Augmenting Heritage Ocean-Color Aerosol Models for Enhanced Remote Sensing of Inland and Nearshore Coastal Waters
暂无分享,去创建一个
Martin A. Montes | J. Roger | R. Levy | D. Giles | A. Smirnov | P. J. Werdell | P. Zhai | N. Pahlevan | Brandon M. Smith | Brandon Smith | Jae-Hyun Ahn
[1] T. Eck,et al. Variability of Absorption and Optical Properties of Key Aerosol Types Observed in Worldwide Locations , 2002 .
[2] B. Matsushita,et al. Seamless retrievals of chlorophyll-a from Sentinel-2 (MSI) and Sentinel-3 (OLCI) in inland and coastal waters: A machine-learning approach , 2020, Remote Sensing of Environment.
[3] J C Ho,et al. Widespread global increase in intense lake phytoplankton blooms since the 1980s , 2019, Nature.
[4] R. Levy,et al. Global Aerosol Optical Models and Lookup Tables for the New MODIS Aerosol Retrieval over Land , 2007 .
[5] K. Stamnes,et al. OC-SMART: A machine learning based data analysis platform for satellite ocean color sensors , 2021 .
[6] Thomas F. Eck,et al. Characterization of the optical properties of atmospheric aerosols in Amazônia from long‐term AERONET monitoring (1993–1995 and 1999–2006) , 2008 .
[7] S. Morley,et al. Measures of Model Performance Based On the Log Accuracy Ratio , 2018 .
[8] S. Ustin,et al. Current and near-term advances in Earth observation for ecological applications , 2021, Ecological Processes.
[9] Alexander Smirnov,et al. Cloud-Screening and Quality Control Algorithms for the AERONET Database , 2000 .
[10] Michael D. King,et al. A flexible inversion algorithm for retrieval of aerosol optical properties from Sun and sky radiance measurements , 2000 .
[11] Steven Platnick,et al. Fog‐ and cloud‐induced aerosol modification observed by the Aerosol Robotic Network (AERONET) , 2012 .
[12] A. D. Barton,et al. Satellite detection of dinoflagellate blooms off California by UV reflectance ratios , 2021, Elementa: Science of the Anthropocene.
[13] Bryan A. Franz,et al. Atmospheric Correction for Satellite Ocean Color Radiometry , 2016 .
[14] C. Mobley,et al. Estimation of the remote-sensing reflectance from above-surface measurements. , 1999, Applied optics.
[15] Alexander Smirnov,et al. SeaWiFS Ocean Aerosol Retrieval (SOAR): Algorithm, validation, and comparison with other data sets , 2012 .
[16] Sundar A. Christopher,et al. Measurements of aerosol properties from aircraft, satellite and ground‐based remote sensing: a case‐study from the Dust and Biomass‐burning Experiment (DABEX) , 2009 .
[17] W. Gregg. Reports of the International Ocean-Colour Coordinating Group , 2007 .
[18] Yoram J. Kaufman,et al. Dust and pollution aerosols over the Negev desert, Israel: Properties, transport, and radiative effect , 2006 .
[19] Onisimo Mutanga,et al. Water quality monitoring in sub-Saharan African lakes: a review of remote sensing applications , 2015 .
[20] Aerosol models from the AERONET database: application to surface reflectance validation , 2022, Atmospheric Measurement Techniques.
[21] Jan Pisek,et al. Satellite-based products for monitoring optically complex inland waters in support of EU Water Framework Directive , 2015 .
[22] Ramesh P. Singh,et al. Optical Properties of Fine/Coarse Mode Aerosol Mixtures , 2010 .
[23] Ana Maria Silva,et al. Some considerations about Ångström exponent distributions , 2007 .
[24] Alexander Smirnov,et al. A Pure Marine Aerosol Model, for Use in Remote Sensing Applications , 2012 .
[25] Q. Miao,et al. Remote sensing-based water quality assessment for urban rivers: a study in linyi development area , 2019, Environmental Science and Pollution Research.
