Turkish Journal of Computer and Mathematics Education
Journal license

Journal

Turkish Journal of Computer and Mathematics Education


Volume
& Issue

Volume 12, Issue 2


Published
on

April 5, 2021


Pages

896-905


DOI

Article

Advanced Driver Assistance System using Convolutional Neural Network


Authors

Geetha Aar Affiliation:
Assistant Professor, Department of Computer Science & Engineering, Easwari Engineering College, Chennai
, Sharmila Pb Affiliation:
Assistant Professor, Department of Information Technology, Sri Sairam Institute of Technology, Chennai
, Sobitha Ahila Sc Affiliation:
Associate Professor, Department of Computer Science & Engineering, Easwari Engineering College, Chennai
and Raja Senbagam Td Affiliation:
Assistant Professor, Department of Computer Science & Engineering, Government College of Technology, Coimbatore


Abstract

Road sign recognition is an essential task in driving process to drive safely and to avoid accidents. Road sign recognition is not a simple task as there are many unfavorable factors such as bad weather, illumination, physical damage etc. The purpose of Road sign is to inform drivers and autonomous vehicles about current state of road and also provide them other important data for navigation. This paper aims to build Convolutional neural network (CNN) model to recognize road signs and to inform the drivers in advance for safe driving. The advantage of using Convolutional neural network (CNN) is its potential to build an internal representation of two-dimensional images. This enables the model to learn scale and position variant structures in the data, which is required when working with images. The proposed system achieves an accuracy of 87%.


Keywords

Road sign Recognition, Image Processing, Convolutional neural network, Tensor flow, advanced driver assistance system


Citation

Aar, G., Pb, S., Sc, S. A., & Td, R. S. (2021). Advanced driver assistance system using convolutional neural network. Turkish Journal of Computer and Mathematics Education, 12(2), 896–905.

Published by: Engineering Journals

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