Influence of ice particle model on satellite ice cloud retrieval: lessons learned from MODIS and POLDER cloud product comparison
暂无分享,去创建一个
Steven Platnick | Bryan A. Baum | Hung-Lung Huang | Jerome Riedi | Ping Yang | George W. Kattawar | Zhibo Zhang | Laurent C.-Labonnote | G. Kattawar | Zhibo Zhang | P. Yang | Hung-Lung Huang | B. Baum | S. Platnick | J. Riedi | L. C.-Labonnote
[1] Steven Platnick,et al. Retrieval of semitransparent ice cloud optical thickness from atmospheric infrared sounder (AIRS) measurements , 2004, IEEE Transactions on Geoscience and Remote Sensing.
[2] David A. Randall,et al. FIRE - The First ISCCP Regional Experiment , 1987 .
[3] K. Liou. Influence of Cirrus Clouds on Weather and Climate Processes: A Global Perspective , 1986 .
[4] B. Carlson,et al. Scattering of light by large nonspherical particles: ray-tracing approximation versus T-matrix method. , 1995, Optics letters.
[5] Paul W. Stackhouse,et al. The Relevance of the Microphysical and Radiative Properties of Cirrus Clouds to Climate and Climatic Feedback , 1990 .
[6] Bryan A. Baum,et al. Bulk Scattering Properties for the Remote Sensing of Ice Clouds. Part III: High-Resolution Spectral Models from 100 to 3250 cm 1 , 2007 .
[7] Stefan Kinne,et al. Tropical cirrus cloud radiative forcing: Sensitivity studies , 1994 .
[8] V. Salomonson,et al. MODIS: advanced facility instrument for studies of the Earth as a system , 1989 .
[9] G. McFarquhar,et al. Thin and Subvisual Tropopause Tropical Cirrus: Observations and Radiative Impacts , 2000 .
[10] Ulrike Lohmann,et al. Influence of cirrus cloud radiative forcing on climate and climate sensitivity in a general circulation model , 1995 .
[11] Aleksandar Jelenak,et al. A new AVHRR cloud climatology , 2005, SPIE Asia-Pacific Remote Sensing.
[12] Peter N. Francis,et al. On the radiative properties of cirrus cloud at solar and thermal wavelengths: A test of model consistency using high‐resolution airborne radiance measurements , 2004 .
[13] Andrew Gettelman,et al. Tropical thin cirrus and relative humidity observed by the Atmospheric Infrared Sounder , 2007 .
[14] G. McFarquhar,et al. A New Parameterization of Single Scattering Solar Radiative Properties for Tropical Anvils Using Observed Ice Crystal Size and Shape Distributions , 2002 .
[15] A. Macke,et al. Single Scattering Properties of Atmospheric Ice Crystals , 1996 .
[16] J. Reichardt,et al. The Impact of Ice Crystal Shapes, Size Distributions, and Spatial Structures of Cirrus Clouds on Solar Radiative Fluxes. , 2005 .
[17] M. Gallagher,et al. An overview of the microphysical structure of cirrus clouds observed during EMERALD‐1 , 2005 .
[18] P. Watts,et al. Testing the coherence of cirrus microphysical and bulk properties retrieved from dual‐viewing multispectral satellite radiance measurements , 1999 .
[19] M. King,et al. Determination of the optical thickness and effective particle radius of clouds from reflected solar , 1990 .
[20] A. Heymsfield. Properties of Tropical and Midlatitude Ice Cloud Particle Ensembles. Part I: Median Mass Diameters and Terminal Velocities , 2003 .
[21] Patrick Minnis,et al. Uncertainties Associated With the Surface Texture of Ice Particles in Satellite-Based Retrieval of Cirrus Clouds: Part II—Effect of Particle Surface Roughness on Retrieved Cloud Optical Thickness and Effective Particle Size , 2008, IEEE Transactions on Geoscience and Remote Sensing.
[22] K. Sassen,et al. Global distribution of cirrus clouds from CloudSat/Cloud‐Aerosol Lidar and Infrared Pathfinder Satellite Observations (CALIPSO) measurements , 2008 .
[23] B. Soden,et al. Large-scale ice clouds in the GFDL SKYHI general circulation model , 1997 .
[24] Greg Michael McFarquhar,et al. Microphysical Characteristics of Three Anvils Sampled during the Central Equatorial Pacific Experiment , 1996 .
[25] P. Francis. Some Aircraft Observations of the Scattering Properties of Ice Crystals , 1995 .
