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2008 Eighth International Conference on Intelligent Systems Design and Applications
Support Vector Regression for GDOP
November 26-November 28
ISBN: 978-0-7695-3382-7
| ASCII Text | x | ||
| Wei-Han Su, Chih-Hung Wu, "Support Vector Regression for GDOP," Intelligent Systems Design and Applications, International Conference on, vol. 2, pp. 302-306, 2008 Eighth International Conference on Intelligent Systems Design and Applications, 2008. | |||
| BibTex | x | ||
| @article{ 10.1109/ISDA.2008.196, author = {Wei-Han Su and Chih-Hung Wu}, title = {Support Vector Regression for GDOP}, journal ={Intelligent Systems Design and Applications, International Conference on}, volume = {2}, year = {2008}, isbn = {978-0-7695-3382-7}, pages = {302-306}, doi = {http://doi.ieeecomputersociety.org/10.1109/ISDA.2008.196}, publisher = {IEEE Computer Society}, address = {Los Alamitos, CA, USA}, } | |||
| RefWorks Procite/RefMan/Endnote | x | ||
| TY - CONF JO - Intelligent Systems Design and Applications, International Conference on TI - Support Vector Regression for GDOP SN - 978-0-7695-3382-7 SP302 EP306 A1 - Wei-Han Su, A1 - Chih-Hung Wu, PY - 2008 KW - Global Positioning System KW - Geometric Dilution of Precision KW - Support Vector Regression KW - machine-learning KW - soft-computing VL - 2 JA - Intelligent Systems Design and Applications, International Conference on ER - | |||
DOI Bookmark: http://doi.ieeecomputersociety.org/10.1109/ISDA.2008.196
Geometric Dilution of Precision (GDOP) is an indicator showing how well the constellation of GPS satellites is organized geometrically. The calculation of GDOP is a time- and power-consuming task which can be done by solving measurement equations with complicated matrix transformation and inversion. This paper presents a support vector regression (SVR) approach for finding regression models which can reasonably eliminate GDOP without complicated matrix inversion. Ten parameters from the measurement matrix are used as inputs to SVR which produces an estimation of GDOP. Using the proposed method, the processing costs for GPS positioning with low GDOP can be reduced. The experimental results show that the proposed method has good performance.
Index Terms:
Global Positioning System, Geometric Dilution of Precision, Support Vector Regression, machine-learning, soft-computing
Citation:
Wei-Han Su, Chih-Hung Wu, "Support Vector Regression for GDOP," isda, vol. 2, pp.302-306, 2008 Eighth International Conference on Intelligent Systems Design and Applications, 2008
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