Baselight

Data From: Gamma-Spectroscopy Method For Soil Water Content Estimation In An Agricultural Field

Department of Agriculture

@usgov.usda_gov_data_from_gamma_spectroscopy_method_for_soil__706a8d1e

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About this Dataset

Data From: Gamma-Spectroscopy Method For Soil Water Content Estimation In An Agricultural Field

Gamma-ray spectroscopy (GRS) enables continuous estimation of soil water content (SWC) at the subfield scale with a noninvasive sensor. Hydrological applications, including hyper-resolution land surface models and precision agricultural decision making, could benefit greatly from such SWC information, but a gap exists between established theory and accurate estimation of SWC from GRS in the field. In response, we conducted a robust three-year field validation study at a well instrumented agricultural site in Nebraska, United States. The study involved 27 gravimetric water content sampling campaigns in maize and soybean and 40K specific activity (Bq kg−1) measurements from a stationary GRS sensor. Our analysis showed that the current method for biomass water content correction is appropriate for our maize and soybean field but that the ratio of soil mass attenuation to water mass attenuation used in the theoretical equation must be adjusted to satisfactorily describe the field data. We propose a calibration equation with two free parameters: the theoretical 40K intensity in dry soil and a, which creates an “effective” mass attenuation ratio. Based on statistical analyses of our data set, we recommend calibrating the GRS sensor for SWC estimation using 10 profiles within the footprint and 5 calibration sampling campaigns to achieve a cross-validation root mean square error below 0.035 g g−1.
Organization: Department of Agriculture
Last updated: 2024-05-31T22:58:07.668246
Tags: gamma-ray-spectroscopy, soil-water-content

Tables

CalibrationDataK40

@usgov.usda_gov_data_from_gamma_spectroscopy_method_for_soil__706a8d1e.calibrationdatak40
  • 4.88 kB
  • 27 rows
  • 5 columns
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CREATE TABLE calibrationdatak40 (
  "unnamed_0" BIGINT  -- Unnamed: 0,
  "k" DOUBLE,
  "sd" DOUBLE,
  "year" BIGINT,
  "doy" BIGINT
);

CalibrationDataVeg

@usgov.usda_gov_data_from_gamma_spectroscopy_method_for_soil__706a8d1e.calibrationdataveg
  • 7.93 kB
  • 27 rows
  • 9 columns
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CREATE TABLE calibrationdataveg (
  "unnamed_0" BIGINT  -- Unnamed: 0,
  "year" BIGINT,
  "doy" BIGINT,
  "bwe" DOUBLE,
  "bwesd" DOUBLE,
  "stovbwe" DOUBLE,
  "ht" DOUBLE,
  "ht_sd" DOUBLE,
  "totbwe" DOUBLE
);

CombinedTimeSeries

@usgov.usda_gov_data_from_gamma_spectroscopy_method_for_soil__706a8d1e.combinedtimeseries
  • 57.71 kB
  • 808 rows
  • 13 columns
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CREATE TABLE combinedtimeseries (
  "unnamed_0" BIGINT  -- Unnamed: 0,
  "date" TIMESTAMP,
  "year" BIGINT,
  "doy" BIGINT,
  "bwe" DOUBLE,
  "bwesd" DOUBLE,
  "stovbwe" DOUBLE,
  "totbwe" DOUBLE,
  "ht" DOUBLE,
  "htsd" DOUBLE,
  "dfb_new_precip_mm" DOUBLE,
  "dfb_new_soiltemp_c" DOUBLE,
  "k40" DOUBLE
);

SOCandLatticeValues

@usgov.usda_gov_data_from_gamma_spectroscopy_method_for_soil__706a8d1e.socandlatticevalues
  • 4.35 kB
  • 2 rows
  • 5 columns
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CREATE TABLE socandlatticevalues (
  "unnamed_0" VARCHAR  -- Unnamed: 0,
  "x_g_g" DOUBLE  -- X.g.g.,
  "uncertainty" DOUBLE,
  "arith_mean" DOUBLE  -- Arith..mean,
  "arith_stderr" DOUBLE  -- Arith..stderr
);

V Wt AvgPore

@usgov.usda_gov_data_from_gamma_spectroscopy_method_for_soil__706a8d1e.v_wt_avgpore
  • 5.46 kB
  • 27 rows
  • 5 columns
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CREATE TABLE v_wt_avgpore (
  "unnamed_0" BIGINT  -- Unnamed: 0,
  "date" TIMESTAMP,
  "v_wt_avg_g_g" DOUBLE  -- V Wt Avg (g/g),
  "sd_g_g" DOUBLE  -- SD (g/g),
  "se_g_g" DOUBLE  -- SE (g/g)
);

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