Aerosol Remote Sensing
This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easi...
Ausführliche Beschreibung
Autor*in: |
Lenoble, Jacqueline [verfasserIn] |
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Format: |
E-Book |
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Sprache: |
Englisch |
Erschienen: |
Berlin Heidelberg: Springer ; 2013 |
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Schlagwörter: | |
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Schlagwörter: |
Systematik: |
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Anmerkung: |
Includes bibliographical references and index |
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Umfang: |
Online-Ressource (XXXVIII, 390 p. 120 illus., 75 illus. in color, digital) |
Weitere Ausgabe: |
Buchausg. u.d.T.: Aerosol remote sensing - Chichester : Praxis Publishing, 2013 |
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Reihe: |
SpringerLink ; Bücher |
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Links: | |
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ISBN: |
978-3-642-17725-5 |
DOI / URN: |
10.1007/978-3-642-17725-5 |
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Katalog-ID: |
1652141650 |
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245 | 1 | 0 | |a Aerosol Remote Sensing |c edited by Jacqueline Lenoble, Lorraine Remer, Didier Tanré |
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505 | 8 | 0 | |a Aerosol Remote Sensing; Contents; List of authors; List of figures; List of tables; List of symbols and acronyms; Foreword; Preface; 1 Introduction; 1.1 What are aerosols?; 1.2 Why are we interested in aerosols?; 1.3 How can we observe aerosols?; 1.4 Objective and organization of the book; 2 Absorption and scattering by molecules and particles; 2.1 Introduction; 2.2 Atmospheric molecular absorption; 2.3 Definitions: Extinction, scattering, absorption, and phase function; 2.4 Polarization and scattering matrix; 2.4.1 The Stokes parameters; 2.4.2 Scattering matrix |
505 | 8 | 0 | |a 2.5 Molecular scattering: Rayleigh theory2.6 Lorenz-Mie theory; 2.7 Nonspherical particles: Theory and measurements; 2.7.1 Numerically-exact and approximate theoretical techniques; 2.7.2 Measurement techniques; 2.8 Illustrative theoretical and laboratory results; 3 Radiative transfer in the Earth's atmosphere; 3.1 Introduction; 3.2 The scalar and the vector equations of transfer; 3.2.1 The scalar equation of radiative transfer; 3.2.2 Formalism for a plane parallel atmosphere; 3.2.3 The vector equation of transfer; 3.2.4 Expansion into Fourier series of azimuth; 3.3 Boundary conditions |
505 | 8 | 0 | |a 3.4 Solution of the radiative transfer problem3.4.1 Successive orders of scattering (OS); 3.4.2 Discrete ordinates (DISORT); 3.4.3 Adding-Doubling method. (de Haan et al.,1987; Stammes et al.,1989; Stammes, 2001)1; 3.4.4 Monte Carlo method; 3.4.5 Approximate methods; 3.5 Radiative transfer codes; 3.6 Examples of aerosol impact; 3.6.1 Ground-based observations; 3.6.2 Spaceborne measurements; 3.7 Summary; 4 Direct observation of the sun for aerosol retrieval; 4.1 Introduction; 4.2 Ground-based sunphotometry; 4.3 Occultation methods; 4.4 Conclusion |
505 | 8 | 0 | |a 5 Determination of aerosol optical properties from inverse methods5.1 Introduction; 5.2 Diffuse and direct solar radiation; 5.2.1 Spectral aerosol optical thickness; 5.2.2 Sky radiance as a function of scattering angle; 5.3 Basic inversion of linear systems; 5.3.1 Direct inversion; 5.3.2 Least-squares solution; 5.3.3 Uniqueness and the nature of a priori constraints; 5.3.4 Measures of smoothness; 5.3.5 Constrained linear inversion; 5.3.6. Selection of the Lagrange multiplier; 5.3.7 Solution covariance matrix |
505 | 8 | 0 | |a 5.4 Inversion of aerosol size distribution from spectral optical thickness measurements5.5 Combination of observations and multi-term LSM solution; 5.6 Non-negativity constraints; 5.7 Smoothness constraints in the case of retrieval of characteristic with nonuniformly-spaced ordinates; 5.8 Inversion of aerosol size distribution and single scattering albedo from spectral optical thickness and sky radiance measure; 6 Passive shortwave remote sensing from the Ground; 6.1 Introduction; 6.2 Early history; 6.3 The Smithsonian program; 6.4 Early turbidity investigations; 6.5 Technological advances |
505 | 8 | 0 | |a 6.6 BAPMoN, the satellite era and prototypes for the modern networks |
520 | |a This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods. | ||
520 | |a This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods | ||
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Aerosol Remote Sensing; Contents; List of authors; List of figures; List of tables; List of symbols and acronyms; Foreword; Preface; 1 Introduction; 1.1 What are aerosols?; 1.2 Why are we interested in aerosols?; 1.3 How can we observe aerosols?; 1.4 Objective and organization of the book; 2 Absorption and scattering by molecules and particles; 2.1 Introduction; 2.2 Atmospheric molecular absorption; 2.3 Definitions: Extinction, scattering, absorption, and phase function; 2.4 Polarization and scattering matrix; 2.4.1 The Stokes parameters; 2.4.2 Scattering matrix 2.5 Molecular scattering: Rayleigh theory2.6 Lorenz-Mie theory; 2.7 Nonspherical particles: Theory and measurements; 2.7.1 Numerically-exact and approximate theoretical techniques; 2.7.2 Measurement techniques; 2.8 Illustrative theoretical and laboratory results; 3 Radiative transfer in the Earth's atmosphere; 3.1 Introduction; 3.2 The scalar and the vector equations of transfer; 3.2.1 The scalar equation of radiative transfer; 3.2.2 Formalism for a plane parallel atmosphere; 3.2.3 The vector equation of transfer; 3.2.4 Expansion into Fourier series of azimuth; 3.3 Boundary conditions 3.4 Solution of the radiative transfer problem3.4.1 Successive orders of scattering (OS); 3.4.2 Discrete ordinates (DISORT); 3.4.3 Adding-Doubling method. (de Haan et al.,1987; Stammes et al.,1989; Stammes, 2001)1; 3.4.4 Monte Carlo method; 3.4.5 Approximate methods; 3.5 Radiative transfer codes; 3.6 Examples of aerosol impact; 3.6.1 Ground-based observations; 3.6.2 Spaceborne measurements; 3.7 Summary; 4 Direct observation of the sun for aerosol retrieval; 4.1 Introduction; 4.2 Ground-based sunphotometry; 4.3 Occultation methods; 4.4 Conclusion 5 Determination of aerosol optical properties from inverse methods5.1 Introduction; 5.2 Diffuse and direct solar radiation; 5.2.1 Spectral aerosol optical thickness; 5.2.2 Sky radiance as a function of scattering angle; 5.3 Basic inversion of linear systems; 5.3.1 Direct inversion; 5.3.2 Least-squares solution; 5.3.3 Uniqueness and the nature of a priori constraints; 5.3.4 Measures of smoothness; 5.3.5 Constrained linear inversion; 5.3.6. Selection of the Lagrange multiplier; 5.3.7 Solution covariance matrix 5.4 Inversion of aerosol size distribution from spectral optical thickness measurements5.5 Combination of observations and multi-term LSM solution; 5.6 Non-negativity constraints; 5.7 Smoothness constraints in the case of retrieval of characteristic with nonuniformly-spaced ordinates; 5.8 Inversion of aerosol size distribution and single scattering albedo from spectral optical thickness and sky radiance measure; 6 Passive shortwave remote sensing from the Ground; 6.1 Introduction; 6.2 Early history; 6.3 The Smithsonian program; 6.4 Early turbidity investigations; 6.5 Technological advances 6.6 BAPMoN, the satellite era and prototypes for the modern networks |
