DocumentCode
3068140
Title
Classification algorithm for embedded systems using high-resolution multispectral data
Author
Villalon-Turrubiates, Ivan E.
Author_Institution
Inst. Tecnol. y de Estudos Super. de Occidente (ITESO), Univ. Jesuita de Guadalajara, Tlaquepaque, Mexico
fYear
2013
fDate
21-26 July 2013
Firstpage
3582
Lastpage
3585
Abstract
The extraction of remote sensing signatures from a particular geographical region allows the generation of electronic signature maps, which are the basis to create a high-resolution collection atlas processed in discrete time. This can be achieved using an image classification approach based on pixel statistics for the class description, referred to as the multispectral pixel neighborhood method. This paper explores the effectiveness of this approach developed for supervised segmentation and classification of high-resolution remote sensing imagery using SPOT-5 data. Moreover, an analysis of the proposition for implementation as an embedded system is provided, to improve the processing time and reducing computational load, using a scheme based on hardware/software codesign techniques. Simulations are reported to probe the efficiency of the proposed technique.
Keywords
cartography; embedded systems; feature extraction; geophysical image processing; hardware-software codesign; image classification; image resolution; image segmentation; remote sensing; statistical analysis; SPOT-5 data; computational load reduction; electronic signature map generation; embedded system; geographical region; hardware-software codesign techniques; high resolution collection atlas processing; high resolution multispectral data; image classification approach; multispectral pixel neighborhood method; pixel statistics; remote sensing signatures extraction; supervised high resolution remote sensing image classification; supervised high resolution remote sensing image segmentation; Classification algorithms; Embedded systems; Hardware; Remote sensing; Spatial resolution; Embedded Systems; Image Classification; Multispectral Data; Remote Sensing;
fLanguage
English
Publisher
ieee
Conference_Titel
Geoscience and Remote Sensing Symposium (IGARSS), 2013 IEEE International
Conference_Location
Melbourne, VIC
ISSN
2153-6996
Print_ISBN
978-1-4799-1114-1
Type
conf
DOI
10.1109/IGARSS.2013.6723604
Filename
6723604
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