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1.


    Mironov, V. L.
    Retrieving soil moisture at a test site on the Yamal peninsula from SMOS multi-angular brightness temperature observations / V. L. Mironov, R. Zdenek, K. V. Muzalevskiy // European Space Agency (Special Publication) ESA SP : Conf. proc. - 2016. - Vol. SP-740 . - ISSN 0379-6566
Кл.слова (ненормированные):
Luminance -- Moisture -- Soil moisture -- Soils -- Space research -- Temperature -- Brightness temperatures -- Dielectric modeling -- Full polarization -- Japan Aerospace Exploration Agency -- Soil moisture retrievals -- Soil sample -- Standard algorithms -- Test site -- Soil surveys
Аннотация: This paper presents the results of a comparison of soil moisture obtained from the standard algorithms of SMOS and GCOM-W1 with soil moisture retrieved from SMOS multi-angular brightness temperature observations using a dielectric model specially developed for soil samples collected at the test site [1]. For soil moisture retrieval, full polarization brightness temperature product of the Centre Aval de Traitement des Donnees SMOS (CATDS) [2] was used. Standard soil moisture data was obtained from SMOS L3 SM products, provided by the CATDS, and GCOM-W1 L2 SMC products, provided by the Japan Aerospace Exploration Agency (JAXA) [3].

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Доп.точки доступа:
Zdenek, R.; Muzalevskiy, K. V.; Музалевский, Константин Викторович; Миронов, Валерий Леонидович; Living Planet Symposium 2016(9 - 13 May 2016 ; Prague, Czech Republic)
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2.


    Mironov, V. L.
    Measuring Soil Temperature and Moisture of Arctic Tundra Based on SMOS and ALOS PALSAR data / V. L. Mironov, A. Shvaleva, K. V. Muzalevskiy // International Siberian Conference on Control and Communications (SIBCON) (MAY 21-23, 2015, Omsk, RUSSIA) : IEEE, 2015. - Cited References:11 . - ISBN 978-1-4799-7103-9
Рубрики:
MODEL
Кл.слова (ненормированные):
SMOS -- ALOS PALSAR -- Soil moisture -- Soil temperature -- permafrost -- Artic -- tundra
Аннотация: In this paper, methods for retrieving soil moisture, roughness, and temperature based on the radar backscatter coefficient (ALOS PALSAR) and brightness temperature (SMOS) data related to a tundra area on the Yamal peninsula were tested. As theoretical models, there were used the semi-empirical backscatter model proposed by Y. Oh et. al and the Lband Microwave Emission of the Biosphere (L-MEB) model proposed by J-P Wigneron et. al. An integral part of these models is a permittivity model of moist soil both thawed and frozen, which links backscatter coefficient and brightness temperature with moisture, temperature, and dry density of the soil as well as the wave frequencies used by the ALOS PALSAR and SMOS. The applied permittivity model was developed based on dielectric measurements conducted for the organic rich soil samples collected at the Vaskiny Dachi weather station located in the area of the radar backscatter and brightness observations. The retrieved temperatures were correlated with the ones measured at the weather station yielding the values of root-mean-square error and determination coefficient of 3.8 degrees C and 0.80, respectively.

WOS

Доп.точки доступа:
Shvaleva, A.; Muzalevskiy, K. V.; Музалевский, Константин Викторович; Миронов, Валерий Леонидович
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3.


    Mironov, V. L.
    Retrieving profile temperatures in a frozen topsoil near the TFS, Alaska, based on SMOS brightness temperatures at the 1.4-GHz frequency / V. L. Mironov, K. V. Muzalevskiy, Z. Ruzicka // IEEE Trans. Geosci. Remote Sensing. - 2016. - Vol. 54, Is. 12. - P. 7331-7338, DOI 10.1109/TGRS.2016.2599272. - Cited References:25. - This work was supported by the Russian Science Foundation through Project 4-17-00656. . - ISSN 0196-2892. - ISSN 1558-0644
РУБ Geochemistry & Geophysics + Engineering, Electrical & Electronic + Remote Sensing + Imaging Science & Photographic Technology
Рубрики:
DIELECTRIC MODEL
   ARCTIC SOIL

