DocumentCode :
325584
Title :
Neural network classification with IFSAR and multispectral data fusion
Author :
Xiao, Rongrui ; Wilson, Robert ; Carande, Richard
Author_Institution :
Vexcel Corp., Boulder, CO, USA
Volume :
3
fYear :
1998
fDate :
6-10 Jul 1998
Firstpage :
1327
Abstract :
The authors present neural network classification results for interferometric SAR (IFSAR) and multispectral imagery data, and describe a classification fusion scheme for the combination of the two classification results to reduce ambiguities and false classification rates. Two multilayer perceptron (MLP) neural networks were developed for the classification of IFSAR and multispectral data, separately. Classes include tree area, road, building, bare earth, water, etc. A classification fusion scheme that examines both the IFSAR and multispectral classification results at a pixel location and decides the fusion class for various cases is then discussed. Classification fusion results, especially the building classification and detection results, are presented. The results show that the scheme is effective in reducing false classification rate for buildings detection in the remotely sensed imagery data
Keywords :
geophysical signal processing; geophysical techniques; geophysics computing; image classification; multilayer perceptrons; neural nets; radar imaging; remote sensing; remote sensing by radar; sensor fusion; synthetic aperture radar; IFSAR; building; buildings; data fusion; geophysical measurement technique; image classification; image processing; interferometric SAR; land surface; multilayer perceptron; multispectral imagery; multispectral remote sensing; neural net; neural network; optical imaging; radar remote sensing; road; sensor fusion; synthetic aperture radar; terrain mapping; tree area; Earth; Image sensors; Multi-layer neural network; Neural networks; Neurons; Reflectivity; Remote sensing; Roads; Sensor systems; Synthetic aperture radar interferometry;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Geoscience and Remote Sensing Symposium Proceedings, 1998. IGARSS '98. 1998 IEEE International
Conference_Location :
Seattle, WA
Print_ISBN :
0-7803-4403-0
Type :
conf
DOI :
10.1109/IGARSS.1998.691395
Filename :
691395
Link To Document :
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