[26] Roozbeh Raoufi,et al. Estimating Daily Global Evapotranspiration Using Penman-Monteith Equation and Remotely Sensed Land Surface Temperature , 2017, Remote. Sens..
[27] Zhongfeng Qiu,et al. Hyperspectral Differentiation of Phytoplankton Taxonomic Groups: A Comparison between Using Remote Sensing Reflectance and Absorption Spectra , 2015, Remote. Sens..
[28] Nilton Nobuhiro Imai,et al. Estimation of Chlorophyll-a Concentration and the Trophic State of the Barra Bonita Hydroelectric Reservoir Using OLI/Landsat-8 Images , 2015, International journal of environmental research and public health.
[29] A. Bricaud,et al. Spectral absorption coefficients of living phytoplankton and nonalgal biogenous matter: A comparison between the Peru upwelling areaand the Sargasso Sea , 1990 .
[30] Roland Doerffer,et al. Atmospheric correction algorithm for MERIS above case‐2 waters , 2007 .
[31] P. Formenti,et al. Measurement and modeling of the Saharan dust radiative impact: Overview of the Saharan Dust Experiment (SHADE) , 2003 .
[32] David Doxaran,et al. Shellfish Aquaculture from Space: Potential of Sentinel2 to Monitor Tide-Driven Changes in Turbidity, Chlorophyll Concentration and Oyster Physiological Response at the Scale of an Oyster Farm , 2017, Front. Mar. Sci..
[33] Michael J. Garay,et al. Improving satellite-retrieved aerosol microphysical properties using GOCART data , 2014 .
[34] Bin Zhao,et al. The Modern-Era Retrospective Analysis for Research and Applications, Version 2 (MERRA-2). , 2017, Journal of climate.
[35] Sylvie Thiria,et al. Use of a neuro-variational inversion for retrieving oceanic and atmospheric constituents from satellite ocean colour sensor: Application to absorbing aerosols , 2006, Neural Networks.
[36] Temilola Fatoyinbo,et al. Monitoring Water-Related Ecosystems with Earth Observation Data in Support of Sustainable Development Goal (SDG) 6 Reporting , 2020, Remote. Sens..
[37] H. Gordon. Atmospheric correction of ocean color imagery in the Earth Observing System era , 1997 .
[38] C. Justice,et al. Atmospheric correction of visible to middle-infrared EOS-MODIS data over land surfaces: Background, operational algorithm and validation , 1997 .
[39] A. Smirnov,et al. AERONET-a federated instrument network and data archive for aerosol Characterization , 1998 .
[40] G. Weyhenmeyer,et al. Lakes as sentinels of climate change , 2009, Limnology and oceanography.
[41] John R. Schott,et al. Integrating Landsat-7 imagery with physics-based models for quantitative mapping of coastal waters near river discharges. , 2012 .
[42] Yongxiang Hu,et al. A vector radiative transfer model for coupled atmosphere and ocean systems based on successive order of scattering method. , 2008, Optics express.
[43] Glenn E. Shaw,et al. Optical properties of boreal region biomass burning aerosols in central Alaska and seasonal variation of aerosol optical depth at an Arctic coastal site , 2009 .
[44] T. Eck,et al. Accuracy assessments of aerosol optical properties retrieved from Aerosol Robotic Network (AERONET) Sun and sky radiance measurements , 2000 .
[45] John R. Schott,et al. Landsat 8 Remote Sensing Reflectance (Rrs) Products: Evaluations, Intercomparisons, and Enhancements , 2017 .
[46] T. Eck,et al. An emerging ground-based aerosol climatology: Aerosol optical depth from AERONET , 2001 .
[47] Peter Filzmoser,et al. Introduction to Multivariate Statistical Analysis in Chemometrics , 2009 .
[48] C. Barbosa,et al. A Chlorophyll-a Algorithm for Landsat-8 Based on Mixture Density Networks , 2021, Frontiers in Remote Sensing.
[49] Alexander Smirnov,et al. Maritime component in aerosol optical models derived from Aerosol Robotic Network data , 2003 .
[50] François Steinmetz,et al. Sentinel-2 MSI and Sentinel-3 OLCI consistent ocean colour products using POLYMER , 2018, Asia-Pacific Remote Sensing.