   SURFACE

   BOREAL

   TUNDRA

   GHZ

Кл.слова (ненормированные):
Microwave radiometry -- remote sensing -- soil measurements -- temperature -- measurement
Аннотация: In this paper, the method previously proposed in earlier work for measuring the temperature profile in a frozen topsoil using multiangular brightness temperature observations in the L-band has been experimentally tested. At a frequency of 1.4 GHz, full-polarization multiangular brightness temperature data were obtained from the Soil Moisture and Ocean Salinity (SMOS) satellite land product of Level 1C, with the SMOS footprint being centered at the Toolik Field Station (TFS), Alaska. The SMOS data covered the period from January 1, 2010 to December 31, 2011. Retrieval of the temperature profiles in a frozen topsoil was based on the semiempirical emission model L-MEB and the temperature-dependent dielectric model for an organic-rich tundra soil. The soil samples measured to develop the dielectric model were collected at the TFS site. For winter seasons, the retrieved temperature profiles in the 16.0-cm topsoil were validated relative to the temperature profiles measured in situ. As a result, the values of root-mean-square error and determination coefficient of the temperatures retrieved at the depths of 0.6, 8.7, and 16.0 cm, relative to the respective temperatures measured in situ, were found to be 2.8 °C, 4.9 °C, and 6.4 °C and 0.62, 0.42, and 0.26, respectively. The sources of error and possible improvements of the proposed retrieving algorithm were discussed. The major result of this study is the demonstration of the potential possibility for remote sensing of the temperature profile in a frozen arctic topsoil using the SMOS multiangular brightness data.

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Держатели документа:
Kirensky Inst Phys, Krasnoyarsk 660036, Russia.
Siberian State Aerosp Univ, Krasnoyarsk 660037, Russia.

Доп.точки доступа:
Muzalevskiy, K. V.; Музалевский, Константин Викторович; Ruzicka, Z.; Ружичка, Зденек; Миронов, Валерий Леонидович; Russian Science Foundation [4-17-00656]
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4.


   
    Retrieving Soil Moisture and temperature using SMOS observations at a test site in the Yamal Peninsular / K. V. Muzalevskiy [et al.] // IEEE J. Sel. Top. Appl. Earth Observ. Remote Sens. : Proc. - 2016. - P. 4932 - 4935, DOI 10.1109/IGARSS.2016.7730287. - The study was performed thanks to a grant from the Russian Science Foundation (project No 14-17-00656). . - ISSN 978-1-509. - ISSN 2153-7003
   Перевод заглавия: Восстановление влажности и температуры почвы используя наблюдения SMOS на тестовом участке п-ова Ямал
Кл.слова (ненормированные):
permittivity model -- SMOS -- microwave radiometry -- Arctic tundra -- soil moisture -- soil temperature
Аннотация: In this paper, the results of radiothermal remote sensing of soil moisture and temperature is presented for a test site located in Arctic tundra on the Yamal Peninsula, the Russia Federation using full-polarimetry multi-angular brightness temperature (BT) observations at the frequency of 1.4 GHz. The BT data were obtained from the Soil Moisture and Ocean Salinity (SMOS) satellite with the SMOS footprint near the polar weather station Marresale, Yamal Peninsular, the Russia Federation. The SMOS data covered the period of on the ground observations conducted in August, 2015. The method to retrieve soil moisture and temperature is based on solving an inverse problem by minimizing the norm of the residuals between the observed and predicted values of BTs. The calculation of BT was performed using semi-empirical model of radiothermal emission and temperature-dependent dielectric model for an organic-rich tundra soil. The obtained results revealed the applicability of the SMOS data for simultaneous retrieving the soil moisture and temperature for the Arctic tundra environment.

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Доп.точки доступа:
Muzalevskiy, K. V.; Музалевский, Константин Викторович; Mikhaylov, M. I.; Михайлов, Михаил Иванович; Mironov, V. L.; Миронов, Валерий Леонидович; Ruzicka, Z.; Ружичка, Зденек; IEEE International Geoscience and Remote Sensing Symposium(2016 ; July ; 10-15 ; Beijing, China)
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5.