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Aerosol Remote Sensing; Contents; List of authors; List of figures; List of tables; List of symbols and acronyms; Foreword; Preface; 1 Introduction; 1.1 What are aerosols?; 1.2 Why are we interested in aerosols?; 1.3 How can we observe aerosols?; 1.4 Objective and organization of the book; 2 Absorption and scattering by molecules and particles; 2.1 Introduction; 2.2 Atmospheric molecular absorption; 2.3 Definitions: Extinction, scattering, absorption, and phase function; 2.4 Polarization and scattering matrix; 2.4.1 The Stokes parameters; 2.4.2 Scattering matrix 2.5 Molecular scattering: Rayleigh theory2.6 Lorenz-Mie theory; 2.7 Nonspherical particles: Theory and measurements; 2.7.1 Numerically-exact and approximate theoretical techniques; 2.7.2 Measurement techniques; 2.8 Illustrative theoretical and laboratory results; 3 Radiative transfer in the Earth's atmosphere; 3.1 Introduction; 3.2 The scalar and the vector equations of transfer; 3.2.1 The scalar equation of radiative transfer; 3.2.2 Formalism for a plane parallel atmosphere; 3.2.3 The vector equation of transfer; 3.2.4 Expansion into Fourier series of azimuth; 3.3 Boundary conditions 3.4 Solution of the radiative transfer problem3.4.1 Successive orders of scattering (OS); 3.4.2 Discrete ordinates (DISORT); 3.4.3 Adding-Doubling method. (de Haan et al.,1987; Stammes et al.,1989; Stammes, 2001)1; 3.4.4 Monte Carlo method; 3.4.5 Approximate methods; 3.5 Radiative transfer codes; 3.6 Examples of aerosol impact; 3.6.1 Ground-based observations; 3.6.2 Spaceborne measurements; 3.7 Summary; 4 Direct observation of the sun for aerosol retrieval; 4.1 Introduction; 4.2 Ground-based sunphotometry; 4.3 Occultation methods; 4.4 Conclusion 5 Determination of aerosol optical properties from inverse methods5.1 Introduction; 5.2 Diffuse and direct solar radiation; 5.2.1 Spectral aerosol optical thickness; 5.2.2 Sky radiance as a function of scattering angle; 5.3 Basic inversion of linear systems; 5.3.1 Direct inversion; 5.3.2 Least-squares solution; 5.3.3 Uniqueness and the nature of a priori constraints; 5.3.4 Measures of smoothness; 5.3.5 Constrained linear inversion; 5.3.6. Selection of the Lagrange multiplier; 5.3.7 Solution covariance matrix 5.4 Inversion of aerosol size distribution from spectral optical thickness measurements5.5 Combination of observations and multi-term LSM solution; 5.6 Non-negativity constraints; 5.7 Smoothness constraints in the case of retrieval of characteristic with nonuniformly-spaced ordinates; 5.8 Inversion of aerosol size distribution and single scattering albedo from spectral optical thickness and sky radiance measure; 6 Passive shortwave remote sensing from the Ground; 6.1 Introduction; 6.2 Early history; 6.3 The Smithsonian program; 6.4 Early turbidity investigations; 6.5 Technological advances 6.6 BAPMoN, the satellite era and prototypes for the modern networks Lenoble, Jacqueline misc GA102.4.R44 misc G70.39-70.6 rvk ZI 9560 rvk UT 9100 bkl 38.81 misc Geography misc Remote sensing misc Climatic changes misc Earth Sciences gnd Atmosphärisches Aerosol gnd Fernerkundung 2027 ebook Aerosol Remote Sensing |
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This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods. This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods Includes bibliographical references and index |
abstractGer |
This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods. This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods Includes bibliographical references and index |
abstract_unstemmed |
This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods. This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods Includes bibliographical references and index |
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Remer, Lorraine Tanré, Didier |
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9783642177255 978-3-642-17725-5 10.1007/978-3-642-17725-5 doi (DE-627)1652141650 (DE-576)379691604 (DE-599)BSZ379691604 (OCoLC)839973422 (DE-He213)978-3-642-17725-5 DE-627 ger DE-627 rakwb eng XA-DE GA102.4.R44 G70.39-70.6 GA102.4.R44 G70.39-70.6 RGW bicssc TEC036000 bisacsh ZI 9560 rvk (DE-625)rvk/156720: UT 9100 rvk (DE-625)rvk/146864: 38.81 bkl Lenoble, Jacqueline verfasserin aut Aerosol Remote Sensing edited by Jacqueline Lenoble, Lorraine Remer, Didier Tanré Berlin Heidelberg Springer 2013 Online-Ressource (XXXVIII, 390 p. 120 illus., 75 illus. in color, digital) Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier SpringerLink Bücher Includes bibliographical references and index Aerosol Remote Sensing; Contents; List of authors; List of figures; List of tables; List of symbols and acronyms; Foreword; Preface; 1 Introduction; 1.1 What are aerosols?; 1.2 Why are we interested in aerosols?; 1.3 How can we observe aerosols?; 1.4 Objective and organization of the book; 2 Absorption and scattering by molecules and particles; 2.1 Introduction; 2.2 Atmospheric molecular absorption; 2.3 Definitions: Extinction, scattering, absorption, and phase function; 2.4 Polarization and scattering matrix; 2.4.1 The Stokes parameters; 2.4.2 Scattering matrix 2.5 Molecular scattering: Rayleigh theory2.6 Lorenz-Mie theory; 2.7 Nonspherical particles: Theory and measurements; 2.7.1 Numerically-exact and approximate theoretical techniques; 2.7.2 Measurement techniques; 2.8 Illustrative theoretical and laboratory results; 3 Radiative transfer in the Earth's atmosphere; 3.1 Introduction; 3.2 The scalar and the vector equations of transfer; 3.2.1 The scalar equation of radiative transfer; 3.2.2 Formalism for a plane parallel atmosphere; 3.2.3 The vector equation of transfer; 3.2.4 Expansion into Fourier series of azimuth; 3.3 Boundary conditions 3.4 Solution of the radiative transfer problem3.4.1 Successive orders of scattering (OS); 3.4.2 Discrete ordinates (DISORT); 3.4.3 Adding-Doubling method. (de Haan et al.,1987; Stammes et al.,1989; Stammes, 2001)1; 3.4.4 Monte Carlo method; 3.4.5 Approximate methods; 3.5 Radiative transfer codes; 3.6 Examples of aerosol impact; 3.6.1 Ground-based observations; 3.6.2 Spaceborne measurements; 3.7 Summary; 4 Direct observation of the sun for aerosol retrieval; 4.1 Introduction; 4.2 Ground-based sunphotometry; 4.3 Occultation methods; 4.4 Conclusion 5 Determination of aerosol optical properties from inverse methods5.1 Introduction; 5.2 Diffuse and direct solar radiation; 5.2.1 Spectral aerosol optical thickness; 5.2.2 Sky radiance as a function of scattering angle; 5.3 Basic inversion of linear systems; 5.3.1 Direct inversion; 5.3.2 Least-squares solution; 5.3.3 Uniqueness and the nature of a priori constraints; 5.3.4 Measures of smoothness; 5.3.5 Constrained linear inversion; 5.3.6. Selection of the Lagrange multiplier; 5.3.7 Solution covariance matrix 5.4 Inversion of aerosol size distribution from spectral optical thickness measurements5.5 Combination of observations and multi-term LSM solution; 5.6 Non-negativity constraints; 5.7 Smoothness constraints in the case of retrieval of characteristic with nonuniformly-spaced ordinates; 5.8 Inversion of aerosol size distribution and single scattering albedo from spectral optical thickness and sky radiance measure; 6 Passive shortwave remote sensing from the Ground; 6.1 Introduction; 6.2 Early history; 6.3 The Smithsonian program; 6.4 Early turbidity investigations; 6.5 Technological advances 6.6 BAPMoN, the satellite era and prototypes for the modern networks This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods. This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods Geography Remote sensing Climatic changes Earth