DocumentCode :
3681830
Title :
Driver-Activity Recognition in the Context of Conditionally Autonomous Driving
Author :
Christian Braunagel;Enkelejda Kasneci;Wolfgang Stolzmann;Wolfgang Rosenstiel
Author_Institution :
Daimler AG, Stuttgart, Germany
fYear :
2015
Firstpage :
1652
Lastpage :
1657
Abstract :
This paper presents a novel approach to automated recognition of the driver´s activity, which is a crucial factor for determining the take-over readiness in conditionally autonomous driving scenarios. Therefore, an architecture based on head-and eye-tracking data is introduced in this study and several features are analyzed. The proposed approach is evaluated on data recorded during a driving simulator study with 73 subjects performing different secondary tasks while driving in an autonomous setting. The proposed architecture shows promising results towards in-vehicle driver-activity recognition. Furthermore, a significant improvement in the classification performance is demonstrated due to the consideration of novel features derived especially for the autonomous driving context.
Keywords :
"Vehicles","Feature extraction","Magnetic heads","Histograms","Context","Cameras","Tracking"
Publisher :
ieee
Conference_Titel :
Intelligent Transportation Systems (ITSC), 2015 IEEE 18th International Conference on
ISSN :
2153-0009
Electronic_ISBN :
2153-0017
Type :
conf
DOI :
10.1109/ITSC.2015.268
Filename :
7313360
Link To Document :
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