    Mikhaylov, M. I.
    Testing semi-empirical model of reflection coefficient based on GNSSR measurements / M. I. Mikhaylov, K. V. Muzalevskiy, V. L. Mironov // IEEE J. Sel. Top. Appl. Earth Observ. Remote Sens. : Proc. - 2016. - P. 5264 - 5267, DOI 10.1109/IGARSS.2016.7730371. - The study was performed thanks to a grant from the Russian Science Foundation (project №14-17-00656) . - ISSN 978-1-509. - ISSN 2153-7003
   Перевод заглавия: Тестирование полу-эмпирической модели коэффициента отражения основанного на ГНСС измерениях
Кл.слова (ненормированные):
permittivity model -- SMOS -- microwave radiometry -- Arctic tundra -- soil moisture -- soil temperature
Аннотация: In this paper, with using of semi-empirical model of the reflection coefficient, which is implementing to calculate the brightness temperature of the SMOS spacecraft at 1.4GHz in [1], [2] the soil moisture was retrieved from the reflection coefficients, which were measured by GNSS-reflectometer at a test site on the Yamal Peninsula. The model of reflection coefficient with root-mean square error (RMSE) of 0.04 allows to predict the experimental values of the reflection coefficient and with RMSE of less than 0.09cm3/cm3 allows to retrieve the soil moisture in the layer of 0-6cm

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Доп.точки доступа:
Muzalevskiy, K. V.; Музалевский, Константин Викторович; Mironov, V. L.; Миронов, Валерий Леонидович; Михайлов, Михаил Иванович; IEEE International Geoscience and Remote Sensing Symposium(2016 ; July ; 10-15 ; Beijing, China)
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6.


    Muzalevskiy, K. V.
    Retrieving soil temperature at a test site on the yamal peninsula based on the SMOS brightness temperature observations / K. V. Muzalevskiy, Z. Ruzicka // IEEE J. Sel. Top. Appl. Earth Observ. Remote Sens. - 2016. - Vol. 9, Is. 6. - P. 2468-2477, DOI 10.1109/JSTARS.2016.2553220. - Cited References:36 . - ISSN 1939-1404. - ISSN 2151-1535
РУБ Engineering, Electrical & Electronic + Geography, Physical + Remote
Рубрики:
MICROWAVE DIELECTRIC MODEL
   LAND-SURFACE TEMPERATURES

   ARCTIC SOIL

Кл.слова (ненормированные):
Arctic regions -- microwave radiometry -- moisture measurement -- soil -- measurements -- temperature measurement
Аннотация: In this paper, the results of radiothermal remote sensing of soil temperature at a test site on the Yamal Peninsula using full-polarimetry multiangular brightness temperature (BT) observations at the frequency of 1.4 GHz are presented. The BT data were obtained from the Soil Moisture and Ocean Salinity (SMOS) satellite with the SMOS footprint near the Polar Weather Station Marresale, the Russia Federation. The SMOS data covered the period from January 1, 2013 to December 31, 2013. The method to retrieve the soil temperature was based on solving an inverse problem by minimizing the norm of the residuals between the observed and predicted values of the BTs. The calculation of the BT was performed using a semiempirical model of radiothermal emission, which incorporated an attenuation of the microwaves in the snow pack or the canopy and a temperature-dependent multirelaxation spectral dielectric model (TD MRSDM) for an organic-rich tundra soil. The TD MRSDM was specifically designed based on laboratory measurements of the complex permittivity of the organic-rich soil samples, which were collected at the test site on the Yamal Peninsula. As a result, the values of the root-mean-square error and the determination coefficient between the retrieved and measured soil temperatures were determined to be 2.2 degrees C and 0.70 and 3.5 degrees C and 0.52, respectively, for thawed frozen soil. These results indicate the perspectives of using the full-polarimetric multiangular BT observations in the L-band for the purpose of measuring the soil temperature in the Arctic region.

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Доп.точки доступа:
Ruzicka, Z.; Ружичка, Зденек; Музалевский, Константин Викторович; IEEE International Geoscience and Remote Sensing Symposium(2015 ; July ; 26-31 ; Milan, ITALY)
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7.