Sciences Geography Remote sensing Climatic changes s (DE-588)4201505-4 (DE-627)105165417 (DE-576)210142472 Atmosphärisches Aerosol gnd s (DE-588)4016796-3 (DE-627)104213418 (DE-576)208917411 Fernerkundung gnd DE-101 s (DE-588)4201505-4 (DE-627)105165417 (DE-576)210142472 Atmosphärisches Aerosol gnd s (DE-588)4016796-3 (DE-627)104213418 (DE-576)208917411 Fernerkundung gnd (DE-627) Remer, Lorraine oth Tanré, Didier oth 9783642177248 Buchausg. u.d.T. Aerosol remote sensing Chichester : Praxis Publishing, 2013 XXXVIII, 390 S (DE-627)640078427 (DE-576)379920263 9783642177248 3642177247 https://doi.org/10.1007/978-3-642-17725-5 Verlag Volltext http://dx.doi.org/10.1007/978-3-642-17725-5 Resolving-System lizenzpflichtig Volltext https://external.dandelon.com/download/attachments/dandelon/ids/DE0049A34BCD60355DA56C1257BA400529140.pdf V:DE-601 X:AGI pdf/application 2019-02-01 Verlag Inhaltsverzeichnis (DE-627)737548061 ZDB-2-EES 2013 GBV_ILN_40 ISIL_DE-7 SYSFLAG_1 GBV_KXP SSG-OPC-GEO SSG-OPC-GGO GBV_ILN_60 ISIL_DE-705 GBV_ILN_62 ISIL_DE-28 GBV_ILN_65 ISIL_DE-3 GBV_ILN_110 ISIL_DE-Luen4 GBV_ILN_120 ISIL_DE-715 GBV_ILN_285 ISIL_DE-517 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2017 ISIL_DE-576 GBV_ILN_2027 ISIL_DE-105 GBV_ILN_2050 ISIL_DE-Zi4 GBV_ILN_2061 ISIL_DE-520 GBV_ILN_2148 ISIL_DE-950 GBV ExPruef ZI 9560 Anwendungen Technik Bauingenieurwesen Geodäsie, Vermessung Fernerkundung Anwendungen (DE-627)1270741071 (DE-625)rvk/156720: (DE-576)200741071 UT 9100 Aerosole allgemein Physik Physik und Chemie der Atmosphäre - Meteorologie Chemie der Atmosphäre; Aerosole Aerosolpartikel Aerosole allgemein (DE-627)1439033420 (DE-625)rvk/146864: (DE-576)369033426 38.81 Atmosphäre (DE-627)106407058 BO 045F 910.285 40 01 0007 1370665628 OLR-SPRINGER-EES nl xsn 11-03-13 60 01 0705 1371337586 SpringerLink Vervielfältigungen (z.B. 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9783642177255 978-3-642-17725-5 10.1007/978-3-642-17725-5 doi (DE-627)1652141650 (DE-576)379691604 (DE-599)BSZ379691604 (OCoLC)839973422 (DE-He213)978-3-642-17725-5 DE-627 ger DE-627 rakwb eng XA-DE GA102.4.R44 G70.39-70.6 GA102.4.R44 G70.39-70.6 RGW bicssc TEC036000 bisacsh ZI 9560 rvk (DE-625)rvk/156720: UT 9100 rvk (DE-625)rvk/146864: 38.81 bkl Lenoble, Jacqueline verfasserin aut Aerosol Remote Sensing edited by Jacqueline Lenoble, Lorraine Remer, Didier Tanré Berlin Heidelberg Springer 2013 Online-Ressource (XXXVIII, 390 p. 120 illus., 75 illus. in color, digital) Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier SpringerLink Bücher Includes bibliographical references and index Aerosol Remote Sensing; Contents; List of authors; List of figures; List of tables; List of symbols and acronyms; Foreword; Preface; 1 Introduction; 1.1 What are aerosols?; 1.2 Why are we interested in aerosols?; 1.3 How can we observe aerosols?; 1.4 Objective and organization of the book; 2 Absorption and scattering by molecules and particles; 2.1 Introduction; 2.2 Atmospheric molecular absorption; 2.3 Definitions: Extinction, scattering, absorption, and phase function; 2.4 Polarization and scattering matrix; 2.4.1 The Stokes parameters; 2.4.2 Scattering matrix 2.5 Molecular scattering: Rayleigh theory2.6 Lorenz-Mie theory; 2.7 Nonspherical particles: Theory and measurements; 2.7.1 Numerically-exact and approximate theoretical techniques; 2.7.2 Measurement techniques; 2.8 Illustrative theoretical and laboratory results; 3 Radiative transfer in the Earth's atmosphere; 3.1 Introduction; 3.2 The scalar and the vector equations of transfer; 3.2.1 The scalar equation of radiative transfer; 3.2.2 Formalism for a plane parallel atmosphere; 3.2.3 The vector equation of transfer; 3.2.4 Expansion into Fourier series of azimuth; 3.3 Boundary conditions 3.4 Solution of the radiative transfer problem3.4.1 Successive orders of scattering (OS); 3.4.2 Discrete ordinates (DISORT); 3.4.3 Adding-Doubling method. (de Haan et al.,1987; Stammes et al.,1989; Stammes, 2001)1; 3.4.4 Monte Carlo method; 3.4.5 Approximate methods; 3.5 Radiative transfer codes; 3.6 Examples of aerosol impact; 3.6.1 Ground-based observations; 3.6.2 Spaceborne measurements; 3.7 Summary; 4 Direct observation of the sun for aerosol retrieval; 4.1 Introduction; 4.2 Ground-based sunphotometry; 4.3 Occultation methods; 4.4 Conclusion 5 Determination of aerosol optical properties from inverse methods5.1 Introduction; 5.2 Diffuse and direct solar radiation; 5.2.1 Spectral aerosol optical thickness; 5.2.2 Sky radiance as a function of scattering angle; 5.3 Basic inversion of linear systems; 5.3.1 Direct inversion; 5.3.2 Least-squares solution; 5.3.3 Uniqueness and the nature of a priori constraints; 5.3.4 Measures of smoothness; 5.3.5 Constrained linear inversion; 5.3.6. Selection of the Lagrange multiplier; 5.3.7 Solution covariance matrix 5.4 Inversion of aerosol size distribution from spectral optical thickness measurements5.5 Combination of observations and multi-term LSM solution; 5.6 Non-negativity constraints; 5.7 Smoothness constraints in the case of retrieval of characteristic with nonuniformly-spaced ordinates; 5.8 Inversion of aerosol size distribution and single scattering albedo from spectral optical thickness and sky radiance measure; 6 Passive shortwave remote sensing from the Ground; 6.1 Introduction; 6.2 Early history; 6.3 The Smithsonian program; 6.4 Early turbidity investigations; 6.5 Technological advances 6.6 BAPMoN, the satellite era and prototypes for the modern networks This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods. This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods Geography Remote sensing Climatic changes Earth Sciences Geography Remote sensing Climatic changes s (DE-588)4201505-4 (DE-627)105165417 (DE-576)210142472 Atmosphärisches Aerosol gnd s (DE-588)4016796-3 (DE-627)104213418 (DE-576)208917411 Fernerkundung gnd DE-101 s (DE-588)4201505-4 (DE-627)105165417 (DE-576)210142472 Atmosphärisches Aerosol gnd s (DE-588)4016796-3 (DE-627)104213418 (DE-576)208917411 Fernerkundung gnd (DE-627) Remer, Lorraine oth Tanré, Didier oth 9783642177248 Buchausg. u.d.T. Aerosol remote sensing Chichester : Praxis Publishing, 2013 XXXVIII, 390 S (DE-627)640078427 (DE-576)379920263 9783642177248 3642177247 https://doi.org/10.1007/978-3-642-17725-5 Verlag Volltext http://dx.doi.org/10.1007/978-3-642-17725-5 Resolving-System lizenzpflichtig Volltext https://external.dandelon.com/download/attachments/dandelon/ids/DE0049A34BCD60355DA56C1257BA400529140.pdf V:DE-601 X:AGI pdf/application 2019-02-01 Verlag Inhaltsverzeichnis (DE-627)737548061 ZDB-2-EES 2013 GBV_ILN_40 ISIL_DE-7 SYSFLAG_1 GBV_KXP SSG-OPC-GEO SSG-OPC-GGO GBV_ILN_60 ISIL_DE-705 GBV_ILN_62 ISIL_DE-28 GBV_ILN_65 ISIL_DE-3 GBV_ILN_110 ISIL_DE-Luen4 GBV_ILN_120 ISIL_DE-715 GBV_ILN_285 ISIL_DE-517 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2017 ISIL_DE-576 GBV_ILN_2027 ISIL_DE-105 GBV_ILN_2050 ISIL_DE-Zi4 GBV_ILN_2061 ISIL_DE-520 GBV_ILN_2148 ISIL_DE-950 GBV ExPruef ZI 9560 Anwendungen Technik Bauingenieurwesen Geodäsie, Vermessung Fernerkundung Anwendungen (DE-627)1270741071 (DE-625)rvk/156720: (DE-576)200741071 UT 9100 Aerosole allgemein Physik Physik und Chemie der Atmosphäre - Meteorologie Chemie der Atmosphäre; Aerosole Aerosolpartikel Aerosole allgemein (DE-627)1439033420 (DE-625)rvk/146864: (DE-576)369033426 38.81 Atmosphäre (DE-627)106407058 BO 045F 910.285 40 01 0007 1370665628 OLR-SPRINGER-EES nl xsn 11-03-13 60 01 0705 1371337586 SpringerLink Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Nur für Angehörige der HSU: Volltextzugang von außerhalb des Campus mit Anmeldung über