Early Model of Traffic Sign Reminder Based on Neural Network

Institute of Advanced Engineering and Science

Budi Rahmani,

Indonesian Journal of Electrical Engineering and Computer Science, Vol 10, No 4: August 2012 , pp. 713-722

Abstract

Recognizing the traffic signs installed on the streets is one of the requirements of driving on the road. Laxity in driving may result in traffic accident. This paper describes a real-time reminder model, by utilizing a camera that can be installed in a car to capture image of traffic signs, and is processed and later to inform the driver. The extracting feature harnessing the morphological elements (strel) is used in this paper. Artificial Neural Networks is used to train the system and to produce a final decision. The result shows that the accuracy in detecting and recognizing the ten types of traffic signs in real-time is 80%. DOI: http://dx.doi.org/10.11591/telkomnika.v10i4.861

traffic signs; elements of morphology; Back propagation

Publisher: Institute of Advanced Engineering and Science

Publish Date: 2012-07-19

Publish Year: 2012

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