   
    Влияние снежного покрова на погрешность восстановления температуры органо-минеральных арктических тундровых почв с использованием радиометрических наблюдений в l-диапазоне / К. В. Музалевский [и др.] // Изв. вузов. Физика. - 2015. - Т. 58, № 10/3. - С. 1-4. - Библиогр.: 4. - Работа выполнена при поддержке Министерства образования и науки РФ, соглашение №14-607-21-0039 . - ISSN 0021-3411
Кл.слова (ненормированные):
Микроволновая радиометрия -- SMOS -- арктическая тундра -- минеральные почвы -- органические почвы -- температура почвы -- снежный покров -- влажность почвы
Аннотация: В данной работе теоретически показана принципиальная возможность измерения температуры почвы находящейся под слоем снежного покрова из угловых зависимостей радиояркостной температуры наблюдаемой на вертикальной и горизонтальной поляризации на частоте 1,4ГГц. Показано, что в случае, когда учитывается влияние снежного покрова погрешность восстановления температуры почвы не превышает 1,4С, в противном случае погрешность возрастает на порядок.
In this paper theoretically has been demonstrated the ability to measure soil temperature under a snow layer using angular dependences of brightness temperature observed on horizontal and vertical polarization at the frequency 1.4GHz. It is shown, that if take into account the snow cover then error of soil temperature retrieval does not exceed 1.4С, other-wise error increases by an order.

Держатели документа:
Институт физики им. Л.В. Киренского СО РАН

Доп.точки доступа:
Музалевский, Константин Викторович; Muzalevskiy, K. V.; Миронов, Валерий Леонидович; Mironov, V. L.; Лукин, Юрий Иванович; Lukin, Y. I.; Савин, Игорь Викторович; Savin, I. V.
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8.


    Muzalevskiy, K. V.
    Measuring Temperature Profile Using Multi-Frequency Microwave Radiometric Observation-Theoretical Modeling / K. V. Muzalevskiy, Z. Ruzhecka // International Siberian Conference on Control and Communications (SIBCON) (MAY 21-23, 2015, Omsk, RUSSIA) : IEEE, 2015. - Cited References:8 . - ISBN 978-1-4799-7103-9
Рубрики:
ARCTIC SOIL
   BOREAL

Кл.слова (ненормированные):
SMOS -- GCOM-W1 -- Soil temperature -- permafrost -- Artic tundra
Аннотация: In this theoretical paper, we propose method for the measurement of temperature profile in the topsoil of Arctic tundra using observations of brightness temperature at frequencies of 1.4, 6.93, 7.3 and 10.7 GHz. A multi-frequency physical model of microwave emission of bare soil and dielectric model of Arctic tundra soil, with temperature profiles, which were measured in the active topsoil with using Toolik climate station on the North Slope of Alaska, were used to calculate "measured" values of brightness temperature. In the approximation of piecewise linear profile of soil temperature, from the "measured" values of brightness temperature were retrieved temperature profiles and were compared with ones, which were measured at the Toolik station from 2010 to 2011. The retrieved values of soil temperatures at the depth of 0.6cm and 16.0cm deviated from measured ones by 1.3 degrees C and 3.2 degrees C in terms of root-mean-square error, and by 0.92 and 0.62 in terms of determination coefficient, respectively.

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Доп.точки доступа:
Ruzhecka, Z.; Ружичка, Зденек; Музалевский, Константин Викторович
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9.


    Muzalevskiy, K. V.
    Effects of Organo-Mineral Structure of Arctic Topsoil on the Own Thermal Radiation in the L-band / K. V. Muzalevskiy, Y. I. Lukin // International Siberian Conference on Control and Communications (SIBCON) (MAY 21-23, 2015, Omsk, RUSSIA) : IEEE, 2015. - Cited References:5 . - ISBN 978-1-4799-7103-9
Кл.слова (ненормированные):
SMOS -- Organic soil -- Mineral soil -- Soil temperature -- Permafrost -- Artic -- tundra
Аннотация: In this paper, the influence of organic-mineral Arctic tundra soils on own thermal radiation in the L-band was theoretically investigated. For modeling of brightness temperature there were used semi-empirical L-band Microwave Emission of the Biosphere (L-MEB) model. An integral part of this model is permittivity models of tundra organic and mineral soils, which links the brightness temperature with moisture, temperature and density of soil. The permittivity models were developed based on the measurements of the organic rich and mineral soil samples collected at the Vaskiny Dachi weather station test-site in Yamal peninsular. As a result, the potential error of soil temperature retrieval in case of layered and homogeneous organic-mineral soil are shown based on simulated brightness temperature at 1.4 GHz.

