Monitoring Land Management Practices Using Vis–NIR Spectroscopy Provides Insights into Predicting Soil Organic Carbon and Limestone Levels in Agricultural Plots
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R. Bienes | B. Sastre | A. García‐Díaz | O. Antón | A. Moreno-Delafuente | J. Herranz-Luque | Javier Gonzalez-Canales | Juan P. Martín-Sanz | Mariela J. Navas-Vázquez | Rubén Ramos-Nieto | María José Marques
[1] P. Carral,et al. Ten-Year Impact of Cover Crops on Soil Organic Matter Quantity and Quality in Semi-Arid Vineyards , 2023, Land.
[2] Standard operating procedure for soil bulk density, cylinder method , 2023 .
[3] Victor Allory,et al. Comparison of soil organic carbon stocks predicted using visible and near infrared reflectance (VNIR) spectra acquired in situ vs. on sieved dried samples: synthesis of different studies , 2021, Soil Security.
[4] Organic Carbon , 2019, Properties and Management of Soils in the Tropics.
[5] G. Calero,et al. Sustainability using cover crops in Mediterranean tree crops, olives and vines – Challenges and current knowledge , 2017 .
[6] Luca Montanarella,et al. World's soils are under threat , 2015 .
[7] H. Khademi,et al. Using Visible and near Infrared Spectroscopy to Estimate Carbonates and Gypsum in Soils in Arid and Subhumid Regions of Isfahan, Iran , 2015 .
[8] I C Edmundson,et al. Particle size analysis , 2013 .
[9] Pietro Amenta,et al. Prediction of Soil Properties with PLSR and vis-NIR Spectroscopy: Application to Mediterranean Soils from Southern Italy , 2012 .
[10] J. A. Gómez,et al. The effects of cover crops and conventional tillage on soil and runoff loss in vineyards and olive groves in several Mediterranean countries , 2011 .
[11] W. Hively,et al. Visible-near infrared reflectance spectroscopy for assessment of soil properties in a semi-arid area of Turkey , 2010 .
[12] Antoine Stevens,et al. Assessment and monitoring of soil quality using near‐infrared reflectance spectroscopy (NIRS) , 2009 .
[13] Cristine L. S. Morgan,et al. Simulated in situ characterization of soil organic and inorganic carbon with visible near-infrared diffuse reflectance spectroscopy , 2009 .
[14] R. V. Rossel,et al. Soil organic carbon prediction by hyperspectral remote sensing and field vis-NIR spectroscopy: An Australian case study , 2008 .
[15] M. Schaepman,et al. Spectral reflectance based indices for soil organic carbon quantification , 2008 .
[16] Raphael A. Viscarra Rossel,et al. ParLeS: Software for chemometric analysis of spectroscopic data , 2008 .
[17] C. Feller,et al. Determination of carbon and nitrogen contents in Alfisols, Oxisols and Ultisols from Africa and Brazil using NIRS analysis: Effects of sample grinding and set heterogeneity , 2007 .
[18] Andrew Rawson,et al. Rapid Prediction of Soil Water Retention using Mid Infrared Spectroscopy , 2007 .
[19] K. Shepherd,et al. Global soil characterization with VNIR diffuse reflectance spectroscopy , 2006 .
[20] J. Farifteh,et al. Assessing salt-affected soils using remote sensing, solute modelling, and geophysics , 2006 .
[21] A. Vrieling. Satellite remote sensing for water erosion assessment: A review , 2006 .
[22] P. Miller,et al. Validation requirements for diffuse reflectance soil characterization models with a case study of VNIR soil C prediction in Montana , 2005 .
[23] Zhihao Qin,et al. Possibilities of reflectance spectroscopy for the assessment of contaminant elements in suburban soils , 2005 .
[24] José Alexandre Melo Demattê,et al. Visible–NIR reflectance: a new approach on soil evaluation , 2004 .
[25] Nitin K. Tripathi,et al. Artificial neural network analysis of laboratory and in situ spectra for the estimation of macronutrients in soils of Lop Buri (Thailand) , 2003 .
[26] H. Beecher,et al. The potential of near-infrared reflectance spectroscopy for soil analysis — a case study from the Riverine Plain of south-eastern Australia , 2002 .
[27] K. Shepherd,et al. Development of Reflectance Spectral Libraries for Characterization of Soil Properties , 2002 .
[28] G. McCarty,et al. Mid-infrared diffuse reflectance spectroscopy for the quantitative analysis of agricultural soils. , 2001, Journal of agricultural and food chemistry.
[29] F. D. van der Meer,et al. Spectral reflectance of carbonate mineral mixtures and bidirectional reflectance theory: Quantitative analysis techniques for application in remote sensing , 1995 .
[30] Eyal Ben-Dor,et al. Near-Infrared Analysis as a Rapid Method to Simultaneously Evaluate Several Soil Properties , 1995 .
[31] H. Wold. Systems Analysis by Partial Least Squares , 1983 .
[32] J. Hummel,et al. Reflectance technique for predicting soil organic matter. , 1980 .
[33] F. Chung,et al. Quantitative interpretation of X-ray diffraction patterns of mixtures. III. Simultaneous determination of a set of reference intensities , 1975 .
[34] S. Shapiro,et al. A Comparative Study of Various Tests for Normality , 1968 .
[35] H. Marei. Quantitative analysis of clay minerals and their admixtures , 1966 .
[36] A. Walkley,et al. AN EXAMINATION OF THE DEGTJAREFF METHOD FOR DETERMINING SOIL ORGANIC MATTER, AND A PROPOSED MODIFICATION OF THE CHROMIC ACID TITRATION METHOD , 1934 .
[37] David J. Chittleborough,et al. Visible near-infrared reflectance spectroscopy as a predictive indicator of soil properties , 2011 .
[38] Roger,et al. Spectroscopy of Rocks and Minerals , and Principles of Spectroscopy , 2002 .
[39] R. Escadafal,et al. Remote sensing of arid soil surface color with Landsat thematic mapper , 1989 .
[40] E. R. Stoner,et al. REFLECTANCE PROPERTIES OF SOILS , 1986 .
[41] T. B. Nolan,et al. Quantitative interpretation of mineralogical composition from X-ray and chemical data for the Pierre Shale , 1964 .