SMOS prototype algorithm for detecting autumn soil freezing

被引:114
作者
Rautiainen, Kimmo [1 ]
Parkkinen, Tiina [1 ]
Lemmetyinen, Juha [1 ]
Schwank, Mike [2 ,3 ]
Wiesmann, Andreas [2 ]
Ikonen, Jaakko [1 ]
Derksen, Chris [4 ]
Davydov, Sergei [5 ]
Davydova, Anna [5 ]
Boike, Julia [6 ]
Langer, Moritz [6 ]
Drusch, Matthias [7 ]
Pulliainen, Jouni [1 ]
机构
[1] Finnish Meteorol Inst, Arctic Res, POB 503, FI-00101 Helsinki, Finland
[2] Gamma Remote Sensing AG, Worbstr 225, CH-3073 Gumlingen, Switzerland
[3] Swiss Fed Res Inst WSL, CH-8903 Birmensdorf, Switzerland
[4] Environm Canada, Vancouver, BC, Canada
[5] Russian Acad Sci, North East Sci Stn, Pacific Inst Geog, Far Eastern Branch, Cherskiy 678830, Republic Of Sak, Russia
[6] Helmholtz Ctr Polar & Marine Res, Alfred Wegener Inst, Dresden, Germany
[7] European Space Agcy, Estec, NL-2200 AG Noordwijk, Netherlands
基金
美国国家科学基金会;
关键词
Microwave radiometry; Soil freeze/thaw; SMOS; L-BAND; MICROWAVE RADIOMETER; WATER-CONTENT; SNOW; MOISTURE; EMISSION; MISSION; MODEL; PERMITTIVITY; PERFORMANCE;
D O I
10.1016/j.rse.2016.01.012
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A prototype algorithm for hemispheric scale detection of autumn soil freezing using space-borne L-band passive microwave observations is presented. The methodology is based on earlier empirical and theoretical studies of L-band emission properties of freezing and thawing soils. We expand a method originally developed for soil freeze thaw (F/T) state detection from L-band tower based observations to satellite scale, applying observations from the European Space Agency's Soil Moisture and Ocean Salinity (SMOS) mission. The developed algorithm is based on first establishing spatially variable thresholds for L-band brightness temperatures representing frozen and thawed states of soil, and comparing these to current values of different indicators of soil freezing, calculated based on observed brightness temperature at different polarizations and incidence angles. An exponential relation between the freezing indicators and the depth of soil frost is developed based on a large amount of manual soil frost tube observations across Finland. An additional processing filter based on observed physical temperature and snow cover information is used to flag obvious F/T detection errors. The estimated soil F/F-states provided in this study are limited to the autumn freezing period, as melting snow in spring effectively prevents acquisition of information from the soil surface using microwaves for large areas in Northern latitudes. The F/T estimate is produced as daily information and provided in the equal-area scalable Earth (EASE) grid. Soil F/T-state is categorized into three discrete levels: 'frozen', 'partially frozen', and 'thawed', and accompanied with a quality data matrix estimating the data reliability for each freezing season separately. Comparisons to in situ data were conducted at 10 different locations in Finland, Northern America and Siberia. These comparison results indicate that the onset of autumn soil freezing can be estimated from SMOS observations to within 1 to 14 days, depending on the freezing indicator applied and the in situ data used in comparison. Although the initial results are encouraging, more comprehensive assessment of SMOS based soil F/T estimates still requires further comparison to other reference sites, particularly to sites with measurements available for all locally representative land cover types, as well as other satellite-based soil freezing products. (C) 2016 The Authors. Published by Elsevier Inc.
引用
收藏
页码:346 / 360
页数:15
相关论文
共 53 条
  • [1] Soil temperature at ECMWF: An assessment using ground-based observations
    Albergel, C.
    Dutra, E.
    Munoz-Sabater, J.
    Haiden, T.
    Balsamo, G.
    Beljaars, A.
    Isaksen, L.
    de Rosnay, P.
    Sandu, I.
    Wedi, N.
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2015, 120 (04) : 1361 - 1373
  • [2] [Anonymous], 2010, GLOBAL LAND COVER MA
  • [3] Baseline characteristics of climate, permafrost and land cover from a new permafrost observatory in the Lena River Delta, Siberia (1998-2011)
    Boike, J.