WOS

Доп.точки доступа:
Lukin, Y. I.; Лукин, Юрий Иванович; Музалевский, Константин Викторович
}
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10.


    Ruzicka, Z.
    Database Approach To Develop And Validate the Soil Moisture and Temperature Retrieval Algorithm Using SMOS Radiometric Data / Z. Ruzicka, K. V. Muzalevskiy // International Siberian Conference on Control and Communications (SIBCON) (MAY 21-23, 2015, Omsk, RUSSIA) : IEEE, 2015. - Cited References:0 . - ISBN 978-1-4799-7103-9
Кл.слова (ненормированные):
Database management system -- SMOS -- Arctic tundra -- Soil temperature -- Soil -- moisture
Аннотация: This paper describes the information system, which has been developed for the storing and automated processing of the Soil Moisture and Ocean Salinity (SMOS) Level 1C radiometric and Level 2 soil moisture data over space and time. The information system contains the database for storing the data and the interface for automated processing. That interface has been developed to provide access to these specific data from the database within the Matlab numerical computing environment used for the realization of algorithms and methods. The developed information system helps to speed up the processing of SMOS data in regional scale over a long period of time, and has successfully been used for the validation of soil temperature and moisture retrieval algorithms over the North Slope of Alaska and Yamal peninsula.

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Доп.точки доступа:
Muzalevskiy, K. V.; Музалевский, Константин Викторович; Ружичка, Зденек
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11.


   
    Temperature dependence of SMOS/MIRAS, GCOM-W1/AMSR2 brightness temperature and ALOS/PALSAR radar backscattering at arctic test sites / K. V. Muzalevskiy [et al.] // Progr. Electromag. Res. Symp. (PIERS) : Proceedings. - 2016. - P. 3578-3582, DOI 10.1109/PIERS.2016.7735375. - Cited References: 9. - The study was supported by a grant from the Russian Science Foundation (project No. 14-17-00656) (results consigning SMOS and ALOS PALSAR data). ALOS PALSAR data was acquired in framework of the 4th ALOS Research Announcement, project No. 1422. Results consigning GCOM-W1 data were acquired in framework of the Ministry of Education of the Russian Federation No. 2.914.2014/K, and program of II.12.1. SB RAS.
   Перевод заглавия: Температурная зависимость яркостных температур SMOS/MIRAS, GCOM-W1/AMSR2 и сечения рассеяния ALOS/PALSAR на примере арктического тестового участка
РУБ Engineering, Electrical & Electronic
Рубрики:
SURFACE-TEMPERATURE
   BOREAL

Кл.слова (ненормированные):
Atmospheric humidity -- Atmospheric temperature -- Backscattering -- Luminance -- Radar -- Soils -- Temperature -- Temperature distribution -- Backscattering coefficients -- Brightness temperatures -- Empirical relationships -- Radar backscattering -- Radar backscattering coefficient -- Soil surface temperatures -- Soil temperature -- Temperature dependence -- Radar measurement
Аннотация: In this study we investigated correlations between soil temperature and radar backscattering coefficient (HH-pol) measured by the ALOS PALSAR at the frequency of 1.26 GHz, and brightness temperatures measured by SMOS/MIRAS (viewing angle 55°, V-pol) at the same frequency and GCOM-W1/AMSR2 (V-pol) in the range of frequencies from 6.9 GHz to 18.7 GHz near Vaskiny Dachi weather station (70.2955N, 68.8835E) over the territory of the Yamal Peninsula. Empirical relationships between brightness temperature, backscattering coefficient and soil temperature have been found, which allow to predict the soil surface temperature on the test site from GCOM-W1 and ALOS PALSAR measurements.

