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Satellite Optical Remote Sensing of Clouds and Aerosols: From Particle Single-Scattering and Gaseous Absorption Through Radiative Transfer to Retrieval ProductsClouds and aerosols are fundamental regulators of Earth’s radiation budget and climate system, influencing both solar and terrestrial radiation through scattering, absorption, and emission processes. Accurate characterization of their physical and radiative properties from space requires a rigorous understanding of particle single-scattering, gaseous absorption, and radiative transfer in the atmosphere, as well as reliable inversion methods. This review synthesizes the physical foundations and algorithmic implementations of satellite-based passive optical remote sensing of clouds and aerosols, spanning the ultraviolet to thermal infrared spectral range. Beginning with electromagnetic scattering theory and state-of-the-art methods for computing single-scattering by nonspherical particles and computationally efficient methods for accounting for atmospheric absorption, we discuss the radiative transfer framework underpinning cloud and aerosol retrievals. The connection between single-scattering and multiple-scattering is rigorously formulated. We then summarize operational and research-grade retrieval techniques, including cloud masking and thermodynamic phase determination, CO₂ slicing for cloud-top pressure, the Nakajima-King shortwave bi-spectral, and infrared split-window approaches for cloud optical thickness and effective particle size, inversion algorithms for determining aerosol properties from multi-spectral and/or multi-angle radiometric and polarimetric measurements, and active-passive sensing synergy. Examples of the global cloud and aerosol climatologies are illustrated using observations from the Moderate Resolution Imaging Spectroradiometer (MODIS) and the Multi-angle Imaging SpectroRadiometer (MISR). Furthermore, the unique strengths of active remote sensing techniques based on spaceborne lidar observations are briefly elaborated in the context of studying ice clouds composed of randomly and horizontally oriented ice crystals, which is a significant challenge for conventional passive remote sensing techniques. By connecting physical theory to practical retrievals, this review highlights both the maturity of current methodologies and the remaining challenges in reducing uncertainties in particle morphology, vertical structure, absorption, and aerosol-cloud interactions. Furthermore, the impact of artificial intelligence (AI) on atmospheric remote sensing is briefly addressed.
Document ID
20260004782
Acquisition Source
Goddard Space Flight Center
Document Type
Preprint (Draft being sent to journal)
Authors
Ping Yang ORCID
(Texas A&M University – Central Texas Killeen, United States)
Kerry Meyer
(Goddard Space Flight Center Greenbelt, United States)
Robert Levy
(Goddard Space Flight Center Greenbelt, United States)
Dongchen Li
(Texas A&M University – Central Texas Killeen, United States)
Feng Xu ORCID
(University of Oklahoma Norman, United States)
Anita D Rapp
(Texas A&M University College Station, United States)
Zhibo Zhang
(University of Maryland, Baltimore County Baltimore, United States)
Date Acquired
May 27, 2026
Publication Date
July 10, 2026
Publication Information
Publication: Proceedings of the IEEE
Publisher: Institute of Electrical and Electronics Engineers
ISSN: 0018-9219
e-ISSN: 1558-2256
Subject Category
Earth Resources and Remote Sensing
Funding Number(s)
OTHER: 02-512231-00000
WBS: 279924.05.05.01.18
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
External Peer Committee
Keywords
Aerosols
clouds
cloud mask
radiometric and polarimetric remote sensing
radiative transfer
optical thickness
light scattering
gaseous absorption
effective particle size
cloud-top pressure
cloud phase
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