Shibboleth mit Ihrer Bibliothekskennung z 15-03-13 62 01 0028 1371390185 OLR-EES Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. z 15-03-13 65 01 0003 165567045X 03 --%%-- ebook --%%-- --%%-- OLR-SEB-ZDB-2-EES Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. k3o 02-01-17 110 01 3110 4321182859 00 --%%-- --%%-- s --%%-- OLR-SEB Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. z 12-05-23 120 01 0715 1371379610 OLR-ESP Campusweiter Zugriff (Universität Oldenburg). - Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden. z 15-03-13 120 02 0715 1753940222 00 --%%-- --%%-- g --%%-- alma ww z 22-02-18 120 03 0715 3580214292 00 --%%-- --%%-- g --%%-- alma ww z 23-01-20 285 01 0517 1371388334 00 --%%-- --%%-- s --%%-- OLR-ESP-EES Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. z 15-03-13 370 01 4370 137132901X olr-springer Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. i z 15-03-13 2017 01 DE-576 3356765612 00 --%%-- --%%-- --%%-- n Besitznachweis BSZ nur für Dateneinspielung, keine echte Lizenz vorhanden l01 17-02-13 2027 01 DE-105 3356765639 00 --%%-- --%%-- n --%%-- Campuslizenz l01 17-02-13 2050 01 DE-Zi4 3356765647 00 --%%-- --%%-- n --%%-- Elektronischer Volltext - Campuslizenz l01 17-02-13 2061 01 DE-520 3356765655 00 --%%-- eBook Springer n --%%-- eBook, Volltext nur im Campusnetz l01 17-02-13 2148 01 DE-950 3356765663 00 --%%-- eBook Springer --%%-- n Elektronischer Volltext - Campuslizenz l01 06-03-13 40 01 0007 Volltext, Campuszugriff http://dx.doi.org/10.1007/978-3-642-17725-5 40 01 0007 Volltext, Externer Zugriff http://han.sub.uni-goettingen.de/han/Springer-eBook-EarthEnvironmentalScience/dx.doi.org/10.1007/978-3-642-17725-5 40 01 0007 Dieser Titel ist Teil einer Datenbank http://www.bibliothek.uni-regensburg.de/dbinfo/frontdoor.php?titel_id=10159&bibid=SUBGO 60 01 0705 Volltextzugang Campus https://doi.org/10.1007/978-3-642-17725-5 62 01 0028 https://doi.org/10.1007/978-3-642-17725-5 65 01 0003 Volltextzugang Campus https://doi.org/10.1007/978-3-642-17725-5 110 01 3110 https://doi.org/10.1007/978-3-642-17725-5 120 01 0715 http://dx.doi.org/10.1007/978-3-642-17725-5 120 02 0715 http://49gbv-uob-primo.hosted.exlibrisgroup.com/openurl/49GBV_UOB/UOB_services_page?u.ignore_date_coverage=true&rft.mms_id=991016162842503501 120 03 0715 http://49gbv-uob-primo.hosted.exlibrisgroup.com/openurl/49GBV_UOB/UOB_services_page?u.ignore_date_coverage=true&rft.mms_id=991016162842503501 285 01 0517 E-books (Springer) https://doi.org/10.1007/978-3-642-17725-5 370 01 4370 E-Book: Zugriff im HCU-Netz. Zugriff von außerhalb nur für HCU-Angehörige möglich https://doi.org/10.1007/978-3-642-17725-5 2050 01 DE-Zi4 http://dx.doi.org/10.1007/978-3-642-17725-5 2061 01 DE-520 http://dx.doi.org/10.1007/978-3-642-17725-5 2148 01 DE-950 http://dx.doi.org/10.1007/978-3-642-17725-5 2027 01 DE-105 00 s ebook 40 00 DE-7 00 (DE-627)745821138 TVA 230 Aerosole {Meteorologie} 40 00 DE-7 01 (DE-627)623607298 TUA 700 Verfahren zur Untersuchung der freien Atmosphäre {Meteorologie} 40 00 DE-7 02 (DE-627)62360731X TUA 850 Satellitenmeteorologie 40 00 DE-7 03 (DE-627)623607352 TUD 000 Meteorologische Instrumente 120 00 DE-715 99 ww 285 00 DE-517 00 ZI 9560 285 00 DE-517 00 UT 9100 120 01 0715 24291658 120 01 0715 YH 2020 40 01 0007 OLR-SPRINGER-EES 60 01 0705 SpringerLink 62 01 0028 OLR-EES 65 01 0003 OLR-SEB-ZDB-2-EES 110 01 3110 OLR-SEB 120 01 0715 OLR-ESP 120 02 0715 alma 120 03 0715 alma 285 01 0517 OLR-ESP-EES 370 01 4370 olr-springer |
allfields_unstemmed |
9783642177255 978-3-642-17725-5 10.1007/978-3-642-17725-5 doi (DE-627)1652141650 (DE-576)379691604 (DE-599)BSZ379691604 (OCoLC)839973422 (DE-He213)978-3-642-17725-5 DE-627 ger DE-627 rakwb eng XA-DE GA102.4.R44 G70.39-70.6 GA102.4.R44 G70.39-70.6 RGW bicssc TEC036000 bisacsh ZI 9560 rvk (DE-625)rvk/156720: UT 9100 rvk (DE-625)rvk/146864: 38.81 bkl Lenoble, Jacqueline verfasserin aut Aerosol Remote Sensing edited by Jacqueline Lenoble, Lorraine Remer, Didier Tanré Berlin Heidelberg Springer 2013 Online-Ressource (XXXVIII, 390 p. 120 illus., 75 illus. in color, digital) Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier SpringerLink Bücher Includes bibliographical references and index Aerosol Remote Sensing; Contents; List of authors; List of figures; List of tables; List of symbols and acronyms; Foreword; Preface; 1 Introduction; 1.1 What are aerosols?; 1.2 Why are we interested in aerosols?; 1.3 How can we observe aerosols?; 1.4 Objective and organization of the book; 2 Absorption and scattering by molecules and particles; 2.1 Introduction; 2.2 Atmospheric molecular absorption; 2.3 Definitions: Extinction, scattering, absorption, and phase function; 2.4 Polarization and scattering matrix; 2.4.1 The Stokes parameters; 2.4.2 Scattering matrix 2.5 Molecular scattering: Rayleigh theory2.6 Lorenz-Mie theory; 2.7 Nonspherical particles: Theory and measurements; 2.7.1 Numerically-exact and approximate theoretical techniques; 2.7.2 Measurement techniques; 2.8 Illustrative theoretical and laboratory results; 3 Radiative transfer in the Earth's atmosphere; 3.1 Introduction; 3.2 The scalar and the vector equations of transfer; 3.2.1 The scalar equation of radiative transfer; 3.2.2 Formalism for a plane parallel atmosphere; 3.2.3 The vector equation of transfer; 3.2.4 Expansion into Fourier series of azimuth; 3.3 Boundary conditions 3.4 Solution of the radiative transfer problem3.4.1 Successive orders of scattering (OS); 3.4.2 Discrete ordinates (DISORT); 3.4.3 Adding-Doubling method. (de Haan et al.,1987; Stammes et al.,1989; Stammes, 2001)1; 3.4.4 Monte Carlo method; 3.4.5 Approximate methods; 3.5 Radiative transfer codes; 3.6 Examples of aerosol impact; 3.6.1 Ground-based observations; 3.6.2 Spaceborne measurements; 3.7 Summary; 4 Direct observation of the sun for aerosol retrieval; 4.1 Introduction; 4.2 Ground-based sunphotometry; 4.3 Occultation methods; 4.4 Conclusion 5 Determination of aerosol optical properties from inverse methods5.1 Introduction; 5.2 Diffuse and direct solar radiation; 5.2.1 Spectral aerosol optical thickness; 5.2.2 Sky radiance as a function of scattering angle; 5.3 Basic inversion of linear systems; 5.3.1 Direct inversion; 5.3.2 Least-squares solution; 5.3.3 Uniqueness and the nature of a priori constraints; 5.3.4 Measures of smoothness; 5.3.5 Constrained linear inversion; 5.3.6. Selection of the Lagrange multiplier; 5.3.7 Solution covariance matrix 5.4 Inversion of aerosol size distribution from spectral optical thickness measurements5.5 Combination of observations and multi-term LSM solution; 5.6 Non-negativity constraints; 5.7 Smoothness constraints in the case of retrieval of characteristic with nonuniformly-spaced ordinates; 5.8 Inversion of aerosol size distribution and single scattering albedo from spectral optical thickness and sky radiance measure; 6 Passive shortwave remote sensing from the Ground; 6.1 Introduction; 6.2 Early history; 6.3 The Smithsonian program; 6.4 Early turbidity investigations; 6.5 Technological advances 6.6 BAPMoN, the satellite era and prototypes for the modern networks This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods. This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods Geography Remote sensing Climatic changes Earth Sciences Geography Remote sensing Climatic changes s (DE-588)4201505-4 (DE-627)105165417 (DE-576)210142472 Atmosphärisches Aerosol gnd s (DE-588)4016796-3 (DE-627)104213418 (DE-576)208917411 Fernerkundung gnd DE-101 s (DE-588)4201505-4 (DE-627)105165417 (DE-576)210142472 Atmosphärisches Aerosol gnd s (DE-588)4016796-3 (DE-627)104213418 (DE-576)208917411 Fernerkundung gnd (DE-627) Remer, Lorraine oth Tanré, Didier oth 9783642177248 Buchausg. u.d.T. Aerosol remote sensing Chichester : Praxis Publishing, 2013 XXXVIII, 390 S (DE-627)640078427 (DE-576)379920263 9783642177248 3642177247 https://doi.org/10.1007/978-3-642-17725-5 Verlag Volltext http://dx.doi.org/10.1007/978-3-642-17725-5 Resolving-System lizenzpflichtig Volltext https://external.dandelon.com/download/attachments/dandelon/ids/DE0049A34BCD60355DA56C1257BA400529140.pdf V:DE-601 X:AGI pdf/application 2019-02-01 Verlag Inhaltsverzeichnis (DE-627)737548061 ZDB-2-EES 2013 GBV_ILN_40 ISIL_DE-7 SYSFLAG_1 GBV_KXP SSG-OPC-GEO SSG-OPC-GGO GBV_ILN_60 ISIL_DE-705 GBV_ILN_62 ISIL_DE-28 GBV_ILN_65 ISIL_DE-3 GBV_ILN_110 ISIL_DE-Luen4 GBV_ILN_120 ISIL_DE-715 GBV_ILN_285 ISIL_DE-517 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2017 ISIL_DE-576 GBV_ILN_2027 ISIL_DE-105 GBV_ILN_2050 ISIL_DE-Zi4 GBV_ILN_2061 ISIL_DE-520 GBV_ILN_2148 ISIL_DE-950 GBV ExPruef ZI 9560 Anwendungen Technik Bauingenieurwesen Geodäsie, Vermessung Fernerkundung Anwendungen (DE-627)1270741071 (DE-625)rvk/156720: (DE-576)200741071 UT 9100 Aerosole allgemein Physik Physik und Chemie der Atmosphäre - Meteorologie Chemie der Atmosphäre; Aerosole Aerosolpartikel Aerosole allgemein (DE-627)1439033420 (DE-625)rvk/146864: (DE-576)369033426 38.81 Atmosphäre (DE-627)106407058 BO 045F 910.285 40 01 0007 1370665628 OLR-SPRINGER-EES nl xsn 11-03-13 60 01 0705 1371337586 SpringerLink Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Nur für Angehörige der HSU: Volltextzugang von außerhalb des Campus mit Anmeldung über Shibboleth mit Ihrer Bibliothekskennung z 15-03-13 62 01 0028 1371390185 OLR-EES Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. z 15-03-13 65 01 0003 165567045X 03 --%%-- ebook --%%-- --%%-- OLR-SEB-ZDB-2-EES Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. k3o 02-01-17 110 01 3110 4321182859 00 --%%-- --%%-- s --%%-- OLR-SEB Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. z 12-05-23 120 01 0715 1371379610 OLR-ESP Campusweiter Zugriff (Universität Oldenburg). - Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden. z 15-03-13 120 02 0715 1753940222 00 --%%-- --%%-- g --%%-- alma ww z 22-02-18 120 03 0715 3580214292 00 --%%-- --%%-- g --%%-- alma ww z 23-01-20 285 01 0517 1371388334 00 --%%-- --%%-- s --%%-- OLR-ESP-EES Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. z 15-03-13 370 01 4370 137132901X olr-springer Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. i z 15-03-13 2017 01 DE-576 3356765612 00 --%%-- --%%-- --%%-- n Besitznachweis BSZ nur für Dateneinspielung, keine echte Lizenz vorhanden l01 17-02-13 2027 01 DE-105 3356765639 00 --%%-- --%%-- n --%%-- Campuslizenz l01 17-02-13 2050 01 DE-Zi4 3356765647 00 --%%-- --%%-- n --%%-- Elektronischer Volltext - Campuslizenz l01 17-02-13 2061 01 DE-520 3356765655 00 --%%-- eBook Springer n --%%-- eBook, Volltext nur im Campusnetz l01 17-02-13 2148 01 DE-950 3356765663 00 --%%-- eBook Springer --%%-- n Elektronischer Volltext - Campuslizenz l01 06-03-13 40 01 0007 Volltext, Campuszugriff http://dx.doi.org/10.1007/978-3-642-17725-5 40 01 0007 Volltext, Externer Zugriff http://han.sub.uni-goettingen.de/han/Springer-eBook-EarthEnvironmentalScience/dx.doi.org/10.1007/978-3-642-17725-5 40 01 0007 Dieser Titel ist Teil einer Datenbank http://www.bibliothek.uni-regensburg.de/dbinfo/frontdoor.php?titel_id=10159&bibid=SUBGO 60 01 0705 Volltextzugang Campus https://doi.org/10.1007/978-3-642-17725-5 62 01 0028 https://doi.org/10.1007/978-3-642-17725-5 65 01 0003 Volltextzugang Campus https://doi.org/10.1007/978-3-642-17725-5 110 01 3110 https://doi.org/10.1007/978-3-642-17725-5 120 01 0715 http://dx.doi.org/10.1007/978-3-642-17725-5 120 02 0715 http://49gbv-uob-primo.hosted.exlibrisgroup.com/openurl/49GBV_UOB/UOB_services_page?u.ignore_date_coverage=true&rft.mms_id=991016162842503501 120 03 0715 http://49gbv-uob-primo.hosted.exlibrisgroup.com/openurl/49GBV_UOB/UOB_services_page?u.ignore_date_coverage=true&rft.mms_id=991016162842503501 285 01 0517 E-books (Springer) https://doi.org/10.1007/978-3-642-17725-5 370 01 4370 E-Book: Zugriff im HCU-Netz. Zugriff von außerhalb nur für HCU-Angehörige möglich https://doi.org/10.1007/978-3-642-17725-5 2050 01 DE-Zi4 http://dx.doi.org/10.1007/978-3-642-17725-5 2061 01 DE-520 http://dx.doi.org/10.1007/978-3-642-17725-5 2148 01 DE-950 http://dx.doi.org/10.1007/978-3-642-17725-5 2027 01 DE-105 00 s ebook 40 00 DE-7 00 (DE-627)745821138 TVA 230 Aerosole {Meteorologie} 40 00 DE-7 01 (DE-627)623607298 TUA 700 Verfahren zur Untersuchung der freien Atmosphäre {Meteorologie} 40 00 DE-7 02 (DE-627)62360731X TUA 850 Satellitenmeteorologie 40 00 DE-7 03 (DE-627)623607352 TUD 000 Meteorologische Instrumente 120 00 DE-715 99 ww 285 00 DE-517 00 ZI 9560 285 00 DE-517 00 UT 9100 120 01 0715 24291658 120 01 0715 YH 2020 40 01 0007 OLR-SPRINGER-EES 60 01 0705 SpringerLink 62 01 0028 OLR-EES 65 01 0003 OLR-SEB-ZDB-2-EES 110 01 3110 OLR-SEB 120 01 0715 OLR-ESP 120 02 0715 alma 120 03 0715 alma 285 01 0517 OLR-ESP-EES 370 01 4370 olr-springer |
allfieldsGer |
9783642177255 978-3-642-17725-5 10.1007/978-3-642-17725-5 doi (DE-627)1652141650 (DE-576)379691604 (DE-599)BSZ379691604 (OCoLC)839973422 (DE-He213)978-3-642-17725-5 DE-627 ger DE-627 rakwb eng XA-DE GA102.4.R44 G70.39-70.6 GA102.4.R44 G70.39-70.6 RGW bicssc TEC036000 bisacsh ZI 9560 rvk (DE-625)rvk/156720: UT 9100 rvk (DE-625)rvk/146864: 38.81 bkl Lenoble, Jacqueline verfasserin aut Aerosol Remote Sensing edited by Jacqueline Lenoble, Lorraine Remer, Didier Tanré Berlin Heidelberg Springer 2013 Online-Ressource (XXXVIII, 390 p. 120 illus., 75 illus. in color, digital) Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier SpringerLink Bücher Includes bibliographical references and index Aerosol Remote Sensing; Contents; List of authors; List of figures; List of tables; List of symbols and acronyms; Foreword; Preface; 1 Introduction; 1.1 What are aerosols?; 1.2 Why are we interested in aerosols?; 1.3 How can we observe aerosols?; 1.4 Objective and organization of the book; 2 Absorption and scattering by molecules and particles; 2.1 Introduction; 2.2 Atmospheric molecular absorption; 2.3 Definitions: Extinction, scattering, absorption, and phase function; 2.4 Polarization and scattering matrix; 2.4.1 The Stokes parameters; 2.4.2 Scattering matrix 2.5 Molecular scattering: Rayleigh theory2.6 Lorenz-Mie theory; 2.7 Nonspherical particles: Theory and measurements; 2.7.1 Numerically-exact and approximate theoretical techniques; 2.7.2 Measurement techniques; 2.8 Illustrative theoretical and laboratory results; 3 Radiative transfer in the Earth's atmosphere; 3.1 Introduction; 3.2 The scalar and the vector equations of transfer; 3.2.1 The scalar equation of radiative transfer; 3.2.2 Formalism for a plane parallel atmosphere; 3.2.3 The vector equation of transfer; 3.2.4 Expansion into Fourier series of azimuth; 3.3 Boundary conditions 3.4 Solution of the radiative transfer problem3.4.1 Successive orders of scattering (OS); 3.4.2 Discrete ordinates (DISORT); 3.4.3 Adding-Doubling method. (de Haan et al.,1987; Stammes et al.,1989; Stammes, 2001)1; 3.4.4 Monte Carlo method; 3.4.5 Approximate methods; 3.5 Radiative transfer codes; 3.6 Examples of aerosol impact; 3.6.1 Ground-based observations; 3.6.2 Spaceborne measurements; 3.7 Summary; 4 Direct observation of the sun for aerosol retrieval; 4.1 Introduction; 4.2 Ground-based sunphotometry; 4.3 Occultation methods; 4.4 Conclusion 5 Determination of aerosol optical properties from inverse methods5.1 