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Доп.точки доступа:
Muzalevskiy, K. V.; Музалевский, Константин Викторович; Ruzicka, Z.; Ружичка, Зденек; Kosolapova, L. G.; Косолапова, Людмила Георгиевна; Mironov, V. L.; Миронов, Валерий Леонидович; Progress in Electromagnetics Research Symposium(37 ; 2016 ; Aug. ; 8-11 ; Shanghai, China)
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12.


   
    Анализ временного ряда радиометрических данных SMOS за 2010-2011 г. / П. П. Бобров, В. Л. Миронов, Ященко // Девятая открытая Всероссийская конференция «Современные проблемы дистанционного зондирования Земли из космоса» : Сборник тезисов конференции. - Москва : ИКИ РАН, 2011

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Держатели документа:
Институт физики им. Л.В. Киренского СО РАН

Доп.точки доступа:
Бобров, П.П.; Миронов, В.Л.; Ященко, А.С.; "Современные проблемы дистанционного зондирования Земли из космоса", открытая Всероссийская конференция(9 ; 2011 ; нояб. ; 14-18 ; Москва)
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13.


   
    Soil Moisture Measuring Technique in the Baikal Region for Validation of SMOS Mission [Text] / P. Dagurov, A. V. Dmitriev,, V. L. Mironov, T. N. Chimitdorzhiev // Int. Sib. Conf. on Control and Communicat. : Proceedings : IEEE-Institute Electrical and Electronics Engineers, 2011. - P187-189

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Доп.точки доступа:
Dagurov, P.; Dmitriev,, A.V.; Mironov, V.L.; Chimitdorzhiev, T.N.; International Siberian Conference on Control and Communications(9 ; 2011 ; Sep. 15-16 ; Krasnoyarsk)
}
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14.


   
    Statistical error for the moistures retrieved with the SMOS radiobrightness data, as induced by imperfectness of a dielectric model used / Mironov V.L.Kerr Y. [et al.] // Proceedings IGARSS. - 2010. - P. 4430-4432


Доп.точки доступа:
Mironov, V. L.; Миронов Валерий Леонидович; Kerr, Y.; Wigneron, J.-P.; Kosolapova, L. G.; Косолапова Людмила Георгиевна; Demontoux, F.; Duffour, С.
}
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15.


   
    Сопоставление данных спутника SMOS с результатами наземных радиометрических измерений / П. П. Бобров, В. Л. Миронов, О. В. Кондратьева [и др.] // Восьмая откр. Всерос. конф. "Совр. пробл. дистан. зондир. Земли из космоса" : тезисы докл. - Москва : ИКИ РАН, 2010. - С. 313-314

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Держатели документа:
Институт физики им. Л.В. Киренского СО РАН

Доп.точки доступа:
Бобров, П. П.; Миронов, Валерий Леонидович; Mironov, V. L.; Кондратьева, О. В.; Сухинин, А. И.; Швецов, Е. Г.; Ященко, Александр Сергеевич; "Современные проблемы дистанционного зондирования Земли из космоса", открытая Всероссийская конференция(8 ; 2010 ; нояб. ; 15-19 ; Москва); Институт космических исследований РАН
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16.


   
    Error of Moistures Retrieved From еhe Smos Radiobrightnesses, Being Induced by a Soil Dielectric Model Employed / Mironov V.L.Kerr Y. [et al.] // Известия высших учебных заведений. Физика. - 2010. - Т. 53, № 9/3. - P317-320


Доп.точки доступа:
Mironov, V. L.; Миронов Валерий Леонидович; Kerr, Y .; Wigneron, J.-P.; Kosolapova, L.-G.; Demontoux, F.; Duffour, С.
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17.


