Effect of Denoising in Band Selection for Regression Tasks in Hyperspectral Datasets
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Altres documents de l'autoria: Latorre Carmona, Pedro; Martínez Sotoca, José; Pla, Filiberto; Bioucas-Dias, José; Julià Ferré, Carme
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Effect of Denoising in Band Selection for Regression Tasks in Hyperspectral DatasetsAutoria
Data de publicació
2013Editor
Institute of Electrical and Electronics Engineers (IEEE)ISSN
1939-1404Cita bibliogràfica
IEEE JOURNAL OF SELECTED TOPICS IN APPLIED EARTH OBSERVATIONS AND REMOTE SENSING, VOL. 6, NO. 2, APRIL 2013Tipus de document
info:eu-repo/semantics/articleVersió de l'editorial
http://ieeexplore.ieee.org/xpl/articleDetails.jsp?reload=true&arnumber=6461428Versió
info:eu-repo/semantics/acceptedVersionParaules clau / Matèries
Resum
This paper presents a comparative analysis of six
band selection methods applied to hyperspectral datasets for
biophysical variable estimation problems, where the effect of
denoising on band selection performance ... [+]
This paper presents a comparative analysis of six
band selection methods applied to hyperspectral datasets for
biophysical variable estimation problems, where the effect of
denoising on band selection performance has also been analyzed.
In particular, we consider four hyperspectral datasets and three
regressors of different nature ("�SVR, Regression Trees, and
Kernel Ridge Regression). Results show that the denoising
approach improves the band selection quality of all the tested
methods. We show that noise filtering is more beneficial for
the selection methods that use an estimator based on the whole
dataset for the prediction of the output than for methods that
use strategies based on local information (neighboring points). [-]
Publicat a
IEEE JOURNAL OF SELECTED TOPICS IN APPLIED EARTH OBSERVATIONS AND REMOTE SENSING, 2013, vol. 6, no 2Drets d'accés
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