Estimation of Parsimonious Covariance ...
Document type :
Autre communication scientifique (congrès sans actes - poster - séminaire...)
Title :
Estimation of Parsimonious Covariance Models for Gaussian Matrix Valued Random Variables for Multi-Dimensional Spectroscopic Data
Author(s) :
Poddar, Asmita [Auteur]
National University of Singapore [NUS]
Iovleff, Serge [Auteur]
MOdel for Data Analysis and Learning [MODAL]
Latimier, Florent [Auteur]
MOdel for Data Analysis and Learning [MODAL]
National University of Singapore [NUS]
Iovleff, Serge [Auteur]
MOdel for Data Analysis and Learning [MODAL]
Latimier, Florent [Auteur]
MOdel for Data Analysis and Learning [MODAL]
Conference title :
WiML 2018 - 13th Women in Machine Learning workshop
City :
Montreal
Country :
Canada
Start date of the conference :
2018-12-03
Publication date :
2018-12
HAL domain(s) :
Statistiques [stat]/Applications [stat.AP]
Mathématiques [math]/Statistiques [math.ST]
Mathématiques [math]/Statistiques [math.ST]
English abstract : [en]
Satellite remote sensing makes it possible to observe landscapes on large spatial scales. The Sentinel-1 and Sentinel-2 satellites currently provide full coverage of the national territory of France every 5 days. Due to ...
Show more >Satellite remote sensing makes it possible to observe landscapes on large spatial scales. The Sentinel-1 and Sentinel-2 satellites currently provide full coverage of the national territory of France every 5 days. Due to the orbit of the satellites, coupled with the presence of clouds, thesampling of the pixels are temporally irregular. The project aims to develop, study and implement supervised and unsupervised classification methods when the data are of different natures (heterogeneous) and have missing and/or aberrant data. The methods implemented are developed to process satellite and aerial data for ecology and cartography.Show less >
Show more >Satellite remote sensing makes it possible to observe landscapes on large spatial scales. The Sentinel-1 and Sentinel-2 satellites currently provide full coverage of the national territory of France every 5 days. Due to the orbit of the satellites, coupled with the presence of clouds, thesampling of the pixels are temporally irregular. The project aims to develop, study and implement supervised and unsupervised classification methods when the data are of different natures (heterogeneous) and have missing and/or aberrant data. The methods implemented are developed to process satellite and aerial data for ecology and cartography.Show less >
Language :
Anglais
Peer reviewed article :
Oui
Audience :
Internationale
Popular science :
Non
Collections :
Source :
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