    Muzalevskiy, K. V.
    Detection of soil freeze/thaw states in the Arctic region based on combined SMAP and AMSR-2 radio brightness observations / K. Muzalevskiy, Z. Ruzicka // Int. J. Remote Sens. - 2020. - Vol. 41, Is. 14. - P. 5046-5061, DOI 10.1080/01431161.2020.1724348. - Cited References: 36. - This study was funded by the SB RAS Program (project No. 0356-2019-0004). . - ISSN 0143-1161. - ISSN 1366-5901
   Перевод заглавия: Идентификация мёрзлого и талого состояния почвы в Арктическом регионе на основе данных наблюдений радиояркостной температуры SMAP и AMSR-2
РУБ Remote Sensing + Imaging Science & Photographic Technology
Рубрики:
L-BAND
   DIELECTRIC MODEL

   TEMPERATURE

   SURFACE

   FROZEN

   SMOS

Аннотация: In this study, a new approach to identify the freeze/thaw states of tundra topsoil was developed based on the polarization ratio index, which was calculated from the reflectivity values of soil. Reflectivity was estimated from radiometric measurements of the SMAP satellite using the values of vertical polarization brightness temperature measured by the AMSR-2 radiometer at 6.9 GHz; this value was used to characterize the effective temperature of the soil. The proposed approach was tested using weather station data on soil surface temperatures for six test sites located in the North Slope of Alaska and the Yamal Peninsula collected from April 2015 to June 2018. The modified polarization ratio index, calculated from values of reflectivity rather than from brightness temperatures, significantly improved the possibility of determining the reference values of the index in the winter and in the summer. During testing, the modified index showed a good correlation between the dates of transition through the threshold level and soil temperature transition through 0ºC, as recorded at meteorological stations.

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Держатели документа:
Russian Acad Sci, Lab Radiophys Earth Remote Sensing, Siberian Branch, Kirensky Inst Phys Fed Res Ctr,KSC, Krasnoyarsk, Russia.

Доп.точки доступа:
Ruzicka, Z.; Ружичка, Зденек; Музалевский, Константин Викторович; SB RAS Program [0356-2019-0004]
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18.


   
    Modelling the passive microwave signature from land surfaces: A review of recent results and application to the L-band SMOS & SMAP soil moisture retrieval algorithms / J. -P. Wigneron [et al.] // Remote Sens. Environ. - 2017. - Vol. 192. - P. 238-262, DOI 10.1016/j.rse.2017.01.024. - Cited References: 187. - This research work was funded by CNES (Centre National d'Etudes Spatiales) through the Science TOSCA (Terre Océan Surfaces Continentales et Atmosphère) program. The authors wish to thank the three anonymous reviewers for their helpful comments and Sylvie Renaud (IMS) for fruitful discusions. . - ISSN 0034-4257
   Перевод заглавия: Моделирование пассивного микроволнового излучения с наземных поверхностей: обзор последних результатов и применение к алгоритмам восстановления влажности почвы космическими аппаратами SMOS и SMAP в L-диапазоне
Кл.слова (ненормированные):
Atmospheric temperature -- Climate models -- Moisture -- Moisture control -- Scanning antennas -- Soils -- Vegetation -- Experimental campaign -- Microwave brightness temperature -- Passive microwave signatures -- Semiempirical models -- Soil moisture retrievals -- Surface soil moisture -- Surface temperatures -- System configurations -- Soil moisture
Аннотация: Two passive microwave missions are currently operating at L-band to monitor surface soil moisture (SM) over continental surfaces. The SMOS sensor, based on an innovative interferometric technology enabling multi-angular signatures of surfaces to be measured, was launched in November 2009. The SMAP sensor, based on a large mesh reflector 6 m in diameter providing a conically scanning antenna beam with a surface incidence angle of 40°, was launched in January of 2015. Over the last decade, an intense scientific activity has focused on the development of the SM retrieval algorithms for the two missions. This activity has relied on many field (mainly tower-based) and airborne experimental campaigns, and since 2010–2011, on the SMOS and Aquarius space-borne L-band observations. It has relied too on the use of numerical, physical and semi-empirical models to simulate the microwave brightness temperature of natural scenes for a variety of scenarios in terms of system configurations (polarization, incidence angle) and soil, vegetation and climate conditions. Key components of the inversion models have been evaluated and new parameterizations of the effects of the surface temperature, soil roughness, soil permittivity, and vegetation extinction and scattering have been developed. Among others, global maps of select radiative transfer parameters have been estimated very recently. Based on this intense activity, improvements of the SMOS and SMAP SM inversion algorithms have been proposed. Some of them have already been implemented, whereas others are currently being investigated. In this paper, we present a review of the significant progress which has been made over the last decade in this field of research with a focus on L-band, and a discussion on possible applications to the SMOS and SMAP soil moisture retrieval approaches. © 2017 Elsevier Inc.

