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Journal Article

Citation

Watta P, Lakshmanan S, Hou Y. IEEE Trans. Vehicular Tech. 2007; 56(4 II): 2028-2041.

Affiliation

Vehicle Electronics Laboratory, University of Michigan-Dearborn, Dearborn, MI 48128, United States.

Copyright

(Copyright © 2007, IEEE (Institute of Electrical and Electronics Engineers))

DOI

10.1109/TVT.2007.897634

PMID

unavailable

Abstract

To better understand driver behavior, the Federal Highway Administration and the National Highway Traffic Safety Administration have collected several thousands of hours of driver video. There is now an immediate need for devising automated procedures for analyzing the video. In this paper, we look at the problem of estimating driver pose given a video of the driver as he or she drives the vehicle. A complete system is proposed to perform feature extraction and classification of each frame. The system uses a Fisherface representation of video frames and a nearest neighbor and neural network classification scheme. Experimental results show that the system can achieve high accuracy and reliable performance.

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