[1] Cziczo D J, Froyd K D, Hoose C et al. Clarifying the dominant sources and mechanisms of cirrus cloud formation[J]. Science, 340, 1320-1324(2013).
[2] Liou K N. Influence of cirrus clouds on weather and climate processes: a global perspective[J]. Monthly Weather Review, 114, 1167-1199(1986).
[3] Dessler A E, Yang P. The distribution of tropical thin cirrus clouds inferred from TerraMODIS data[J]. Journal of Climate, 16, 1241-1247(2003).
[4] Sassen K, Campbell J R. A midlatitude cirrus cloud climatology from the facility for atmospheric remote sensing. part I: macrophysical and synoptic properties[J]. Journal of the Atmospheric Sciences, 58, 481-496(2001).
[5] Cai Y, Liu Y L, Dai C M et al. Simulation analysis of target and background contrast in condition of cirrus atmosphere[J]. Acta Optica Sinica, 37, 0801001(2017).
[6] Ren S H, Gao M, Wang M G et al. Attenuation and transmission characteristics of laser propagation in cirrus clouds with a spherical boundary[J]. Spectroscopy and Spectral Analysis, 42, 316-321(2022).
[7] Zhang X Z, Xu X, Liu B Y. Influence of cirrus clouds on space-to-earth quantum communication channels in free space[J]. Acta Optica Sinica, 41, 2027001(2021).
[8] Ye S, Fu S M, Li S et al. Optical thickness calculation method of cirrus based on MODIS parameters[J]. Laser & Optoelectronics Progress, 58, 1901003(2021).
[9] Kox S, Bugliaro L, Ostler A. Retrieval of cirrus cloud optical thickness and top altitude from geostationary remote sensing[J]. Atmospheric Measurement Techniques, 7, 3233-3246(2014).
[10] Ji C L, Tao Z M, Hu S X et al. Cirrus measurement using three-wavelength lidar in Hefei[J]. Acta Optica Sinica, 34, 0401001(2014).
[11] Ackerman S A, Holz R E, Frey R et al. Cloud detection with MODIS: part II. Validation[J]. Journal of Atmospheric and Oceanic Technology, 25, 1073-1086(2008).
[12] Meyer K, Platnick S. Utilizing the MODIS 1.38 μm channel for cirrus cloud optical thickness retrievals: algorithm and retrieval uncertainties[J]. Journal of Geophysical Research: Atmospheres, 115, 209-222(2010).
[13] Gao B C, Kaufman Y J, Tanre D et al. Distinguishing tropospheric aerosols from thin cirrus clouds for improved aerosol retrievals using the ratio of 1.38-μm and 1.24-μm channels[J]. Geophysical Research Letters, 29, 1890-1891(2002).
[14] Sun W B, Videen G, Kato S et al. A study of subvisual clouds and their radiation effect with a synergy of CERES, MODIS, CALIPSO, and AIRS data[J]. Journal of Geophysical Research: Atmospheres, 116, 207-217(2011).
[15] Mao F Y, Pan Z X, Henderson D S et al. Vertically resolved physical and radiative response of ice clouds to aerosols during the Indian summer monsoon season[J]. Remote Sensing of Environment, 216, 171-182(2018).
[17] Yang Y K, Sun W X, Chi Y L et al. Machine learning-based retrieval of day and night cloud macrophysical parameters over East Asia using Himawari-8 data[J]. Remote Sensing of Environment, 273, 112971(2022).
[18] Min M, Li J, Wang F et al. Retrieval of cloud top properties from advanced geostationary satellite imager measurements based on machine learning algorithms[J]. Remote Sensing of Environment, 239, 111616(2020).
[19] Tan Z H, Ma S, Han D et al. Estimation of cloud base height for FY-4A satellite based on random forest algorithm[J]. Journal of Infrared and Millimeter Waves, 38, 381-388(2019).
[20] Amell A, Eriksson P, Pfreundschuh S. Ice water path retrievals from Meteosat-9 using quantile regression neural networks[J]. Atmospheric Measurement Techniques, 15, 5701-5717(2022).
[21] McHardy T M, Campbell J R, Peterson D A et al. Advancing maritime transparent cirrus detection using the advanced baseline imager “cirrus” band[J]. Journal of Atmospheric and Oceanic Technology, 38, 1093-1110(2021).
[22] Strandgren J, Bugliaro L, Sehnke F et al. Cirrus cloud retrieval with MSG/SEVIRI using artificial neural networks[J]. Atmospheric Measurement Techniques, 10, 3547-3573(2017).
[23] Barnes W L, Xiong X, Salomonson V V. Status of terra MODIS and aqua modis[J]. Advances in Space Research, 32, 2099-2106(2003).
[24] Sassen K, Wang Z E, Liu D. Global distribution of cirrus clouds from CloudSat/Cloud-Aerosol Lidar and Infrared Pathfinder Satellite Observations (CALIPSO) measurements[J]. Journal of Geophysical Research, 113, D00A12(2008).