Introduction; 5.2 Diffuse and direct solar radiation; 5.2.1 Spectral aerosol optical thickness; 5.2.2 Sky radiance as a function of scattering angle; 5.3 Basic inversion of linear systems; 5.3.1 Direct inversion; 5.3.2 Least-squares solution; 5.3.3 Uniqueness and the nature of a priori constraints; 5.3.4 Measures of smoothness; 5.3.5 Constrained linear inversion; 5.3.6. Selection of the Lagrange multiplier; 5.3.7 Solution covariance matrix 5.4 Inversion of aerosol size distribution from spectral optical thickness measurements5.5 Combination of observations and multi-term LSM solution; 5.6 Non-negativity constraints; 5.7 Smoothness constraints in the case of retrieval of characteristic with nonuniformly-spaced ordinates; 5.8 Inversion of aerosol size distribution and single scattering albedo from spectral optical thickness and sky radiance measure; 6 Passive shortwave remote sensing from the Ground; 6.1 Introduction; 6.2 Early history; 6.3 The Smithsonian program; 6.4 Early turbidity investigations; 6.5 Technological advances 6.6 BAPMoN, the satellite era and prototypes for the modern networks This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods. This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods Geography Remote sensing Climatic changes Earth Sciences Geography Remote sensing Climatic changes s (DE-588)4201505-4 (DE-627)105165417 (DE-576)210142472 Atmosphärisches Aerosol gnd s (DE-588)4016796-3 (DE-627)104213418 (DE-576)208917411 Fernerkundung gnd DE-101 s (DE-588)4201505-4 (DE-627)105165417 (DE-576)210142472 Atmosphärisches Aerosol gnd s (DE-588)4016796-3 (DE-627)104213418 (DE-576)208917411 Fernerkundung gnd (DE-627) Remer, Lorraine oth Tanré, Didier oth 9783642177248 Buchausg. u.d.T. 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9783642177255 978-3-642-17725-5 10.1007/978-3-642-17725-5 doi (DE-627)1652141650 (DE-576)379691604 (DE-599)BSZ379691604 (OCoLC)839973422 (DE-He213)978-3-642-17725-5 DE-627 ger DE-627 rakwb eng XA-DE GA102.4.R44 G70.39-70.6 GA102.4.R44 G70.39-70.6 RGW bicssc TEC036000 bisacsh ZI 9560 rvk (DE-625)rvk/156720: UT 9100 rvk (DE-625)rvk/146864: 38.81 bkl Lenoble, Jacqueline verfasserin aut Aerosol Remote Sensing edited by Jacqueline Lenoble, Lorraine Remer, Didier Tanré Berlin Heidelberg Springer 2013 Online-Ressource (XXXVIII, 390 p. 120 illus., 75 illus. in color, digital) Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier SpringerLink Bücher Includes bibliographical references and index Aerosol Remote Sensing; Contents; List of authors; List of figures; List of tables; List of symbols and acronyms; Foreword; Preface; 1 Introduction; 1.1 What are aerosols?; 1.2 Why are we interested in aerosols?; 1.3 How can we observe aerosols?; 1.4 Objective and organization of the book; 2 Absorption and scattering by molecules and particles; 2.1 Introduction; 2.2 Atmospheric molecular absorption; 2.3 Definitions: Extinction, scattering, absorption, and phase function; 2.4 Polarization and scattering matrix; 2.4.1 The Stokes parameters; 2.4.2 Scattering matrix 2.5 Molecular scattering: Rayleigh theory2.6 Lorenz-Mie theory; 2.7 Nonspherical particles: Theory and measurements; 2.7.1 Numerically-exact and approximate theoretical techniques; 2.7.2 Measurement techniques; 2.8 Illustrative theoretical and laboratory results; 3 Radiative transfer in the Earth's atmosphere; 3.1 Introduction; 3.2 The scalar and the vector equations of transfer; 3.2.1 The scalar equation of radiative transfer; 3.2.2 Formalism for a plane parallel atmosphere; 3.2.3 The vector equation of transfer; 3.2.4 Expansion into Fourier series of azimuth; 3.3 Boundary conditions 3.4 Solution of the radiative transfer problem3.4.1 Successive orders of scattering (OS); 3.4.2 Discrete ordinates (DISORT); 3.4.3 Adding-Doubling method. (de Haan et al.,1987; Stammes et al.,1989; Stammes, 2001)1; 3.4.4 Monte Carlo method; 3.4.5 Approximate methods; 3.5 Radiative transfer codes; 3.6 Examples of aerosol impact; 3.6.1 Ground-based observations; 3.6.2 Spaceborne measurements; 3.7 Summary; 4 Direct observation of the sun for aerosol retrieval; 4.1 Introduction; 4.2 Ground-based sunphotometry; 4.3 Occultation methods; 4.4 Conclusion 5 Determination of aerosol optical properties from inverse methods5.1 Introduction; 5.2 Diffuse and direct solar radiation; 5.2.1 Spectral aerosol optical thickness; 5.2.2 Sky radiance as a function of scattering angle; 5.3 Basic inversion of linear systems; 5.3.1 Direct inversion; 5.3.2 Least-squares solution; 5.3.3 Uniqueness and the nature of a priori constraints; 5.3.4 Measures of smoothness; 5.3.5 Constrained linear inversion; 5.3.6. Selection of the Lagrange multiplier; 5.3.7 Solution covariance matrix 5.4 Inversion of aerosol size distribution from spectral optical thickness measurements5.5 Combination of observations and multi-term LSM solution; 5.6 Non-negativity constraints; 5.7 Smoothness constraints in the case of retrieval of characteristic with nonuniformly-spaced ordinates; 5.8 Inversion of aerosol size distribution and single scattering albedo from spectral optical thickness and sky radiance measure; 6 Passive shortwave remote sensing from the Ground; 6.1 Introduction; 6.2 Early history; 6.3 The Smithsonian program; 6.4 Early turbidity investigations; 6.5 Technological advances 6.6 BAPMoN, the satellite era and prototypes for the modern networks This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods. This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods Geography Remote sensing Climatic changes Earth Sciences Geography Remote sensing Climatic changes s (DE-588)4201505-4 (DE-627)105165417 (DE-576)210142472 Atmosphärisches Aerosol gnd s (DE-588)4016796-3 (DE-627)104213418 (DE-576)208917411 Fernerkundung gnd DE-101 s (DE-588)4201505-4 (DE-627)105165417 (DE-576)210142472 Atmosphärisches Aerosol gnd s (DE-588)4016796-3 (DE-627)104213418 (DE-576)208917411 Fernerkundung gnd (DE-627) Remer, Lorraine oth Tanré, Didier oth 9783642177248 Buchausg. u.d.T. Aerosol remote sensing Chichester : Praxis Publishing, 2013 XXXVIII, 390 S (DE-627)640078427 (DE-576)379920263 9783642177248 3642177247 https://doi.org/10.1007/978-3-642-17725-5 Verlag Volltext http://dx.doi.org/10.1007/978-3-642-17725-5 Resolving-System lizenzpflichtig Volltext https://external.dandelon.com/download/attachments/dandelon/ids/DE0049A34BCD60355DA56C1257BA400529140.pdf V:DE-601 X:AGI pdf/application 2019-02-01 Verlag Inhaltsverzeichnis (DE-627)737548061 ZDB-2-EES 2013 GBV_ILN_40 ISIL_DE-7 SYSFLAG_1 GBV_KXP SSG-OPC-GEO SSG-OPC-GGO GBV_ILN_60 ISIL_DE-705 GBV_ILN_62 ISIL_DE-28 GBV_ILN_65 ISIL_DE-3 GBV_ILN_110 ISIL_DE-Luen4 GBV_ILN_120 ISIL_DE-715 GBV_ILN_285 ISIL_DE-517 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2017 ISIL_DE-576 GBV_ILN_2027 ISIL_DE-105 GBV_ILN_2050 ISIL_DE-Zi4 GBV_ILN_2061 ISIL_DE-520 GBV_ILN_2148 ISIL_DE-950 GBV ExPruef ZI 9560 Anwendungen Technik Bauingenieurwesen Geodäsie, Vermessung Fernerkundung Anwendungen (DE-627)1270741071 (DE-625)rvk/156720: (DE-576)200741071 UT 9100 Aerosole allgemein Physik Physik und Chemie der Atmosphäre - Meteorologie Chemie der Atmosphäre; Aerosole Aerosolpartikel Aerosole allgemein (DE-627)1439033420 (DE-625)rvk/146864: (DE-576)369033426 38.81 Atmosphäre (DE-627)106407058 BO 045F 910.285 40 01 0007 1370665628 OLR-SPRINGER-EES nl xsn 11-03-13 60 01 0705 1371337586 SpringerLink Vervielfältigungen (z.B. 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Lenoble, Jacqueline |
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Aerosol Remote Sensing |
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10.1007/978-3-642-17725-5 |
