location to yield different predictions. 2016 Journal Article http://hdl.handle.net/20.500.11937/74369 10.1016/j.biosystemseng.2016.06.005 restricted
spellingShingle Ji, W.
Adamchuk, V.
Biswas, A.
Dhawale, N.
Sudarsan, B.
Zhang, Y.
Viscarra Rossel, Raphael
Shi, Z.
Assessment of soil properties in situ using a prototype portable MIR spectrometer in two agricultural fields
title Assessment of soil properties in situ using a prototype portable MIR spectrometer in two agricultural fields
title_full Assessment of soil properties in situ using a prototype portable MIR spectrometer in two agricultural fields
title_fullStr Assessment of soil properties in situ using a prototype portable MIR spectrometer in two agricultural fields
title_full_unstemmed Assessment of soil properties in situ using a prototype portable MIR spectrometer in two agricultural fields
title_short Assessment of soil properties in situ using a prototype portable MIR spectrometer in two agricultural fields
title_sort assessment of soil properties in situ using a prototype portable mir spectrometer in two agricultural fields
url http://hdl.handle.net/20.500.11937/74369