DocumentCode :
29135
Title :
Hyperspectral Remote Sensing Data Analysis and Future Challenges
Author :
Bioucas-Dias, Jose M. ; Plaza, Antonio ; Camps-Valls, G. ; Scheunders, Paul ; Nasrabadi, Nasser M. ; Chanussot, Jocelyn
Author_Institution :
Inst. de Telecomun., Inst. Super. Tecnico, Lisbon, Portugal
Volume :
1
Issue :
2
fYear :
2013
fDate :
Jun-13
Firstpage :
6
Lastpage :
36
Abstract :
Hyperspectral remote sensing technology has advanced significantly in the past two decades. Current sensors onboard airborne and spaceborne platforms cover large areas of the Earth surface with unprecedented spectral, spatial, and temporal resolutions. These characteristics enable a myriad of applications requiring fine identification of materials or estimation of physical parameters. Very often, these applications rely on sophisticated and complex data analysis methods. The sources of difficulties are, namely, the high dimensionality and size of the hyperspectral data, the spectral mixing (linear and nonlinear), and the degradation mechanisms associated to the measurement process such as noise and atmospheric effects. This paper presents a tutorial/overview cross section of some relevant hyperspectral data analysis methods and algorithms, organized in six main topics: data fusion, unmixing, classification, target detection, physical parameter retrieval, and fast computing. In all topics, we describe the state-of-the-art, provide illustrative examples, and point to future challenges and research directions.
Keywords :
geophysical image processing; hyperspectral imaging; image classification; object detection; sensor fusion; terrain mapping; data fusion; fast computing; hyperspectral algorithms; hyperspectral image classification; hyperspectral remote sensing data analysis; hyperspectral unmixing; physical parameter retrieval; spectral mixing; target detection; Data integration; Hyperspectral imaging; Image restoration; Sensors; Spatial resolution; Tutorials;
fLanguage :
English
Journal_Title :
Geoscience and Remote Sensing Magazine, IEEE
Publisher :
ieee
ISSN :
2168-6831
Type :
jour
DOI :
10.1109/MGRS.2013.2244672
Filename :
6555921
Link To Document :
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