DocumentCode :
665098
Title :
Sensor resource management with cooperative sensors for preventive vehicle safety applications
Author :
Kloeden, Horst ; Damak, Nesrine ; Rasshofer, Ralph H. ; Biebl, E.M.
Author_Institution :
BMW Res. & Technol., Munich, Germany
fYear :
2013
fDate :
9-11 Oct. 2013
Firstpage :
1
Lastpage :
6
Abstract :
Preventive vehicle safety applications require a reliable detection, classification, and localization of objects in the vehicle´s surroundings. This is typically achieved by combining object detections of multiple local perception sensors, such as camera, radar, or lidar. However, to enable the detection of occluded objects as well as to improve the reliability of object classification, the principle of cooperative sensors has been recently proposed. The sensor principle uses a communication signal for object classification and localization. Therefore, in contrast to typical perception sensors, a fusion system including a cooperative sensor system requires a strategy to schedule the measurements of different objetcs considering a limited communication capacity. In this paper, we propose an information based approach for sensor resource management suited for cooperative sensor systems in vehicular applications. We will apply the strategy to a pedestrian perception system and analyze the behavior in different critical traffic situations in comparison to other possible approaches. Finally, we will use real world measurement data gathered with a prototype sensor at 5.9 GHz to justify the theoretical results.
Keywords :
image classification; image sensors; object detection; road safety; road traffic; sensor fusion; camera; communication capacity; cooperative sensor system; frequency 5.9 GHz; fusion system; lidar; objects classification; objects detection; objects localization; pedestrian perception system; preventive vehicle safety applications; radar; sensor resource management; traffic situations; Cameras; Current measurement; Entropy; Protocols; Resource management; Transponders; Vehicles;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Sensor Data Fusion: Trends, Solutions, Applications (SDF), 2013 Workshop on
Conference_Location :
Bonn
Print_ISBN :
978-1-4799-0777-9
Type :
conf
DOI :
10.1109/SDF.2013.6698261
Filename :
6698261
Link To Document :
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