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Cloud liquid and ice water contentestimation from satellite: a regressionapproach based on neural networks

Contributo in Atti di convegno
Data di Pubblicazione:
2021
Abstract:
Cloud microphysics in terms of their liquid/ice water content and particle size are the principal factors addressed to study and understand the behavior behind the climate change phenomenon. Based on remotely sensed measurements, in the last decades, some evidence exists that an increase in temperature leads to an increase in cloud liquid water content (CLWC). The temperature dependence of ice water content (CIWC) is also evident from measurements of midlatitude cirrus clouds. Hence, innovative methods, such as those based on the use of Artificial Intelligence (AI) allowing a more relevant investigation of how clouds influence the hydrological cycle and radiative components of the Earth's climate system, are required. This work investigates the capability of a statistical regression scheme of CLWC and CIWC, implemented through the use of a multilayer feed-forward neural network (NN). The whole methodology is applied to a set of simulated IASI-NG L1C and MWS acquisitions, covering the global scale. The NN regression analysis shows good agreement with the test data. The retrieved cloud liquid water and ice profiles have an accuracy of 20 to 60% depending on the given layer. Finally, the layer with the maximum concentration is accurately identified.
Tipologia CRIS:
04.01 Contributo in Atti di convegno
Keywords:
Cloud liquid; ice water; IASI; MWS
Elenco autori:
Romano, Filomena; Cimini, Domenico; DI PAOLA, Francesco; Ricciardelli, Elisabetta
Autori di Ateneo:
CIMINI DOMENICO
DI PAOLA FRANCESCO
RICCIARDELLI ELISABETTA
ROMANO FILOMENA
Link alla scheda completa:
https://iris.cnr.it/handle/20.500.14243/401093
Pubblicato in:
PROCEEDINGS OF SPIE, THE INTERNATIONAL SOCIETY FOR OPTICAL ENGINEERING
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https://www.spiedigitallibrary.org/conference-proceedings-of-spie/11859/118590H/Cloud-liquid-and-ice-water-content-estimation-from-satellite/10.1117/12.2600124.short?SSO=1
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