[51] H. Gordon,et al. Remote sensing of ocean color and aerosol properties: resolving the issue of aerosol absorption. , 1997, Applied optics.
[52] I. Reusen,et al. Atmospheric correction of Landsat-8/OLI and Sentinel-2/MSI data using iCOR algorithm: validation for coastal and inland waters , 2018 .
[53] D. Antoine,et al. Detection of blue-absorbing aerosols using near infrared and visible (ocean color) remote sensing observations , 2005 .
[54] B. Holben,et al. An AERONET-based aerosol classification using the Mahalanobis distance , 2016 .
[55] Kathleen A. Powell,et al. CALIOP and AERONET aerosol optical depth comparisons: One size fits none , 2013 .
[56] Oleg Dubovik,et al. Non‐spherical aerosol retrieval method employing light scattering by spheroids , 2002 .
[57] S. Sathyendranath,et al. Effect of pigment composition on absorption properties of phytoplankton , 1991 .
[58] E. Boss,et al. The Plankton, Aerosol, Cloud, Ocean Ecosystem Mission: Status, Science, Advances , 2019, Bulletin of the American Meteorological Society.
[59] Astrid Bracher,et al. Phytoplankton functional types from Space. , 2014 .
[60] Brent N. Holben,et al. Influence of dust storms on the aerosol optical properties over the Indo‐Gangetic basin , 2004 .
[61] C. Giardino,et al. Hyperspectral retrievals of phytoplankton absorption and chlorophyll-a in inland and nearshore coastal waters , 2020 .
[62] M. McCormick,et al. Development of global aerosol models using cluster analysis of Aerosol Robotic Network (AERONET) measurements , 2005 .
[63] Alexander Smirnov,et al. High aerosol optical depth biomass burning events: A comparison of optical properties for different source regions , 2003 .
[64] D. Mishra,et al. Retrieving absorption coefficients of multiple phytoplankton pigments from hyperspectral remote sensing reflectance measured over cyanobacteria bloom waters , 2016 .
[65] Alexander Smirnov,et al. Analysis of measurements of Saharan dust by airborne and ground-based remote sensing methods during the Puerto Rico Dust Experiment (PRIDE) , 2003 .
[66] Felipe de Lucia Lobo,et al. Retrieving Total and Inorganic Suspended Sediments in Amazon Floodplain Lakes: A Multisensor Approach , 2019, Remote. Sens..
[67] T. Eck,et al. Aerosol Properties Over the Indo-Gangetic Plain: A Mesoscale Perspective from the TIGERZ Experiment , 2011 .
[68] S. Piketh,et al. A seasonal trend of single scattering albedo in southern African biomass‐burning particles: Implications for satellite products and estimates of emissions for the world's largest biomass‐burning source , 2013 .
[69] M. Tzortziou,et al. Capturing dissolved organic carbon dynamics with Landsat-8 and Sentinel-2 in tidally influenced wetland–estuarine systems , 2021, Science of The Total Environment.
[70] Ziauddin Ahmad,et al. Revisiting short-wave-infrared (SWIR) bands for atmospheric correction in coastal waters. , 2017, Optics express.
[71] John R. Schott,et al. A VNIR/SWIR atmospheric correction algorithm for hyperspectral imagery with adjacency effect , 2001 .
[72] T. Eck,et al. AERONET-based models of smoke-dominated aerosol near source regions and transported over oceans, and implications for satellite retrievals of aerosol optical depth , 2014 .
[73] Quinten Vanhellemont,et al. Adaptation of the dark spectrum fitting atmospheric correction for aquatic applications of the Landsat and Sentinel-2 archives , 2019, Remote Sensing of Environment.
[74] Paola Formenti,et al. AMMA dust experiment: An overview of measurements performed during the dry season special observation period (SOP0) at the Banizoumbou (Niger) supersite , 2008 .
[75] R. M. Mitchell,et al. Characteristics and radiative impact of the aerosol generated by the Canberra firestorm of January 2003 , 2006 .