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Держатели документа:
ISPA, INRA Bordeaux, France
USDA, Beltsville, MD, United States
NASA/GSFC, Greenbelt, MD, United States
KULeuven, Heverlee, Belgium
ECMWF, Reading, United Kingdom
Monash University, Australia
University of Rome Tor Vergata, Italy
Kirenski Institute, Krasnoyarsk, Russian Federation
CESBIO, Universite de Toulouse, CNES/CNRS/IRD/UPS, Toulouse, France
Netherlands Space Office (NSO), The Hague, Netherlands
Mississippi State University, MS, United States
Gamma Remote Sensing and WSL-Birmensdorf, Switzerland
NASA/JPL, Pasadena, CA, United States
CARTEL, University of Sherbrooke, Canada
ESA ESRIN, Roma, Italy

Доп.точки доступа:
Wigneron, J. -P.; Jackson, T. J.; O'Neill, P.; De Lannoy, G.; de Rosnay, P.; Walker, J. P.; Ferrazzoli, P.; Mironov, V. L.; Миронов, Валерий Леонидович; Bircher, S.; Grant, J. P.; Kurum, M.; Schwank, M.; Munoz-Sabater, J.; Das, N.; Royer, A.; Al-Yaari, A.; Al Bitar, A.; Fernandez-Moran, R.; Lawrence, H.; Mialon, A.; Parrens, M.; Richaume, P.; Delwart, S.; Kerr, Y.
}
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19.


    Mironov, V. L.
    Spectroscopic Multirelaxation Dielectric Model of Thawed and Frozen Arctic Soils Considering the Dependence on Temperature and Organic Matter Content / V. L. Mironov, I. V. Savin // Izv. Atmos. Ocean. Phys. - 2019. - Vol. 55, Is. 9. - P. 986-995, DOI 10.1134/S0001433819090305. - Cited References: 16 . - ISSN 0001-4338. - ISSN 1555-628X
РУБ Meteorology & Atmospheric Sciences + Oceanography
Рубрики:
SMOS BRIGHTNESS TEMPERATURES
   RELAXATION

   BOREAL

Кл.слова (ненормированные):
dielectric model -- moisture -- temperature -- organic soil -- remote sensing -- wet soil
Аннотация: A temperature spectroscopic dielectric model of moist soils developed on the basis of measurements of six samples of thawed and frozen Arctic soils with different contents of organic matter, from 30 to 90%, is presented. This model allows predicting complex permittivity values of moist soil that are in a good agreement with dielectric measurements. It is applicable in a frequency range from 0.05 to 15 GHz, a temperature range from ‒30° to +25°C, and a moisture range from 0.009 to 1.001 g/g. It can be recommended for use in remote sensing algorithms of moisture and temperature of soil using space radiometric and radar data.

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Публикация на русском языке Миронов, Валерий Леонидович. Спектроскопическая многорелаксационная диэлектрическая модель талых и мерзлых арктических почв, учитывающая зависимости от температуры и содержания органического вещества [Текст] / В. Л. Миронов, И. В. Савин // Исслед. Земли из космоса. - 2019. - № 1. - С. 62-73

Держатели документа:
Russian Acad Sci, Kirensky Inst Phys, Siberian Branch, Krasnoyarsk, Russia.

Доп.точки доступа:
Savin, I. V.; Савин, Игорь Викторович; Миронов, Валерий Леонидович
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20.


   
    Results of the SMOS Data Validation over a Steppe and Forest Area in Siberia [Text] / P. P. Bobrov, O. V. Kondratieva, V. L. Mironov [et al.] // Proc. PIER. - 2011. - P55-58


Доп.точки доступа:
Bobrov, P.P.; Kondratieva, O.V.; Mironov, V.L.; Shvetsov, E.; Sukhinin, A.I.; Yashchenko, A.S.; Progress In Electromagnetics Research Symposium(2011 ; Sept. 12-16 ; Suzhou, China)
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