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up_date |
2024-07-15T23:55:30.455Z |
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Jacqueline Lenoble, Lorraine Remer and Didier Tanre (Editors) Aerosol Remote Sensing Published in association with 4y Springer Praxis Publishing Chichester, UK PR Contents List of authors xiii List of figures xv List of tables List of symbols and acronyms xxiii xxv Foreword xxxiii Preface xxxvii … Introduction Jacqueline Lenoble, Lorraine A. Remer, and Didier Tanre … What are aerosols? … Why are we interested in aerosols? … How can we observe aerosols? … Objective and organization of the book … Absorption and scattering by molecules and small particles Jacqueline Lenoble, Michael I. Mishchenko, and Maurice Herman … Introduction … Atmospheric molecular absorption … Definitions: Extinction, scattering, absorption, and phase function … Polarization and scattering matrix … The Stokes parameters … Scattering matrix … Molecular scattering: Rayleigh theory … Lorentz-Mie theory … viii Contents … Nonspherical particles: Theory and measurements … Numerically-exact and approximate theoretical techniques … Measurement techniques Illustrative theoretical and laboratory results Radiative transfer in the Earth's atmosphere Jacqueline Lenoble, and Maurice Herman … Introduction … The scalar and the vector equations of transfer … The scalar equation of radiative transfer … Formalism for a plane parallel atmosphere … The vector equation of transfer … Expansion into Fourier series of azimuth … Boundary conditions … Solution of the radiative transfer problem … Successive orders of scattering (OS) … Discrete ordinates (DISORT) … Adding-Doubling method … Monte Carlo method … Approximate methods … Radiative transfer codes … Examples of aerosol impact … Ground-based observations … Spaceborne measurements … Summary Direct observation of the sun for aerosol retrieval Colette Brogniez, Jacqueline Lenoble, and Glenn Shaw … Introduction … Ground-based sunphotometry … Occultation methods … Conclusion '. Determination of aerosol optical properties from inverse methods Michael D. King, and Oleg Dubovik … Introduction … Diffuse and direct solar radiation … Spectral aerosol optical thickness … Sky radiance as a function of scattering angle … Basic inversion of linear systems … Direct inversion … Least-squares solution … Uniqueness and the nature of a priori constraints … Measures of smoothness … Constrained linear inversion … Contents … Selection of the Lagrange multiplier … Solution covariance matrix Inversion of aerosol size distribution from spectral optical thickness measurements Combination of observations and multi-term LSM solution Non-negativity constraints Smoothness constraints in the case of retrieval of characteristics with nonuniformly spaced ordinates Inversion of aerosol size distribution and single scattering albedo from spectral optical thickness and sky radiance measurements Passive shortwave remote sensing from the ground Glenn E. Shaw, Brent N. Holben, and Lorraine A. Remer … Introduction … Early history … The Smithsonian program … Early turbidity measurements … Technological advances … BAPMoN, the satellite era and prototypes for the modern networks … AERONET and other modern networks … Aerosol inversions … Examples of science from ground-based remote sensing … Summary … History of passive remote sensing of aerosol from space … Omar Torres, and Lorraine A. Remer … First observations from space … Measuring stratospheric aerosols using solar occultation measurements … El Chichon and Pinatubo volcanic eruptions … Total column aerosol retrieval from reflected visible and near IR observations … Retrieval of aerosols over the oceans using the dark target approach … Retrieval of aerosols over land using the dark target approach … Retrieval of aerosols over land using the adjacency effect … Aerosol remote sensing using near UV observations … The UV Aerosol Index … Aerosol Index properties … Benchmark aerosol events … Application to other sensors … Quantitative use of near-UV observations … Multiangle, polarizationn and geosynchronous capabilities … Multiangle … Polarization … Retrievals from geosynchronous satellites … Summary … x Contents … Recent instruments and algorithms for passive shortwave remote sensing … Lorraine A. Remer, Colette Brogniez, Brian Cairns, N. Christina Hsu, Ralph Kahn, Piet Stammes, Didier Tanre, and Omar Torres … Introduction … SAGE(s)-POAM(s): Occultation instruments … Mission and instrument description … Algorithm description … Size distribution retrieval and derived products … MODIS/AQUA/TERRA … Mission and instrument description … Algorithm description … Data use considerations … MISR/TERRA … Mission and instrument description … Algorithm description … POLDER/PARASOL … Mission and instrument description … Algorithm description … Advanced POLDER retrieval … OMI-Aura … Mission and instrument descriptions … Algorithm description … GOME-SCIAMACHY … Instrument description … Algorithm description and limitations … APS … Instrument description … Aerosol retrieval algorithm description and limitations … Advances in remote sensing of aerosol using modern sensors … Aerosol retrieval overclouds … The MAIAC retrieval … Single scattering albedo using critical reflectance methods … Aerosol plume heights … Advances using combination of sensors or sensors and models … Summary … Longwave passive remote sensing … Clemence Pierangelo, with contributions from Alain Chedin, and Michel Legrand … Introduction … Aerosol optical properties in the longwave domain … On the relative impact of aerosol species in the infrared … Effect of refractive indices (or composition) … Effect of size distribution … Effect of particle shape … Summary … Contents … The radiative transfer equation in the thermal infrared range … The RTE in an aerosol-free atmosphere … The data required as input for a gaseous atmosphere … The particular case of RTE in an atmosphere containing nonscattering aerosol … The RTE with scattering processes … Solving the RTE … Aerosol effect on the longwave spectrum … Inversion principles … Useful spectral domain … Preliminary steps … Detecting aerosols … Direct retrieval … Physical retrieval … Look-up table retrieval … Specificities of a retrieval algorithm over land … Validating and comparing the results … Illustrations … Space observations … Ground-based observations … Prospects Appendix: Conversion between wavenumber and wavelength … Active lidar remote sensing M. Patrick McCormick, and Kevin R. Leavor … Introduction … Aerosols and elastic backscatter … Raman … Depolarization … Lidar networks … Spacebased lidar … Summary … Conclusion: Results and suggestions for future research Jacqueline Lenoble, Lorraine A. Remer and Didier Tanre … Summary … Results … Algorithms vs. Products; Validation vs. intercomparison … Recommendations for future work … Combined bibliography … Index … |