[76] H. Gordon,et al. Atmospheric correction of ocean color imagery: use of the junge power-law aerosol size distribution with variable refractive index to handle aerosol absorption. , 1998, Applied optics.
[77] Samuel E. Hunt,et al. Sensitivity of Ocean Color Atmospheric Correction to Uncertainties in Ancillary Data: A Global Analysis With SeaWiFS Data , 2022, IEEE Transactions on Geoscience and Remote Sensing.
[78] Quinten Vanhellemont,et al. Atmospheric correction of metre-scale optical satellite data for inland and coastal water applications , 2018, Remote Sensing of Environment.
[79] B. Holben,et al. The new sun-sky-lunar Cimel CE318-T multiband photometer-a comprehensive performance evaluation , 2015 .
[80] S. V. Balasubramanian,et al. ACIX-Aqua: A global assessment of atmospheric correction methods for Landsat-8 and Sentinel-2 over lakes, rivers, and coastal waters , 2021, Remote Sensing of Environment.
[81] P. Rousseeuw,et al. Partitioning Around Medoids (Program PAM) , 2008 .
[82] Chuanmin Hu,et al. Sediment plumes induced by the Port of Miami dredging: Analysis and interpretation using Landsat and MODIS data , 2015 .
[83] D. Mishra,et al. A harmonized image processing workflow using Sentinel-2/MSI and Landsat-8/OLI for mapping water clarity in optically variable lake systems , 2019, Remote Sensing of Environment.
[84] P. J. Werdell,et al. An improved in-situ bio-optical data set for ocean color algorithm development and satellite data product validation , 2005 .
[85] E. Boss,et al. Atmospheric Correction of Satellite Ocean-Color Imagery During the PACE Era , 2019, Front. Earth Sci..
[86] G. Mercier,et al. MEETC2: Ocean color atmospheric corrections in coastal complex waters using a Bayesian latent class model and potential for the incoming sentinel 3 - OLCI mission , 2016 .
[87] Brent N. Holben,et al. Variability of aerosol parameters over Kanpur, northern India , 2004 .
[88] Barry J. Huebert,et al. Attribution of aerosol light absorption to black carbon, brown carbon, and dust in China – interpretations of atmospheric measurements during EAST-AIRE , 2008 .
[89] Carsten Brockmann,et al. Earth observations in support of global water quality monitoring , 2018 .
[90] Hermann E. Gerber,et al. Relative - Humidity Parameterization of the Navy Aerosol Model (NAM) , 1985 .
[91] J. MacQueen. Some methods for classification and analysis of multivariate observations , 1967 .
[92] Jasper R. Lewis,et al. Advancements in the Aerosol Robotic Network (AERONET) Version 3 database – automated near-real-time quality control algorithm with improved cloud screening for Sun photometer aerosol optical depth (AOD) measurements , 2019, Atmospheric Measurement Techniques.
[93] Ziauddin Ahmad,et al. New aerosol models for the retrieval of aerosol optical thickness and normalized water-leaving radiances from the SeaWiFS and MODIS sensors over coastal regions and open oceans. , 2010, Applied optics.
[94] Jean Dubranna,et al. Assessing phytoplankton community composition from hyperspectral measurements of phytoplankton absorption coefficient and remote-sensing reflectance in open-ocean environments , 2015 .
[95] Alexander Smirnov,et al. The AERONET Version 3 aerosol retrieval algorithm, associated uncertainties and comparisons to Version 2 , 2020 .
[96] P. Horwitz,et al. Assessment of post-wildfire erosion risk and effects on water quality in south-western Australia , 2020 .
[97] K. Bisson,et al. Observations of Phytoplankton Community Composition in the Santa Barbara Channel During the Thomas Fire , 2020, Journal of Geophysical Research: Oceans.
[98] Robert J. Charlson,et al. The atmospheric aerosol system: An overview , 1983 .
[99] G. Zibordi,et al. Aerosol variability in the Po Valley analyzed from automated optical measurements , 2005 .
[100] Alexander Smirnov,et al. Columnar aerosol optical properties at AERONET sites in central eastern Asia and aerosol transport to the tropical mid‐Pacific , 2005 .
