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April 19, 2026Hydrology and earth system sciences0 citationsOpen Access

Adjusting diurnal error in dielectric-based in situ soil moisture measurements via Fourier time-filtering using land surface model datasets

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JHJ C HanESEunkyo SeoPDPaul A. Dirmeyer

Key Points

  • The central aim is to correct temperature-induced errors in soil moisture measurements from dielectric sensors using a Fourier transform approach.
  • Applied Fourier transform to adjust spectral power of soil moisture diurnal cycles
  • Utilized land surface model datasets (ERA5-Land and MERRA-2) for correction
  • Validated adjusted measurements against non-dielectric reference sensors
  • Analyzed correlations between soil moisture and temperature across different regions
  • Corrected soil moisture measurements showed significant improvements in accuracy
  • Diurnal correlation between soil moisture and soil temperature shifted from positive to negative
  • Enhanced depiction of land-atmosphere interactions at sub-daily timescales
  • Morning peaks in soil moisture were observed, aligning with decreased humidity during daytime due to evapotranspiration.

Abstract

Abstract. Soil moisture (SM) measurements obtained via dielectric-based sensors are widely used in hydrological and climate studies. However, these measurements exhibit significant temperature sensitivity due to the Maxwell–Wagner polarization effect, causing an unrealistic diurnal cycle having spurious daytime peaks. This study introduces a Fourier transform-based method to correct such temperature-induced errors using physically consistent diurnal patterns from land surface model (LSM) reanalysis datasets (ERA5-Land and MERRA-2). The proposed approach adjusts the spectral power of the SM diurnal cycle to align with model-derived patterns constrained by conservation of mass, resulting in physically realistic SM behavior – peaking in the morning and decreasing during the daytime due to evapotranspiration. Validation against non-dielectric reference sensors indicates that the adjusted SM measurements are significantly improved. The diurnal correlation between SM and soil temperature shifts from predominantly positive to negative, particularly evident in regions with large diurnal temperature ranges and dry climates. Furthermore, applying this method to flux tower observations improves the characterization of land–atmosphere interactions by depicting the energy-limited process at sub-daily timescales, where increased incoming radiation during the daytime drives enhanced latent heat flux and subsequently reduces SM. Overall, this Fourier transform-based adjustment enhances the verity of in situ SM observations, promoting accurate sub-daily analyses of SM dynamics and enabling improved understanding of land–atmosphere coupling processes.

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Cite This Study

Han et al. (2026) studied this question.

synapsesocial.com/papers/69e47250010ef96374d8e746https://doi.org/10.5194/hess-30-2207-2026
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