DocumentCode :
592259
Title :
Driver/vehicle response diagnostic system for vehicle following based on Gaussian Mixture Model
Author :
Butakov, Vadim ; Ioannou, Petros ; Tippelhofer, Mario ; Camhi, J.
Author_Institution :
Dept. of Electr. Eng.-Syst., Univ. of Southern California, Los Angeles, CA, USA
fYear :
2012
fDate :
10-13 Dec. 2012
Firstpage :
5649
Lastpage :
5654
Abstract :
It is well known that not all drivers drive the same and the same driver has different driving characteristics with different vehicles. Identifying these characteristics that are unique to each driver/vehicle response opens the way for more personalized and accurate driver assistance systems. In this paper we consider the problem of identifying the driver/vehicle characteristics by processing real data offline. We propose the use of a Gaussian Mixture Model (GMM) together with additional logic and appropriate thresholds. We concentrate our efforts on identifying the driver/vehicle response model in the vehicle following case. Model training using data retrieved through experiments along with comparing data sets for different drivers indicates that the system is capable of identifying the driver/vehicle response characteristics and detecting deviations from normal driving behavior. The system has been demonstrated to distinguish between drivers after it learned their characteristics.
Keywords :
Gaussian processes; driver information systems; road safety; GMM; Gaussian mixture model; driver assistance systems; driver-vehicle response characteristics; driver-vehicle response diagnostic system; driving characteristics; model training; vehicle following; Acceleration; Data models; Hidden Markov models; Roads; Safety; Vectors; Vehicles;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Decision and Control (CDC), 2012 IEEE 51st Annual Conference on
Conference_Location :
Maui, HI
ISSN :
0743-1546
Print_ISBN :
978-1-4673-2065-8
Electronic_ISBN :
0743-1546
Type :
conf
DOI :
10.1109/CDC.2012.6426089
Filename :
6426089
Link To Document :
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