[101] E. Slonecker,et al. The new Landsat 8 potential for remote sensing of colored dissolved organic matter (CDOM). , 2016, Marine pollution bulletin.
[102] Menghua Wang,et al. Retrieval of water-leaving radiance and aerosol optical thickness over the oceans with SeaWiFS: a preliminary algorithm. , 1994, Applied optics.
[103] Matthew S. Johnson,et al. A multiparameter aerosol classification method and its application to retrievals from spaceborne polarimetry , 2014 .
[104] Carsten Brockmann,et al. Evolution of the C2RCC Neural Network for Sentinel 2 and 3 for the Retrieval of Ocean Colour Products in Normal and Extreme Optically Complex Waters , 2016 .
[105] Davide D'Alimonte,et al. Field Intercomparison of Radiometer Measurements for Ocean Colour Validation , 2020, Remote. Sens..
[106] E. Shettle,et al. Models for the aerosols of the lower atmosphere and the effects of humidity variations on their optical properties , 1979 .
[107] D. Swain,et al. Estimation of Chlorophyll-a in Northern Coastal Bay of Bengal Using Landsat-8 OLI and Sentinel-2 MSI Sensors , 2019, Front. Mar. Sci..
[108] T. Petäjä,et al. Resolving anthropogenic aerosol pollution types - deconvolution and exploratory classification of pollution events , 2017 .
[109] T. Eck,et al. An analysis of AERONET aerosol absorption properties and classifications representative of aerosol source regions , 2012 .
[110] S. Srihari. Mixture Density Networks , 1994 .
[111] Sang Woo Kim,et al. Number size distribution of atmospheric aerosols during ACE-Asia dust and precipitation events , 2007 .
[112] E. Stanev,et al. Sensitivity of a 3D Shelf Sea Ecosystem Model to Parameterizations of the Underwater Light Field , 2020, Frontiers in Marine Science.
[113] Alexander Smirnov,et al. Observations of rapid aerosol optical depth enhancements in the vicinity of polluted cumulus clouds , 2014 .
[114] Robert Foster,et al. Variability of the reflectance coefficient of skylight from the ocean surface and its implications to ocean color. , 2018, Optics express.
[115] Ryan E. O’Shea,et al. Advancing cyanobacteria biomass estimation from hyperspectral observations: Demonstrations with HICO and PRISMA imagery , 2021, Remote Sensing of Environment.
[116] T. Eck,et al. Effect of wind speed on columnar aerosol optical properties at Midway Island , 2003 .
[117] A. Blanco,et al. OPTMIZATION OF BIO-OPTICAL MODEL PARAMETERS FOR TURBID LAKE WATER QUALITY ESTIMATION USING LANDSAT 8 AND WASI-2D , 2020 .
[118] E. Boss,et al. Oyster Aquaculture Site Selection Using Landsat 8-Derived Sea Surface Temperature, Turbidity, and Chlorophyll a , 2017, Front. Mar. Sci..
[119] Z. Ahmad,et al. The Sensitivity of SeaWiFS Ocean Color Retrievals to Aerosol Amount and Type , 2016 .
[120] Michael Ondrusek,et al. Robust algorithm for estimating total suspended solids (TSS) in inland and nearshore coastal waters , 2020, Remote Sensing of Environment.
[121] Oleg Dubovik,et al. Validation of AERONET estimates of atmospheric solar fluxes and aerosol radiative forcing by ground‐based broadband measurements , 2008 .
[122] Atmospheric Correction for Remotely-Sensed Ocean-Colour Products , 2009 .
[123] A. Pietruczuk,et al. Synergy of satellite-based aerosol optical thickness analysis and trajectory statistics for determination of aerosol source regions , 2019, International Journal of Remote Sensing.
[124] P. Rousseeuw. Silhouettes: a graphical aid to the interpretation and validation of cluster analysis , 1987 .
[125] Bryan A. Franz,et al. Ocean color measurements with the Operational Land Imager on Landsat-8: implementation and evaluation in SeaDAS , 2015 .