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Very high spatial resolution soil moisture observation of heterogeneous subarctic catchment using nonlocal averaging and multitemporal SAR data

Manninen, Terhikki; Jääskeläinen, Emmihenna; Lohila, Annalea; Korkiakoski, Mika; Räsänen, Aleksi; Virtanen, Tarmo; Muhić, Filip; Marttila, Hannu; Ala-Aho, Pertti; Markovaara-Koivisto, Mira; Liwata-Kenttälä, Pauliina; Sutinen, Raimo; Hänninen, Pekka (2021-09-15)

 
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URL:
https://doi.org/10.1109/TGRS.2021.31096956

Manninen, Terhikki
Jääskeläinen, Emmihenna
Lohila, Annalea
Korkiakoski, Mika
Räsänen, Aleksi
Virtanen, Tarmo
Muhić, Filip
Marttila, Hannu
Ala-Aho, Pertti
Markovaara-Koivisto, Mira
Liwata-Kenttälä, Pauliina
Sutinen, Raimo
Hänninen, Pekka
Institute of Electrical and Electronics Engineers
15.09.2021

T. Manninen et al., "Very High Spatial Resolution Soil Moisture Observation of Heterogeneous Subarctic Catchment Using Nonlocal Averaging and Multitemporal SAR Data," in IEEE Transactions on Geoscience and Remote Sensing, vol. 60, pp. 1-17, 2022, Art no. 4405317, doi: 10.1109/TGRS.2021.3109695

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© 2021 IEEE. Personal use of this material is permitted. Permission from IEEE must be obtained for all other uses, in any current or future media, including reprinting/republishing this material for advertising or promotional purposes, creating new collective works, for resale or redistribution to servers or lists, or reuse of any copyrighted component of this work in other works.
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doi:https://doi.org/10.1109/TGRS.2021.3109695
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https://urn.fi/URN:NBN:fi-fe2022030822381
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Abstract

A soil moisture estimation method was developed for Sentinel-1 synthetic aperture radar (SAR) ground range detected high resolution (GRDH) data to analyze moisture conditions in a gently undulating and heterogeneous subarctic area containing forests, wetlands, and open orographic tundra. In order to preserve the original 10-m pixel spacing, PIMSAR (pixel-based multitemporal nonlocal averaging) nonlocal mean filtering was applied. It was guided by multitemporal statistics of SAR images in the area. The gradient boosted trees (GBT) machine learning method was used for the soil moisture algorithm development. Discrete and continuous in situ soil moisture values were used for training and validation of the algorithm. For surface soil moisture, the root mean square error (RMSE) of the method was 6.5% and 8.8% for morning and evening images, respectively. The corresponding maximum errors were 34.1% and 33.8%. The pixelwise sensitivity to the training set and method choice was estimated as the variance of the soil moisture values derived using the algorithms for the three best methods with respect to the criteria: the smallest maximum error, the smallest RMSE value, and the highest coefficient of determination ( R2 ) value. It was, on average, 6.3% with a standard deviation of 5.7%. Our approach successfully produced instantaneous high-resolution soil moisture estimates on daily basis for the subarctic landscape and can further be applied to various hydrological, biogeochemical, and management purposes.

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