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<?xml version="1.0" encoding="UTF-8"?><collection xmlns="http://www.loc.gov/MARC21/slim"><record><leader>01000cam a22002652 4500</leader><controlfield tag="001">1652141650</controlfield><controlfield tag="003">DE-627</controlfield><controlfield tag="005">20230518025810.0</controlfield><controlfield tag="007">cr uuu---uuuuu</controlfield><controlfield tag="008">130306s2013 gw |||||o 00| ||eng c</controlfield><datafield tag="020" ind1=" " ind2=" "><subfield code="a">9783642177255</subfield><subfield code="9">978-3-642-17725-5</subfield></datafield><datafield tag="024" ind1="7" ind2=" "><subfield code="a">10.1007/978-3-642-17725-5</subfield><subfield code="2">doi</subfield></datafield><datafield tag="035" ind1=" " ind2=" "><subfield code="a">(DE-627)1652141650</subfield></datafield><datafield tag="035" ind1=" " ind2=" "><subfield code="a">(DE-576)379691604</subfield></datafield><datafield tag="035" ind1=" " ind2=" "><subfield code="a">(DE-599)BSZ379691604</subfield></datafield><datafield tag="035" ind1=" " ind2=" "><subfield code="a">(OCoLC)839973422</subfield></datafield><datafield tag="035" ind1=" " ind2=" "><subfield code="a">(DE-He213)978-3-642-17725-5</subfield></datafield><datafield tag="040" ind1=" " ind2=" "><subfield code="a">DE-627</subfield><subfield code="b">ger</subfield><subfield code="c">DE-627</subfield><subfield code="e">rakwb</subfield></datafield><datafield tag="041" ind1=" " ind2=" "><subfield code="a">eng</subfield></datafield><datafield tag="044" ind1=" " ind2=" "><subfield code="c">XA-DE</subfield></datafield><datafield tag="050" ind1=" " ind2="0"><subfield code="a">GA102.4.R44</subfield><subfield code="a">G70.39-70.6</subfield></datafield><datafield tag="050" ind1=" " ind2="0"><subfield code="a">GA102.4.R44</subfield></datafield><datafield tag="050" ind1=" " ind2="0"><subfield code="a">G70.39-70.6</subfield></datafield><datafield tag="072" ind1=" " ind2="7"><subfield code="a">RGW</subfield><subfield code="2">bicssc</subfield></datafield><datafield tag="072" ind1=" " ind2="7"><subfield code="a">TEC036000</subfield><subfield code="2">bisacsh</subfield></datafield><datafield tag="084" ind1=" " ind2=" "><subfield code="a">ZI 9560</subfield><subfield code="2">rvk</subfield><subfield code="0">(DE-625)rvk/156720:</subfield></datafield><datafield tag="084" ind1=" " ind2=" "><subfield code="a">UT 9100</subfield><subfield code="2">rvk</subfield><subfield code="0">(DE-625)rvk/146864:</subfield></datafield><datafield tag="084" ind1=" " ind2=" "><subfield code="a">38.81</subfield><subfield code="2">bkl</subfield></datafield><datafield tag="100" ind1="1" ind2=" "><subfield code="a">Lenoble, Jacqueline</subfield><subfield code="e">verfasserin</subfield><subfield code="4">aut</subfield></datafield><datafield tag="245" ind1="1" ind2="0"><subfield code="a">Aerosol Remote Sensing</subfield><subfield code="c">edited by Jacqueline Lenoble, Lorraine Remer, Didier Tanré</subfield></datafield><datafield tag="264" ind1=" " ind2="1"><subfield code="a">Berlin</subfield><subfield code="a">Heidelberg</subfield><subfield code="b">Springer</subfield><subfield code="c">2013</subfield></datafield><datafield tag="300" ind1=" " ind2=" "><subfield code="a">Online-Ressource (XXXVIII, 390 p. 120 illus., 75 illus. in color, digital)</subfield></datafield><datafield tag="336" ind1=" " ind2=" "><subfield code="a">Text</subfield><subfield code="b">txt</subfield><subfield code="2">rdacontent</subfield></datafield><datafield tag="337" ind1=" " ind2=" "><subfield code="a">Computermedien</subfield><subfield code="b">c</subfield><subfield code="2">rdamedia</subfield></datafield><datafield tag="338" ind1=" " ind2=" "><subfield code="a">Online-Ressource</subfield><subfield code="b">cr</subfield><subfield code="2">rdacarrier</subfield></datafield><datafield tag="490" ind1="0" ind2=" "><subfield code="a">SpringerLink</subfield><subfield code="a">Bücher</subfield></datafield><datafield tag="500" ind1=" " ind2=" "><subfield code="a">Includes bibliographical references and index</subfield></datafield><datafield tag="505" ind1="8" ind2="0"><subfield code="a">Aerosol Remote Sensing; Contents; List of authors; List of figures; List of tables; List of symbols and acronyms; Foreword; Preface; 1 Introduction; 1.1 What are aerosols?; 1.2 Why are we interested in aerosols?; 1.3 How can we observe aerosols?; 1.4 Objective and organization of the book; 2 Absorption and scattering by molecules and particles; 2.1 Introduction; 2.2 Atmospheric molecular absorption; 2.3 Definitions: Extinction, scattering, absorption, and phase function; 2.4 Polarization and scattering matrix; 2.4.1 The Stokes parameters; 2.4.2 Scattering matrix</subfield></datafield><datafield tag="505" ind1="8" ind2="0"><subfield code="a">2.5 Molecular scattering: Rayleigh theory2.6 Lorenz-Mie theory; 2.7 Nonspherical particles: Theory and measurements; 2.7.1 Numerically-exact and approximate theoretical techniques; 2.7.2 Measurement techniques; 2.8 Illustrative theoretical and laboratory results; 3 Radiative transfer in the Earth's atmosphere; 3.1 Introduction; 3.2 The scalar and the vector equations of transfer; 3.2.1 The scalar equation of radiative transfer; 3.2.2 Formalism for a plane parallel atmosphere; 3.2.3 The vector equation of transfer; 3.2.4 Expansion into Fourier series of azimuth; 3.3 Boundary conditions</subfield></datafield><datafield tag="505" ind1="8" ind2="0"><subfield code="a">3.4 Solution of the radiative transfer problem3.4.1 Successive orders of scattering (OS); 3.4.2 Discrete ordinates (DISORT); 3.4.3 Adding-Doubling method. (de Haan et al.,1987; Stammes et al.,1989; Stammes, 2001)1; 3.4.4 Monte Carlo method; 3.4.5 Approximate methods; 3.5 Radiative transfer codes; 3.6 Examples of aerosol impact; 3.6.1 Ground-based observations; 3.6.2 Spaceborne measurements; 3.7 Summary; 4 Direct observation of the sun for aerosol retrieval; 4.1 Introduction; 4.2 Ground-based sunphotometry; 4.3 Occultation methods; 4.4 Conclusion</subfield></datafield><datafield tag="505" ind1="8" ind2="0"><subfield code="a">5 Determination of aerosol optical properties from inverse methods5.1 Introduction; 5.2 Diffuse and direct solar radiation; 5.2.1 Spectral aerosol optical thickness; 5.2.2 Sky radiance as a function of scattering angle; 5.3 Basic inversion of linear systems; 5.3.1 Direct inversion; 5.3.2 Least-squares solution; 5.3.3 Uniqueness and the nature of a priori constraints; 5.3.4 Measures of smoothness; 5.3.5 Constrained linear inversion; 5.3.6. Selection of the Lagrange multiplier; 5.3.7 Solution covariance matrix</subfield></datafield><datafield tag="505" ind1="8" ind2="0"><subfield code="a">5.4 Inversion of aerosol size distribution from spectral optical thickness measurements5.5 Combination of observations and multi-term LSM solution; 5.6 Non-negativity constraints; 5.7 Smoothness constraints in the case of retrieval of characteristic with nonuniformly-spaced ordinates; 5.8 Inversion of aerosol size distribution and single scattering albedo from spectral optical thickness and sky radiance measure; 6 Passive shortwave remote sensing from the Ground; 6.1 Introduction; 6.2 Early history; 6.3 The Smithsonian program; 6.4 Early turbidity investigations; 6.5 Technological advances</subfield></datafield><datafield tag="505" ind1="8" ind2="0"><subfield code="a">6.6 BAPMoN, the satellite era and prototypes for the modern networks</subfield></datafield><datafield tag="520" ind1=" " ind2=" "><subfield code="a">This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. The editors provide, for the first time, an easy path from theory to practical algorithms in one easily accessible volume, making the connection between theoretical radiative transfer and individual practical solutions to retrieve aerosol information from remote sensing, and providing the specifics and intercomparison of all current and historical retrieval methods.</subfield></datafield><datafield tag="520" ind1=" " ind2=" "><subfield code="a">This book gives a much needed explanation of the basic physical principles of radiative transfer and remote sensing, and presents all the instruments and retrieval algorithms in a homogenous manner. 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