[26] Sergey Oshchepkov,et al. Assessment of cloud optical parameters in the solar region: Retrievals from airborne measurements of scattering phase functions , 2003 .
[27] Yongxiang Hu,et al. Geometrical-optics solution to light scattering by droxtal ice crystals. , 2004, Applied optics.
[28] P. Pilewskie,et al. Effects of ice crystal habit on thermal infrared radiative properties and forcing of cirrus , 2007 .
[29] M. McCormick,et al. A 6‐year climatology of cloud occurrence frequency from Stratospheric Aerosol and Gas Experiment II observations (1985–1990) , 1996 .
[30] David L. Mitchell,et al. Impact of a new scheme for optical properties of ice crystals on climates of two GCMs , 2000 .
[31] S. Sherwood. Detection of faceted crystals in deep convective clouds via the antisolar peak , 2005 .
[32] J. Foot,et al. Some observations of the optical properties of clouds. II: Cirrus , 1988 .
[33] A. Macke,et al. Polarized light scattering by inhomogeneous hexagonal monocrystals: Validation with ADEOS-POLDER measurements , 2001 .
[34] A. Heymsfield. Properties of tropical and midlatitude ice cloud particle ensembles. Part II: Applications for mesoscale and climate models , 2003 .
[35] Qiang Fu,et al. A New Parameterization of an Asymmetry Factor of Cirrus Clouds for Climate Models , 2007 .
[36] Van de Hulst,et al. Multiple Light Scattering: Tables, Formulas, and Applications , 1980 .
[37] Steven Platnick,et al. Differences Between Collection 4 and 5 MODIS Ice Cloud Optical/Microphysical Products and Their Impact on Radiative Forcing Simulations , 2007, IEEE Transactions on Geoscience and Remote Sensing.
[38] M. King,et al. Cloud Retrieval Algorithms for MODIS : Optical Thickness , Effective Particle Radius , and Thermodynamic Phase , 2000 .
[39] W. Paul Menzel,et al. INTRODUCING THE NEXT-GENERATION ADVANCED BASELINE IMAGER ON GOES-R , 2005 .
[40] H. V. Hulst. Light Scattering by Small Particles , 1957 .
[41] Andrew A. Lacis,et al. Sensitivity of cirrus cloud albedo, bidirectional reflectance and optical thickness retrieval accuracy to ice particle shape , 1996 .
[42] Karl-Göran Karlsson,et al. A 10 year cloud climatology over Scandinavia derived from NOAA Advanced Very High Resolution Radiometer imagery , 2003 .
[43] M. King. Determination of the Scaled Optical Thickness of Clouds from Reflected Solar Radiation Measurements , 1987 .
[44] B. Barkstrom,et al. Cloud-Radiative Forcing and Climate: Results from the Earth Radiation Budget Experiment , 1989, Science.
[45] R. Davies,et al. Plane Parallel Albedo Biases from Satellite Observations. Part II: Parameterizations for Bias Removal. , 1998 .
[46] K. Liou,et al. Solar Radiative Transfer in Cirrus Clouds. Part I: Single-Scattering and Optical Properties of Hexagonal Ice Crystals , 1989 .
[47] Aircraft measurements of microphysical properties of subvisible cirrus in the tropical tropopause layer , 2007 .
[48] Piet Stammes,et al. Modeling total and polarized reflectances of ice clouds: evaluation by means of POLDER and ATSR-2 measurements. , 2005, Applied optics.
[49] Q. Fu,et al. Parameterization of the Radiative Properties of Cirrus Clouds , 1993 .
[50] Steven,et al. Objective Assessment of the Information Content of Visible and Infrared Radiance Measurements for Cloud Microphysical Property Retrievals over the Global Oceans. Part I: Liquid Clouds , 2006 .
[51] W. Rossow,et al. Advances in understanding clouds from ISCCP , 1999 .
[52] Roger Davies,et al. Plane Parallel Albedo Biases from Satellite Observations. Part I: Dependence on Resolution and Other Factors , 1998 .
[53] P. Kaye,et al. A test of cirrus ice crystal scattering phase functions , 2003 .
[54] Stephen L. Durden,et al. Observations and Parameterizations of Particle Size Distributions in Deep Tropical Cirrus and Stratiform Precipitating Clouds: Results from In Situ Observations in TRMM Field Campaigns , 2002 .
[55] K. Liou,et al. Light scattering by nonspherical particles: remote sensing and climatic implications , 1994 .
[56] M. Mishchenko,et al. The influence of inclusions on light scattering by large ice particles , 1996 .