    Kattenstroth, B.
    Abramova, K.
    Bornemann, N.
    Chetverova, A.
    Fedorova, I.
    Froeb, K.
    Grigoriev, M.
    Grueber, M.
    Kutzbach, L.
    Langer, M.
    Minke, M.
    Muster, S.
    Piel, K.
    Pfeiffer, E. -M.
    Stoof, G.
    Westermann, S.
    Wischnewski, K.
    Wille, C.
    Hubberten, H. -W.
    [J]. BIOGEOSCIENCES, 2013, 10 (03) : 2105 - 2128
  • [4] The ERA-Interim reanalysis: configuration and performance of the data assimilation system
    Dee, D. P.
    Uppala, S. M.
    Simmons, A. J.
    Berrisford, P.
    Poli, P.
    Kobayashi, S.
    Andrae, U.
    Balmaseda, M. A.
    Balsamo, G.
    Bauer, P.
    Bechtold, P.
    Beljaars, A. C. M.
    van de Berg, L.
    Bidlot, J.
    Bormann, N.
    Delsol, C.
    Dragani, R.
    Fuentes, M.
    Geer, A. J.
    Haimberger, L.
    Healy, S. B.
    Hersbach, H.
    Holm, E. V.
    Isaksen, L.
    Kallberg, P.
    Koehler, M.
    Matricardi, M.
    McNally, A. P.
    Monge-Sanz, B. M.
    Morcrette, J. -J.
    Park, B. -K.
    Peubey, C.
    de Rosnay, P.
    Tavolato, C.
    Thepaut, J. -N.
    Vitart, F.
    [J]. QUARTERLY JOURNAL OF THE ROYAL METEOROLOGICAL SOCIETY, 2011, 137 (656) : 553 - 597
  • [5] Global Automated Quality Control of In Situ Soil Moisture Data from the International Soil Moisture Network
    Dorigo, W. A.
    Xaver, A.
    Vreugdenhil, M.
    Gruber, A.
    Hegyiova, A.
    Sanchis-Dufau, A. D.
    Zamojski, D.
    Cordes, C.
    Wagner, W.
    Drusch, M.
    [J]. VADOSE ZONE JOURNAL, 2013, 12 (03)
  • [6] The International Soil Moisture Network: a data hosting facility for global in situ soil moisture measurements
    Dorigo, W. A.
    Wagner, W.
    Hohensinn, R.
    Hahn, S.
    Paulik, C.
    Xaver, A.
    Gruber, A.
    Drusch, M.
    Mecklenburg, S.
    van Oevelen, P.
    Robock, A.
    Jackson, T.
    [J]. HYDROLOGY AND EARTH SYSTEM SCIENCES, 2011, 15 (05) : 1675 - 1698
  • [7] The Soil Moisture Active Passive (SMAP) Mission
    Entekhabi, Dara
    Njoku, Eni G.
    O'Neill, Peggy E.
    Kellogg, Kent H.
    Crow, Wade T.
    Edelstein, Wendy N.
    Entin, Jared K.
    Goodman, Shawn D.
    Jackson, Thomas J.
    Johnson, Joel
    Kimball, John
    Piepmeier, Jeffrey R.
    Koster, Randal D.
    Martin, Neil
    McDonald, Kyle C.
    Moghaddam, Mahta
    Moran, Susan
    Reichle, Rolf
    Shi, J. C.
    Spencer, Michael W.
    Thurman, Samuel W.
    Tsang, Leung
    Van Zyl, Jakob
    [J]. PROCEEDINGS OF THE IEEE, 2010, 98 (05) : 704 - 716
  • [8] Femandez-Moran R., 2014, P IEEE INT GEOSC REM, P1947
  • [9] Fyodorov-Davydov D.G., 2006, SOIL PROCESSES SPATI, P455
  • [10] Assessment of the relative accuracy of hemispheric-scale snow-cover maps
    Hall, DK
    Kelly, REJ
    Riggs, GA
    Chang, ATC
    Foster, JL
    [J]. ANNALS OF GLACIOLOGY, VOL 34, 2002, 2002, 34 : 24 - 30