DocumentCode :
345174
Title :
A monocular vision-based position sensor using neural networks for automated vehicle following
Author :
Omura, Yasushi ; Funabiki, Shigeyulu ; Tanaka, T.
Author_Institution :
Niihama Nat. Coll. of Technol., Ehime, Japan
Volume :
1
fYear :
1999
fDate :
1999
Firstpage :
388
Abstract :
This paper presents a new position sensor with a CCD camera based on neural networks that measures the distance and direction angle to and the pose angle of the lead vehicle in automated vehicle following. A picture image of lamps mounted on the lead vehicle is obtained with the CCD camera. Lamp positions are established in a rectangular coordinate system by means of graphic data processing. The measuring process of the proposed position sensor is developed by neural network learning with backpropagation. The number of lamps can be reduced from four to three without sacrificing sensor accuracy. This reduction in the number of lamps shortens acquisition time in graphic data processing. Experimental results show that the distance, direction angle and pose angle are sufficiently accurate for practical use in automated vehicle following
Keywords :
CCD image sensors; angular measurement; backpropagation; distance measurement; mobile robots; neural nets; position control; position measurement; CCD camera; automated vehicle following; backpropagation; direction angle measurement; graphic data processing; measuring process; monocular vision-based position sensor; neural network learning; neural networks; pose angle measurement; rectangular coordinate system; robot vehicle systems; Cameras; Charge coupled devices; Charge-coupled image sensors; Data processing; Graphics; Lamps; Neural networks; Robot vision systems; Sensor phenomena and characterization; Vehicles;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power Electronics and Drive Systems, 1999. PEDS '99. Proceedings of the IEEE 1999 International Conference on
Print_ISBN :
0-7803-5769-8
Type :
conf
DOI :
10.1109/PEDS.1999.794594
Filename :
794594
Link To Document :
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