[57] Arunas P. Kuciauskas,et al. NexSat: Previewing NPOESS/VIIRS Imagery Capabilities , 2006 .
[58] Rob Roebeling,et al. Cloud property retrievals for climate monitoring: Implications of differences between Spinning Enhanced Visible and Infrared Imager (SEVIRI) on METEOSAT‐8 and Advanced Very High Resolution Radiometer (AVHRR) on NOAA‐17 , 2006 .
[59] Ping Yang,et al. Interpretation of AIRS Data in Thin Cirrus Atmospheres Based on a Fast Radiative Transfer Model , 2006 .
[60] C. Bohren,et al. An introduction to atmospheric radiation , 1981 .
[61] Robert F. Cahalan,et al. The albedo of fractal stratocumulus clouds , 1994 .
[62] Patrick Minnis,et al. Inference of cirrus cloud properties using satellite-observed visible and infrared radiances. Part I: parameterization of radiance fields , 1993 .
[63] W. Paul Menzel,et al. The MODIS cloud products: algorithms and examples from Terra , 2003, IEEE Trans. Geosci. Remote. Sens..
[64] W. Menzel,et al. Eight Years of High Cloud Statistics Using HIRS , 1999 .
[65] Bryan A. Baum,et al. Cloud thermodynamic phase inferred from merged POLDER and MODIS data , 2007 .
[66] M. Chou,et al. A Solar Radiation Model for Use in Climate Studies , 1992 .
[67] Veerabhadran Ramanathan,et al. Solar Absorption by Cirrus Clouds and the Maintenance of the Tropical Upper Troposphere Thermal Structure , 1989 .
[68] K. Liou,et al. Geometric-optics-integral-equation method for light scattering by nonspherical ice crystals. , 1996, Applied optics.
[69] Frédéric Parol,et al. An improved derivation of the top‐of‐atmosphere albedo from POLDER/ADEOS‐2: Narrowband albedos , 2005 .
[70] P. Francis,et al. Aircraft measurements of the solar and infrared radiative properties of cirrus and their dependence on ice crystal shape , 1999 .
[71] R. Lawson,et al. In Situ Observations of the Microphysical Properties of Wave, Cirrus, and Anvil Clouds. Part II: Cirrus Clouds , 2006 .
[72] P. Francis,et al. A scattering phase function for ice cloud: Tests of applicability using aircraft and satellite multi‐angle multi‐wavelength radiance measurements of cirrus , 2001 .
[73] Dong L. Wu,et al. EOS MLS cloud ice measurements and cloudy-sky radiative transfer model , 2006, IEEE Transactions on Geoscience and Remote Sensing.
[74] A. Baran,et al. On the reflection and polarisation properties of ice cloud , 2006 .
[75] J. Hansen,et al. Accurate monitoring of terrestrial aerosols and total solar irradiance: Introducing the Glory mission , 2007 .
[76] Q. Fu. An Accurate Parameterization of the Infrared Radiative Properties of Cirrus Clouds for Climate Models , 1996 .
[77] A. Baran,et al. A self‐consistent scattering model for cirrus. I: The solar region , 2007 .
[78] Marie Doutriaux-Boucher,et al. Modeling of light scattering in cirrus clouds with inhomogeneous hexagonal monocrystals. Comparison with in‐situ and ADEOS‐POLDER measurements , 2000 .
[79] Greg Michael McFarquhar. Comments on ‘Parametrization of effective sizes of cirrus‐cloud particles and its verification against observations’ by Zhian Sun and Lawrie Rikus. October B, 1999, 125, 3037–3055 , 2001 .
[80] Patrick Minnis,et al. An Intercomparison of Microphysical Retrieval Algorithms for Upper-Tropospheric Ice Clouds , 2007 .
[81] Owen B. Toon,et al. Mission investigates tropical cirrus clouds , 2004 .
[82] S. Bony,et al. How Well Do We Understand and Evaluate Climate Change Feedback Processes , 2006 .
[83] Piet Stammes,et al. Scattering matrices of imperfect hexagonal ice crystals , 1998 .
[84] Bryan A. Baum,et al. Single scattering properties of droxtals , 2003 .
[85] Bryan A. Baum,et al. Bulk Scattering Properties for the Remote Sensing of Ice Clouds. Part I: Microphysical Data and Models. , 2005 .
[86] S. Bony,et al. Comparing clouds and their seasonal variations in 10 atmospheric general circulation models with satellite measurements , 2005 .
[87] Anthony J. Baran,et al. Sensitivity of retrieved POLDER directional cloud optical thickness to various ice particle models , 2000 .